Vector and Tensor Analysis

zero like 1 /r as r oo. Example 71. Let f = f(x, y, z)a, where a is constant. Apply ing (178), we obtain

VECTOR AND TENSOR ANALYSIS

120

a-

[SEC. 55

f ffdo= f f fv.(fa)dr=a f f fVfdr s

V

V

Hence fffdd

s

fff

=

7fdr

(190)

V

We leave it to the reader to prove that

JJdo*f = Jff(V*f)dr s

(191)

V

Problems

1. Prove that f f dd x f = f f f (V x f) dr. y

s

2. Prove that ff dd = 0 over a closed surface S. s

c constants, show that = 4(a + b + c), where S is the surface of a unit

3. If f = axi + byj + czk, a,

Jff.do

b,

s

sphere.

fffdd

4. By defining grad f = Jim

As

gradf =

snow that

OT

4,-+O

afi+ afj+afk ax ay az

fff.dd 5. By defining div f = lim °3 A?--+O

div f =

r2 sin 0 Lar

GT

(r2 sin of,) +

, show that

e (r sin 9 fe) + a

for spherical coordinates.

6. Show that

f

fJ

JfJ (P 0fdr.

(rf,)]

INTEGRATION

SEC. 55]

121

7. If w = V x v, v = V x u, show that '9

R

v2dr = f f u xv.dd+ f f S R

8. Show that

f J f w Vu . Vv dr = f f uw Vv . dd - f if u V . (w Vv) dr 9. If v = Vp and V . v = 0, show that for a closed surface

f J f V2dr = Jf pv.dd. 10. Show that f f IrJ2r . da = 5 fJJ r2 dr.

11. If f = xi - yj + (z2 - 1)k, find the value of f f f . do over the closed surface bounded by the planes z = 0, z = 1 and the cylinder x2 + y2 = 1.

12. If f is directed along the normal at each point of the boundary of a region V, show that f f f (V x f) dr = 0. V

13. Show that f f r x da = 0 over a closed surface. S

14. Given f = (xyez + log (z + 1) - sin x)k, find the value of

ffv x f . da over the part of the sphere x2 + y2 + z2 = 1 above S

the x-y plane. 15. Show that (xi + yj)/(x2 + y2) is solenoidal. 16. If f 1 and f2 are irrotational, show that f 1 x f2 is solenoidal. 17. Find a vector A such that

f =- yzi - zxj + (x2+y2)k = V xA. 18. If r, 0, z are cylindrical coordinates, show that De and Find the vector potentials. 19. Let S, and S2 be the surface boundaries of two regions V1 and V2. Let r be the distance between two elementary

V log r are solenoidal vectors.

VECTOR AND TENSOR ANALYSIS

122

Show that

volumes d-r, and dT2 of V1 and V2.

fv, rn:-2 dT, fsI rm dd1 = -m(mn + 1) fV (IT2

.fs, dii2 and that

1s= dd2

show that V2X = for V2Y, V2Z.

fs, log r ddl = -

fv,

cIT2

f

dTl

V1

r

V xf ='1i+¢2j+4,ak,f = Xi + Yj + Zk,

20. IfV - f =

Vxf=zi.

[SEC. 56

49 O

-

- a3y -

z2' and find similar expressions

Find a vector f such that V f = 2x + y - 1,

56. Conjugate Functions. Let us consider the two-dimensional vector field w = u(x, y)i + v(x, y)j and an orthogonal vector field wi = v(x, y)i - u(x, y)j. Obviously w - wl = 0. What are the conditions on u(x, y), v(x, y) which will make w and w1 irrotational? From Stokes's theorem

x w dd = ff ffv s s { w1 dr = jJv = Jf

w dr =

av

au

ax

ay

au

ax-

dydx av

ay

(192)

dy dx

A necessary and sufficient condition that both w and w1 be irrotational is that 52).

av

ax

- au = 0 and - au -- av = 0 (see Sec. ax

ay

a4

This yields av ax

_

au ay

av

au

ay

ax

(193)

The reader who is familiar with complex-variable theory will immediately recognize (193) as the Cauchy-Riemann equations, which must be satisfied for the analyticity of the complex func. tion w = v(x, y) + iu(x, y), i =

INTEGRATION

SEC. 56]

123

On differentiating (193), we obtain

=

V 2U

a2u

axe

+

a2u 2

=

49Y

a2v V2v=+a axey = a2v

2

(194)

and

au av ax ax

+

au av ay ay

_

If functions u(x, y), v(x, y) satisfy Eqs. (193) we say that The importance of such func-

they are harmonic conjugates. y

v

P (x, yl

Ix

Fia. 51.

tions is due to the fact that they satisfy the two-dimensional Laplace's equation given by (194). If u satisfies V2u = 0, we say that u(x, y) is harmonic.

Let us now consider two rectangular cartesian coordinate systems, the x-y plane and the u-v plane (Fig. 51). Let

r=xi+yj. Now to every point P(x, y) there corresponds a point Q(u, v) given by the transformation u = u(x, y), v = v(x, y). Hence the vector w = u(x, y)i + v(x, y)j corresponds to the vector

r -- xi+yj. If now P(x, y) traverses a curve C in the x-y plane, Q(u, v) will trace out a corresponding curve r in the u-v plane. The curve u(x, y) = constant in the x-y plane transforms into

the straight line u = constant in the u-v plane. Similarly,

124

VECTOR AND TENSOR ANALYSIS

[Ssc. 56

v(x, y) = constant transforms into the straight line v = constant. The two straight lines are orthogonal. Do the curves

u(x, y) = constant v(x, y) = constant intersect orthogonally? The answer is "Yes"! The normal to the curve u(x, y) = constant is the vector ay i+u

=au

VU

a

and the normal to the curve v(x, y) = constant is Vv =

av

ax

av 49V

i+

yj

au av 0 from (194). ax ax + ay ay = Example 72. Consider the vector field w = 2xyi + (x2 - y2) j.

so that Vu Vv =

Ou av

Here u = 2xy, v = x2 - y2, and av

= au

ax

ay

av

_

= 2x

au _ _ 2

ay

ax

r

y

so that u and v are conjugate harmonics.

The curves

u = 2xy = constant and v(x, y) = x2 --- y2 = constant are orthogonal hyperbolas which transform into the straight lines u = constant, v = constant, in the u-v plane (Fig. 52). Example 73. Consider

w = ( tan-1

x)

i + J log (x2 + y2)j

Here u(x, y) = tan-1 (y/x), v = I log (x2 + y2), and au

av

y

ax

ay

x2 + y2

au

av

x

ay

ax

x2 + y2

so that u and v are conjugate harmonics.

SEc. 56]

INTEGRATION

125

Y

I

0'

Fia. 52.

(3)

(4)

------------

Fra. 53.

The circles x2 + y2 = constant transform into the straight lines v = J log c, while the straight lines y = mx transform into the straight lines u = tan-' m (Fig. 53). Example 74. If u(x, y) is given as harmonic, we can find its conjugate v(x, y). If v(x, y) does exist satisfying (193), then

126

VECTOR AND TENSOR ANALYSIS

dv=axdx+-dy=aydx Now consider the vector field f =

Vxf=-t

au ay

f&c. 56

au ax dy

i - au j. ax

We have that

x + a2 ) k = 0 by our assumption about u(x, y). y

Hence f is irrotational and so is the gradient of the scalar v, f = Vv, and

v = fa au a dx - jyOU dy + c 1!

8x

(195)

As an example, consider u = x2 - y2, which satisfies V2u = 0. Hence

v=

fox

- 2y dx - f." 2 . 0 dy + c = - 2xy + c Problems

1. Find the harmonic conjugate of xa - 3xy2, of ex coo y, of x/(x2 + y2). 2. Show that u(x, y) = sin x cosh y and v(x, y) = cos x sinh y are conjugate harmonics and that the curves u(x, y) = constant, v(x, y) = constant are orthogonal. What do the straight lines y = constant transform into? 3. If u(x, y), v(x, y) are conjugate harmonica, show that the angle between any two curves in the x-y plane remains invariant

under the transformation u = u(x, y), v = v(x, y), that is, the transformed curves have the same angle of intersection.

CHAPTER 5 STATIC AND DYNAMIC ELECTRICITY

57. Electrostatic Forces. We assume that the reader

is

familiar with the methods of generating electrostatic charges. It is found by experiment that the repulsion of two like point charges is inversely proportional to the square of the distance between the charges and directly proportional to the product of their charges. The forces act along the line joining the two charges. We define the electrostatic unit of charge (e.s.u.) as that charge which produces a force of one dyne on a like charge

situated one centimeter from it when both are placed in a vacuum. The electrostatic intensity at a point P is the force that would act on a unit charge placed at P as a result of the rest of the charges, provided that the unit test charge does not affect the original distribution of charges. For a single charge q placed at the origin of our coordinate system, the electric intensity, or field, is given by E = (q/r3)r. For many charges the field at P is given by

E=-

4'a s a=1 ra

(196)

ra

where ra represents the vector from P to the charge qa.

We have seen in Example 25 that V V. (r/r3) = 0. Consequently,

V.E=0

(197)

so that the divergence of the electrostatic-field vector is zero at any point in space where no charge exists. Hence E is solenoidal except where charges exist, for there E is discontinuous. If the coordinates of P are t, n, t and the coordinates of qi are xi, yi, zi,

then ri =

I(rS

l

V1

ri

ri

- xi)2 + (,l - y,)2 + a

(pJ

- z,)2]1, and

_

rr;3 (xi - )i -I- (yi- 7/)i + (zi -t)k

ot

r ri

an

127

r;

VECTOR AND TENSOR ANALYSIS

128

[SEC. 58

so that (196) reduces to

E = -Vp

(198)

n

where P =a-1 I qa/ra. We call w the electrostatic potential. For any closed path which does not pass through a point charge,

we have f E dr = - ^p dr = - f d(p = 0. Thus E is also irrotational, and

VxE=O

(199)

We also note that f E dr = cp(P) - p(-o) = tp(P), since ,p(oo) = 0. Hence the work done by the field in taking a unit charge from P to oo is equal to the potential at P. 58. Gauss's Law. Let S be an imaginary closed surface that

does not intersect any charges. In Example 66 we saw that J f (qr/r3) dd = 4Tq. This is true for each charge q; inside S. S

Hence

JS ! La a-1

qara dd = 41r raa a-1

qa

(200)

For a charge outside 8,

Jf.do=JfJv.()dr=0

(201)

since there is no discontinuity in qr/r3, r > 0. Adding (200) and (201), we obtain Gauss's law,

JJE.dd=4irQ

(202)

s

where Q is the total charge inside S. The theorem in words is that the total electric flux over any closed surface equals 4w times the total charge inside the surface. Example 75. We define a conductor as a body with no electric field in its interior, for otherwise the "free" electrons would move and the field would not be static. The charge on a conductor must reside on the surface, for consider any small volume contained in the conductor and apply Gauss's theorem.

SEC. 58]

STATIC AND DYNAMIC ELECTRICITY

129

f f E dd = 4xq and since E = 0, we must have q = 0. This is true for arbitrarily small volumes, so that no excess of positive charges over negative charges exists. Hence the total charge must exist on the surface of the conductor. If a body has the property that a charge placed on it continues to reside where placed in the absence of an external electric field,

Fic. 54.

we call the body an insulator. Actually there is no sharp line of demarcation between conductors and insulators. Every body possesses some ability in conducting electrons. At the surface of a conductor the field is normal to the surface, for any component of the field tangent to the surface would cause a flow of current in the conductor, this again being contrary to the assumption that the field is static (no large-scale motion of electrons occurring). Such a surface is called an equipotential surface. The field is everywhere normal to an equipotential

surface, for the vector E = -V(p is normal everywhere to the surface V(x, y, z) = constant. Example 76. Consider a uniformly charged hollow sphere E. We shall show that the field outside the sphere is the same as if

130

VECTOR AND TENSOR ANALYSIS

[SEC. 58

the total charge were concentrated at the center of the sphere

and that in the interior of the sphere there is no field.

Let P be any point outside the sphere with spherical coordinates r, 0, cp. Construct an imaginary sphere through P con(see centric with the sphere Fig. 54). From symmetry it is

obvious that the intensity at any point of the sphere is the same Fic. 55. as that at P. Moreover, the field is radial. Applying Gauss's law, we have f f E dd = 4,rQ, or

f fEdS=Ef fdS=4irr2E=4aQ so that

E= r

and

E=

r

(203)

Q

Q

We leave it to the reader to show that E = 0 inside I. Example 77. Field w thin a parallel-plate condenser.

Consider

two infinite parallel plates with surface densities a and -a.

Fic. 56.

From symmetry the field is normal to the plates. We apply Gauss's law to the surface in Fig. 55 with unit cross-sectional area.

f f E do = E = 4ara

(204)

so that the field is uniform. Example 78. We now determine the field in the neighborhood of a conductor. We consider the cylindrical pillbox of Fig. 56 and apply Gauss's law to obtain

SEC. 58]

STATIC AND DYNAMIC ELECTRICITY

131

EA = 4raA or

E = 47ro N

(205)

where a is the charge per unit area and N is the unit normal vector to the surface of the conductor. Example 79. Force on the surface of a conductor. We consider

a small area on the surface of the conductor. The field at a point outside this area is due to (1) charges distributed on the rest of the conductor (call this field E1), and (2) the field due to the charge resting on the area in question, say E2 (see Fig. 57). From Example 78, El + E2 = 41rv. Now the field inside the Ei+E2

P

Fia. 57.

conductor at the point P' situated symmetrically opposite P is zero from Example 75. The field at P' is E1 - E2 = 0. Thus El = 2o per unit charge. For an area dS the force is dE = (2av) (v dS) = 27rv2 dS

(206)

This force is normal to the surface. A charged soap film thus tends to expand. Problems 1. Two hollow concentric spheres have equal and opposite

charges Q and -Q. Find the work done in taking a unit test charge from the sphere of radius a to the sphere of radius b, b > a. The outer sphere is negatively charged. 2. Find the field due to any infinite uniformly charged cylinder. 3. Solve Prob. 1 for two infinite concentric cylinders.

VECTOR AND TENSOR ANALYSIS

132

[Sec. 59

4. Let ql, q2, . . . , q be a set of collinear electric charges residing on the line L. Let C be a circle whose plane is normal

to L and whose center lies on L. Show that the electric flux n

through this circle is N = 121rga(1 - cos Sa), where Na is the

a-I

angle between L and any line from qa to the circumference of C. 5. Let the line L of Prob. 4 be the x axis, and rotate a line of

force r in the x-y plane about the x axis (see Fig. 58). If no Y

xa q3

0

x2

xl

qa

qi

x

I

II

`

I

I

1

1

/

Fia. 58.

charges exist between the planes x = A, x = B, show that the equation of a line of force is n

a-1

qa(x - xa)[(x - xa)z + y2]i = constant

6. Point charges +q, -q are placed at the points A, B. The line of force that leaves A making an angle a with AB meets the plane that bisects AB at right angles in P. Show that

sin 2 = 59. Poisson's Formula.

E_

sin (+

PA B)

In Sec. 57, we saw that

-v

a-1 r,

STATIC AND DYNAMIC ELECTRICITY

SEC. 591

133

For a continuous distribution of charge density p, we postulate that the potential is =

fff

pdr

(207)

where the integration exists over all of space. At any point P where no charges exist, r > 0, and we need not worry about the convergence of the integral. Now let us consider what happens at a point P where charges exist, that is, r = 0. Let us surround the point P by a small sphere R of radius e. The integral

f f f (p dr/r) exists if p is continuous. We define 9 at P Y-R

as lim f f f (p dr/r). This limit exists, for using spherical y-R

coordinates,

If f f "d*T

=I

fo2r fo=

0 pr sin a dr d9 d
where M is the bound of p in the neighborhood of P.

I i l xf p

dT

_ fJf Rp V

Thus

I < M? (e2 + el )

where e' is the radius of the sphere R' surrounding P. The Cauchy criterion holds, so that the limit exists. In much the same way we can show that

E = f f f Ta dr

(208)

and that at a point P where a charge exists

E(P) = lim f uJ -t dr r +0

converges.

Now from Gauss's law

ff 8

f f f pdr v

VECTOR AND TENSOR ANALYSIS

134

[SEC. 59

In order to apply the divergence theorem to the surface integral,

we must be sure that V E is continuous at points where p is continuous. We assume this to be true, and the reader is referred

to Kellogg's "Foundations of Potential Theory" for the proof of this.

Thus

JJJ(v.E)dr = 47r f f f p dr

(209)

V

V

Since (209) is true for all volumes, it is easy to see that

V E = 4irp

(210)

Since E _ - Vs,, we have

provided V E and p are continuous. Poisson's equation V2,p = -4ap

(211)

and at places where no charges exist, p = 0, so that Laplace's equation, V2,p = 0, holds. Example 80. In cylindrical coordinates V 20

r L or

(r Or + e

r

t90/

+ 8z \r 8z/ J

Consider an infinite cylinder of radius a and charge q per unit length. At points where no charge exists, we have V2,p = 0. Moreover, from symmetry, p depends only on r. Thus

r dr = constant = A

vAlogr+B E_ -Vip= -A r,

r=xi -f- yl

Also 42rc = (Er)r_a = -A/a, so that q = 2,raa = -A/2, and

E=2r r2

(212)

STATIC AND DYNAMIC ELECTRICITY

SEC. 601

135

Example 81. To prove that the potential is constant inside a conductor. From Green's formula we have

Jfpvcc.ddJfJ(s7co)2dr+JJJrpv2codr Inside the conductor no charge exists so that V 2(p = 0.

Moreover,

for any surface inside the conductor, E = -Vgp = 0 so that Jff (vp)2 dr = 0 for all volumes V inside the conductor. V

Therefore (VV)2 = 0, and

app

ax

=

app

ay

=

app

az

_ 0, so that p = con-

stant inside the conductor. Problems

1. Solve Laplace's equation in spherical coordinates assuming

the potential V = V(r). 2. Find the field due to a two-dimensional infinite slab, of width 2a, uniformly charged. Here we have p = p(x) and must solve Laplace's equation and Poisson's equation separately for free space and for the slab, and we must satisfy the boundary condition for the potential at the edge of the slab. The space occupied by the slab is given by -a S x < a, - co < y < oo. 3. Solve Laplace's equation for two concentric spheres of radii a, b, with b > a, with charges q, Q, and find the field. 4. Solve Laplace's equation and find the field due to an infinite uniformly charged plane.

5. Prove that two-dimensional lines of force also satisfy Laplace's equation. 6. Show that rp = (A cos nx + B sin nx) (Cell + De-Av) satisfies

x+

a2 $

= 0.

49Y2

7. If Cpl and S02 satisfy Laplace's equation, show that cpl + 4o and Ipl -- rp2 satisfy Laplace's equation. Does cl92 satisfy Laplace's equation? 8. If (pi satisfies Laplace's equation and cp2 satisfies Poisson's equation, show that cpi + 4p2 satisfies Poisson's equation. 60. Dielectrics. If charges reside in a medium other than a vacuum, it is found that the inverse-square force needs readjustment. That this is reasonable can be seen from the following

136

VECTOR AND TENSOR ANALYSIS

[SEC. 61

considerations. We consider a parallel-plate condenser separated by glass (Fig. 59). Assuming that the molecular structure

/

of glass consists of positive and negative particles, the electrons being bound to the

.+++++++++++.....++++

0/0

---

Glass -----j/

nucleus, we see that the field due to the oppositely charged plates might well cause a dis-

Fm. 59

placement of the electrons away from the negative plate and toward the positive plate. This tends to weaken the field, so that E = 47rv/x, where x > 1. x is called the dielectric constant. It is found experimentally that E -_ (qq'/Kr9)r for charges in a dielectric. Applying this force, we see that Gauss's law is modified to read

fjE

.d

d=

4 Q

(213)

K

and if x is a constant,

f

f

41rQ

(214)

where D is defined as the displacement vector, D = xE _ -x V. Poisson's equation becomes V D = -V (K Vg) = 4rp, and for constantx 4rp

(215)

x

For p = 0 we still have Laplace's equation V2(p = 0. In the most general case, we have 3

D; = Z x;;E;, i=i

i = 1, 2, 3

where D = Dli + D2j + Dak, E = E,i + E2j + Eak, and x;; = K;,. 61. Energy of the Electrostatic Field. . Let us bring charges q,, q2, . . . , q,. from infinity to positions P1, P2, . . . , P,., and calculate the work done in bringing about this distribution. It takes no work to bring q, to P,, since there is no field. To bring q2 to P2, work must be done against the field set up by Q1. This amount of work is glg2/rl2, where r12 is the distance between Pl and P2. In bringing q3 to P3, we do work against the separate

STATIC AND DYNAMIC ELECTRICITY

SEC. 61]

137

fields due to q, and q2. This work is gig3/r13 and g2g3/r23. continue this process and obtain for the total work

=- -

We

n q;q'i

W

(216)

ri,

The J occurs because gig2/r12 occurs twice in the summation process, once as glg2/r12 and again as g2g1/r21. The quantity W n

is called the electrostatic energy of the field.

Since (pi =

n

we have W =

gipi.

i=1

;al

q;/rii,

For a continuous distribution of charge,

we replace the summation by an integral, so that

W= jfff pv dr

(217)

Now assume that all the charges are contained in some finite We have V D = 41rp so that

sphere. W

fff

fff

8- f f f Applying the divergence theorem, W

ff

87 S

ff v

Now p,is of the order of 1/r for large r, and D is of the order of 1/r2, while do is of the order of r2. We may take our volume of integration as large as we please, since p = 0 outside a fixed sphere.

Hence lim f f cpD dd = 0, so that s

w= 8A f f f (E D) dr

(218)

138

VECTOR AND TENSOR ANALYSIS

[SEC. 62

The energy density is w = (1/8ir)E D. For an isotropic medium, D= KE and W = (1/87r) Jff KE2 dr. Example 82. Let us compute the energy if our space contains a charge q distributed uniformly over the surface of a sphere of radius a. We have

=a D = E = qr,r>> r

and

D=E=O,r
The total energy is 22x x

W=s-

ffJ-sin O drdOdcp

q2

2a

62. Discontinuities of D and E at the Boundary of Two Dielectrics. Let S be the surface of discontinuity between two media with dielectric constant K1 and K2. We apply Gauss's law to a pillbox with a face in each medium (Fig. 60). Assuming no charges exist on the surface of K1 discontinuity, we have K2

so that n2=_nl

Si nce nl

D2 n2 = 0.

= - n2, we have DN, = DN,

(219)

FIG. 60.

We have taken the pillbox very flat so that the sides contribute a negligible amount to the flux. Equation (219) states that the normal component of the displacement vector D is continuous across a surface of discontinuity containing no charges. We next consider a closed curve r with sides parallel to the surface of discontinuity and ends negligible in size (Fig. 61). Since the field is conservative,

ft dr = 0

or

Er1 = Er1

(220)

SEC. 63]

STATIC AND DYNAMIC ELECTRICITY

139

In other words, the tangential component of the electric vector E is continuous across a surface of discontinuity. Combining (219) and (220), we have DN,

DN,

ET,

E,,

K1EN,

K2EN,

ET,

ET,

or

Fio. 62.

for isotropic media.

Hence

tan01_Kl tan 02

(221)

K2

which is the law of refraction (see Fig. 62). 63. Green's Reciprocity Theorem. Let us consider any distribution of volume and surface charges, the surfaces being conductors. Let p be the volume density and a the surface density. If p is the potential function for this distribution of charges, then

02p = -4up. We shall make use of the fact that E = -Vp and that at the surface E. = 4arv, or E . dd = -4uo dS. A new distribution of charges would yield a new potential function cp' such that V2sp' = -41ro'. Our problem is to find

VECTOR AND TENSOR ANALYSIS

140

1SEC. 63

a relationship between the fundamental quantities p, o, p of the old distribution and p', o', of the new distribution. To do so, we apply Green's formula

JJJ

(vV2V

- ip'V',p)

JJ(cV,' -

v v) dd

S

V

which reduces to

-4v ii (,Pp '-V 'p)dr=4a f f('-rp'o)dS s

V

or

f if rpp' dr +

ff

' ds = f f f v p dr +

jJ

dS

p

(222)

This is Green's reciprocity theorem. It states that the potential (p of a given distribution when multiplied by the corresponding charge (p', a,) in the new distribution and then summed over all of the space is equal to the sum of the products of the potentials (pp') in the new distribution by the charges (p, o) in the old distribution, that is, a reciprocal property prevails. Example 83. Let a sphere of radius a be grounded, that is, its potential is zero, and place a charge q at a point P, b units from

the center of the sphere, b > a. The charge q will induce a charge Q on the sphere. We desire to find Q. We construct a new distribution as follows: Place a unit charge on the sphere, and

assume no other charges in space. The potential due to this charged sphere is p' = 1/r. For the sphere we have initially = 0, Q = ?, and afterward, cp' = 1/a, q' = 1. For the point P we have initially pp = ?, q = q, and afterward, V = 1/b, q' = 0. Applying the reciprocity theorem, we have

0.1+vp-0Q'+q a

b

so that Q = - (alb)q. This is the total charge induced on the sphere when it is grounded. Note that this method does not tell us the surface distribution of the induced charge.

.

Problems 1. A conducting sphere of radius a is embedded in the center of a sphere of radius b and dielectric constant K. The conductor

SFc.64]

STATIC AND DYNAMIC ELECTRICITY

141

is grounded, and a point charge q is placed at a distance r from

its center, r > b > a. Show that the charge induced on the sphere is Q = -Kabq{r[b + (K - 1)a])-1. 2. A pair of concentric conductors of radii a and b are connected by a wire. A point charge q is detached from the inner one and moved radially with uniform speed V to the outer one. Show that the rate of transfer of the induced charge (due to q) from the inner to the outer sphere is dQ

dt

= -gab(b - a)-'V(a + Vt)-2

3. A spherical condenser with inner radius a and outer radius b is filled with two spherical layers of dielectrics Kl and K2, the boundary between being given by r = J(a + b). If, when both

shells are earthed, a point charge on the dielectric boundary induces equal charges on the inner and outer shells, show that K1/K2 = b/a.

4. A conductor has a charge e, and V1, V2 are the potentials

of two equipotential surfaces which completely surround it (V1 > V2). The space between these two surfaces is now filled with a dielectric of inductive capacity K. Show that the change in the energy of the system is - e(V l - V2) (K - 1 )K 1. 5. The inner sphere of a spherical condenser (radii a, b) has a constant charge E, and the outer conductor is at zero potential.

Under the internal forces, the outer conductor contracts from radius b to radius b1. Prove that the work done by the electric forces is E2(b - b1)b-'b1-1.

64. Method of Images. We consider a charge q placed at a point P(b, 0, 0) and ask if it is possible to find a point Q(z, 0, 0) such that a certain charge q' at Q will cause the potential over the sphere x2 + y2 + z2 = a2, a < b, to vanish. The answer is "Yes"! We proceed as follows : From Fig. 63 we have 82 = z2 + a2 - 2az cos B

t== b2+a2-2abcos6 We choose z so that zb = a2, and call Q(a2/b, 0, 0) the image point of P(b, 0, 0) with respect to the sphere. Thus a2

s2 = a (a2 + b2 - 2ab cos 0) =

a2 b2

0

VECTOR AND TENSOR ANALYSIS

142

[SEC. 64

and

The potential at S due to charges q and q' at P and Q is

P=

s,-I- q

t

=-t Cbq'+qJ

and p = 0 if we choose q' _ - (alb)q.

FIG. 63.

The potential at any point R with spherical coordinates r, 0, (p is

_

(a/b)q

q

(r2 + b2 - 2rb cos 0)#

[r2

+ (a4/b2) - (2a2/b)r cos 0]1 (223)

with = 0 on S and V24 = 0 where no charges exist. Now let us consider the sphere of Example 83. The function of (223) satisfies Laplace's equation and is zero on the sphere. From the uniqueness theorem of Example 69, F of (223) is the potential function for the problem of Example 83. The radial field is given by Er

8

q(r-bcos9)

or

(r2 + b2 - 2rb cos B)' (a/b)q[r - (a2/b) cos 0] [r2 + (a4/b2) - (2a2/b)r cos B];

SEC. 651

STATIC AND DYNAMIC ELECTRICITY

143

and the surface distribution is given by

_ (Er)rs _

b2 - a2

q

4ir a(a2 + b2 - 2ab cos 9)'

47r

Problems 1. A charge q is placed at a distance a from an infinite grounded plane. Find the image point, the field, and the induced surface density. 2. Two semiinfinite grounded planes intersect at right angles. A charge q is placed on the bisector of the planes. What distribution of charges is equivalent to this system? Find the field and the surface distribution induced on the planes.

3. An infinite plate with a hemispherical boss of radius a is at zero potential under the influence of a point charge q on the axis of the boss at a distance f from the plate. Find the surface density at any point of the plate, and show that the charge is attracted toward the plate with a force q2 4f2

4g2a3 fa

+

(f' - a')2

65. Conjugate Harmonic Functions. If we are dealing with a two-dimensional problem in electrostatics, we look for a solution of Laplace's equation V2V = 0. The curves V (x, y) = con-

stant represent the equipotential lines. We know that these curves are orthogonal to the lines of force, so that the conjugate function U(x, y) (see Sec. 56) will represent the lines of force. We know that V2V = V2U = 0. We now give an example of the use of conjugate harmonic functions. In Example 73 we saw that

U(x, y) = A tan-' y x

(224)

V (X, y) = 2 log (x2 + y2)

are conjugate functions satisfying Laplace's equation. If we take V (x, y) as the potential function, then the equipotentials are the circles (A/2) log (x2 + y2) = C, or x2 + y2 = e2cie.

144

VECTOR AND TENSOR ANALYSIS

[SEC. 65

Hence the potential due to an infinite charged conducting cylinder is

log r2 = A log r, r2 = x2 + y2

V (X, y) = 2 log (x2 + y2) =

since A log r satisfies Laplace's2equation and satisfies the bound-

ary condition that V = constant for r = a, the radius of the charged cylinder. If q is the charge per unit length, then

_ aV q

(Er)r..a

ar

24ra

41r

41r

r-a

A 4ara

so that A = -2q and V = -2q log r.

1e=Jr)

0

U=U1

U=U0 (0=0)

Frs. 64.

If we choose U(x, y) = A tan-1 (y/x) as our potential function, then the equipotentials U = constant are the straight lines A tan-1 (y/x) = C, or y = x tan (C/A). As a special case we may take the straight lines 0 = 0, 0 = v as conducting planes raised to different potentials (see Fig. 64). The lines of force are the circles (A/2) log (x2 + y2) = V. The theory of conjugate functions belongs properly to the theory of functions of a complex variable. With the aid of the Schwarz transformation it is possible to find the conjugate functions associated with more difficult problems involving the twodimensional Laplace equation.

Problems

1. By considering Example 72, find the potential function and lines of force for two semiinfinite planes intersecting at right angles.

STATIC AND DYNAMIC ELECTRICITY

SEC. 66J

145

2. What physical problems can be solved by the transformation

x = a cosh U cos V, y = a sinh U sin V? Show that V2U = V2V = O

66. Integration of Laplace's Equation. Let S be the surface of a region R for which V24p = 0. Let P be any point of R, and let r be the distance from P to any point of the surface S. We make use of Green's formula

fJf (,p 02' - ¢ V2V) dr = f f (9 Vi'

DAP)

dd

R

We choose ¢ = 1/r, and this produces a discontinuity inside R, namely, at P, where r = 0. In order to overcome this difficulty, we proceed as in Example 66. Surround P by a sphere Z of radius e. Using the fact that V2,P = V24, = 0 inside R' (R minus the Z sphere), we obtain

0=

f8 f (9 V r

r

V-r) - dd +

f f (p V 1r - r Vp) - dd

(225)

//

B

//

Now V(1/r) = -r/r', and on the sphere X,

r

r8

r

e$

and (1/r) VV dd is of the order eIV(pf, so that by letting e --j 0, (225) reduces to

v(p) = 4

ffir

VV - sa V

r)

dd

(226)

This remarkable formula states that the value of Sp at any point P is determined by the value of (p and V(p on the surface S.

Problems

f

1. If P is any point outside the closed surface S, show that f V(1/r)] dd = 0, where V2cp = 0 inside S and

r is the distance from P to any point of S.

VECTOR AND TENSOR ANALYSIS

146

a2

2. Let rp satisfy V2cp =

aX2 +

[SEC. 67

2

2 = 0. Let r be the closed

1P

y°

boundary of a simply connected region in the x-y plane. If P is an interior point of t, show that

a[log (1/r)]

1) app

1

,P(P) - 2x

`0 an

1(`log r an

ds

where use is made of the fact that

ff

(u an -van) da `

(u V 2V - v V 2U) dA

A

n being the normal to the curve. 3. Let (p be harmonic outside the closed surface S and assume that ip --> 0 and rI V pl -> 0 as r -' oo. If P is a point outside 8, show that

P(P) = 4x Ifs (1r V p - ip v

T

dd

where the normal dd is inward on S. 4. Let so be harmonic and regular inside sphere 7. Show that the value of p at the center of is the average of its values over the surface of the sphere. Use (226). 67. Solution of Laplace's Equation in Spherical Coordinates. From Sec. 23, Prob. 1,

+ aB (sin

+

49(p

o

(sin

0

(227)

B

To solve (227), we assume a solution of the form (228)

V(r, 0, gyp) = R(r)6(0),P(,p)

Substituting (228) into (227) and dividing by V, we obtain sin 0

d8) d( r2 dR) - J +-A (sin O -+

R dr

1

dr

0 d9

d8

1

d2 -- =

4) sin 0 d(p2

0

STATIC AND DYNAMIC ELECTRICITY

SEc. 67j

147

Consequently

_-

_1 d dR\ r R dr dr 2

d

1

0 sin 0 dB

sin

0

d9 d9

1

d4

- sin 2 0 4, dp2

(229)

The left-hand side of (229) depends only on r, while the righthand side of (229) depends on 0 and gyp. This is possible only if both quantities are constant, for on differentiating (229) with

respect to r, we obtain

d

d (r2 LR

i

J

= 0. We choose as

the constant of integration c = -n(n + 1), so that R dr (r2 dR)

n(n + 1)

or

r2

4+24+n(n+1)R=0

(230)

It is easy to integrate (230), and we leave it to the reader to show

that R = Ar" + Br-n-1 is the most general solution of (230). Returning to (229), we have

1d

'e

= n(n -{- 1) sing 0 --

sin

(sin 0 de)

(231)

d0

41)

Since we have again separated the variables, both sides of (231) are constant. We choose the constant to be negative, -m2, m being an integer. This choice guarantees that the solution of d24 d(p2

-I-mq =0

is single-valued when p is increased by tar.

(232)

The solution of

(232) is 4) = A cos mtp + B sin mcp.

Finally, we obtain that 0(0) satisfies sin 0 d0 (sino)+[n(n+1)sin2o_m2Je=o (233) We make a change of variable by letting µ = cos 0,

dµ= -sin0d0

VECTOR AND TENSOR ANALYSIS

148

[SEC. 67

so that (233) becomes

[(1 - µ2)

(1 - µ2)

+ [(1

µ2)n(n + 1) - m2]0

dµ

= 0

(234)

If we assume that V is independent of p (symmetry about the z axis), we have m = 0, so that (234) becomes (235)

d

dIA

This is Legendre's differential equation. By the method of series solution, it can be shown that 0 = P"(14)

1

d"(µ2 - 1)n

2 -n!

dµn

satisfies (235); the P (µ) are called Legendre polynomials.

Two important properties of Legendre polynomials are

the

following: f 11 P,n(;&)Pn(p) dµ

=0

if m : n

J 11 P.'(µ) dµ = 2n + 1

(236) (237)

We give a proof of (236). P. and P. satisfy

[(1 dµ

- p!) dµn1 + n(n + 1)Pn = 0

(238) (239)

Multiplying (238) by P. and (239) by P. and subtracting, we obtain

P. d- [(1 - 2) a ,, - Pn d [(1

_ u2) d µ"'

+[n(n+1) -m(m+l)PPm=0

SFC. 671

STATIC AND DYNAMIC ELECTRICITY

149

or

-M2)(Pmddn-PndPm)]

µ[(1 + [n(n + 1) - m(m + 1)]P,aPm = 0 (240; Integrating between the limits -1 and + 1, we obtain

[n(n + 1) - m(m + 1)J f i P,nPn dµ = 0 and ifm -d n, 1

PmPn dµ = 0

A particular solution of (227) which is independent of gyp, that

is, aV = 0, is given by V(r, 0) = (Anrn + Bnr-' 1)Pn(cos 0). aip

Now it is easy to show that any sum of solutions of (227) is also a solution, since (227) is linear in V. Consequently a more general solution is

V=

n-0

(Anrn + Bn7rn-1)Pn(cos 0)

(241)

provided that the series converges. If we wish to solve a problem involving V2V = 0 with spherical

boundaries, we try (241) as our solution. If we can find the constants An, B. so that the boundary conditions are fulfilled, then (241) will represent the only solution, from our previous uniqueness theorems involving Laplace's equation. We list a few Legendre polynomials:

Po(µ) = 1 Pi(µ) = A P2(p) = . (3µs - 1) P,(µ) = 4(5Aa - 3µ)

P,(µ) = 9(35."4 - 30u$ + 3) P.(0) = 0, n odd P-(0) = (_1)n/x 1-3-5 ... (n - 1)

2.4.6 ... n

Pn(1) = 1 Pn(-µ) _ (-1)"Pn(µ)

(242)

uneven

VECTOR AND TENSOR ANALYSIS

150

[SEC. 68

Problems

1. Prove (237). 2. Solve V2V = 0 for rectangular coordinates by the method of Sec. 67, assuming V = X(x)Y(y)Z(z). 3. Investigate the solution of VI V = 0 in cylindrical coordinates. 68. Applications Example 84. A dielectric sphere of radius a is placed in a uni-

form field Eo = Eok. We calculate the field inside the sphere. The potential due to the uniform field is p = -Eoz = -Eor cos 0. There will be an additional potential due to the presence of the dielectric sphere. Assume it to be of the form ArPI = Ar cos 0 inside the sphere and Br-2PI ° Br-2 cos 0 outside the sphere. We cannot have a term of the type Cr-2 cos 0 inside the sphere, for at the origin we would have an infinite field caused by the presence of the dielectric. Similarly, if a term of the type Dr cos a occurred outside the sphere, we would have an infinite field at infinity due to the presence of the sphere. If we let VI be the potential inside and V11 the potential outside the sphere, we have

VI = --Eor cos 0 + Ar cos 0 (243)

Vu = --Eor cos B + B cos 0 r2

Notice that VI and Vn are special cases of (241). We have two unknown constants, A, B, and two boundary conditions,

VI= Vu at r=a or

DN, = D.Y.

(see Sec. 62).

a I

K

=

II

a

at r = a

(244)

From (243) and (244) we obtain

A=K-'Eo,

x+2

B_aaK-1Eo K+ 2

so that

VI = I

-'V+2 Eor cos 0 = -

2 Eoz K

+

(245)

STATIC AND DYNAMIC ELECTRICITY

SEC. 681

151

We see that the field inside the dielectric sphere is

E_ -vVI=K+2Eo and E is uniform of intensity less than E0 since K > 1. the sphere

VII = -Eor cos B +

K - 1 _ Eo cos 8 K + 2 r2

Outside (246)

The radial field outside the sphere is given by

aVII=Eocos0+2K +

E,

ocos9

2aa

For a given r the maximum E, is found at 0 = 0.

Example 85. A conducting sphere of radius a and charge Q is surrounded by a spherical dielectric layer up

to r = b (Fig. 65). Let us calculate the potential distribution.

From

spherical

symmetry V = V (r), so that we try

FlG. 65.

The boundary conditions are

VI= VIIatr=b

(i)

aVI

_

aVII

at r = b Or = Or J2rJT (a D dd = K

(11)

(iii)

Q= 41r

ff s

47

T a2 sin 0 d9 dp

J

From (i) Alb = (B/b) + C; from (ii) -A/b2 = -KB/b2; from (iii) Q = (K/4x) (B/a2) f f dS = KB.

Hence

VECTOR AND TENSOR ANALYSIS

152

VI = Q'

VII =

Q +90C

1

(SEC. 68

(247)

K

Example 86. A conducting sphere of radius a and charge Q is placed in a uniform field. We calculate the potential and the distribution of charge on the sphere. We assume a solution

V = -Eor cos 0 +

B

r

The boundary condition is

Q = 4v

Jf - avlr-a dS

so that Q

=

1

4

,

f2v

f-

(E cos 8 + a a2 sin 8 d8 dsp = B

and

V= -Eorcos8+Qr For the charge distribution aV

a-

cIr

4"

4I(E0cos8+Q

Example 87. Consider a charge q placed at A (b, 0, 0). Let us compute the potential at any point P(r, 8, gyp) (see Fig. 66). The potential at P is 4

V=

= q(r2 + b$ - 2rb cos

8)_;

There are two cases to consider:

(a) r < b. Let µ = cos 8, x = r/b, so that (1 - 2µx

V= b

+2)-}

Now (1 - 2µx + x=)-} can be expanded in a Maclaurin series in powers of x, yielding

SEC. 68]

STATIC AND DYNAMIC ELECTRICITY _

m

V=b

n= b

n0 I

153

m ()fl

n0

P.(--)

( 248)

The proof is omitted here that the Pn(p) are actually the Legendre polynomials. However, we might expect this, since V satisfies Laplace's equation and P,,(µ)rn is a solution of VI V = 0. z

Fia. 66.

(b) r > b. In this case

V = q I Pn6u) rn=0

/b n

(249)

r

Notice that each term is of the form Pn(µ)r-n-1, which satisfies Laplace's equation.

Example 88. A point charge +q is placed at a distance b from the center of two concentric, earthed, conducting spheres of radii a and c, a < b < c. We find the potential at a point P

for a
For r > b, V = (q/r) 0

and for r < b, V = (q/b) 2 (r/b)'Pn(cos 0). Moreover, we have 0

VECTOR AND TENSOR ANALYSIS

154

[SEC. 68

an induced potential of the form

V = q I (Anrn + Bnr n-1)Pn(cos 0)

(250)

0

which is due to the spheres, the An and Bn undetermined as yet. Hence

For r > b: Vl = q I [Anrn + (Bn + bn)r-n-1]Pn(cos 6) 0

(251)

For r < b: [(A,, +

V2 = q

b-n-I)rn +

Bnr-n-1]Pn(cos 0

0

The boundary conditions are

V1=0atr=c

(i) (ii)

(252)

V2 = O at r = a

These yield the equations

Ancn + (Bu + bn)c-n-1 = 0 (An + b-n-1)an + Bna n-1 = 0

(i) (11)

so that a2n+1 (C2n+l

Bn T bn+l (a2n+l

-- b2n+l)'

C2n+1)'

A. + b-(n+1) _

b-n-1(C2n+1

-

b2n+1)

a2n+1 - C2n+l

Hence

j m

V2(P) = q

n

-0

b2n+1 - C2n+1 bn+l(a2n+l - C2n+1)

(rn

a2n+1

- rn+1 Pn(cos 0)

(253)

Problems 1. Show that the force acting on the sphere of Example 86 is F = kQEok.

2. A charge q is placed at a distance c from the center of a spherical hollow of radius a in an infinite dielectric of constant K. Show that the force acting on the charge is

STATIC AND DYNAMIC ELECTRICITY

SEC. 691

155

n(n + 1) 2n+1 ,410n+K(n+ 1)(a/

(K - 1)g2'' c2

3. A point charge q is placed a distance c from the center of an

earthed conducting sphere of radius a, on which a dielectric layer of outer radius b and constant K exists. Show that the potential of this layer is m

V

=

(2n + 1 )b2n+1(rn - a2n+lr-n-1) q -c n c cn { [(K +1)n + 1]b 2n+1 + (n +1)(K -1)a 2n+1 } Pn(cos e) 0

4. Show that the potential inside a dielectric shell of internal and external radii a and b, placed in a uniform field of strength E, is

V=

9KE

9K - 2(1 - K2)[(b/a)3 - 1]

r cos 0

5. The walls of an earthed rectangular conducting tube of infinite length are given by x = 0, x = a, y = 0, y = b. A point charge is placed at x = xo, y = yo, z = zo inside the tube. Show that the potential is given by V = 8q

I (m2a2 + nil m-1

n2b2)-e-a-'b-'(mta'+n$t)i*(s-ss)

to

sin

n1rx0

a sin

nrx a

sin

mTryo

b

sin

miry b

69. Integration of Poisson's Equation. Instead of assuming that p is harmonic, let us consider that 1p satisfies V2co = -47rp. By applying Green's formula as in Sec. 66, we immediately obtain

,P(P) = Jff rdr+Jf (rVp

- jP 0

(254)

If we make the further assumption that rp is of the order of 1/r for large r and that jVjpj - 1/r2, we see that by pushing S out to infinity the surface integral will tend to zero. Our assumption is valid, for if we assume the charge distribution to be bounded by some sphere, then at large distances the potential will be of the order of I /r, since we may consider all the charges as essentially

156

VECTOR AND TENSOR ANALYSIS

[SEc. 70

concentrated at a point. Thus

V(P) = JJf e dr

(255)

70. Decomposition of a Vector into the Sum of Solenoidal and Irrotational Vectors. In Example 70, we saw that if Ifl tends to

zero like 1/r2 as r --> oo, then f as uniquely determined by its curl and divergence. We now proceed to write f as the sum of irrotational and solenoidal vectors. Let f dr

W(P) = JfJ

(256)

where r is the distance from P to the element of integration dr. If we write f = fli + f j + f k, W = WA + W,,j + Wek, then

f

ffrldr

W2 = f f f

f2

dr

(257)

M

W3=fffr$dr

00

We assume that the components of f are such that the integrals of (257) converge and that I Wl - 1/r, I V W,,l '' 1/r2, n = 1, 2, 3. From Sec. 69, V2W. = -4xfn, so that

V2W = -4,rf

(258)

From (256)

(259)

VxW= JJJf xVdr 40

Now

V x(V xW) =

--V2W

SEc. 711

STATIC AND DYNAMIC ELECTRICITY

157

so that f

=4-V

-4

X

X

and hence

f = V x A + Vcp

260)

where

A=4-VxW, = Problems 1. Show that (256) is a special case of (254). 2. Find an expression for (p(P) if V2(p = -41rp inside S and if P is on the surface S.

3. f = yzi + xzj + (xy - xz)k. Express f as the sum of an irrotational and a solenoidal vector. 71. Dipoles. Let us consider two neighboring charges -q and +q situated at P(x, y, z) and Q(x + dx, y, z). The potential at

the origin 0(0, 0, 0) due to -q is -q/r, and that due to +q is q/(r + dr), where r = (x2 + y2 + Z2)I and

r+dr= [(x + dx)2 + y2 + Z2]1 The potential at 0(0, 0, 0) due to both charges is q

r + dr

q

r

g2dr r2

Now dr = x dx/r, so that rp - qx dx/r3. If we now let q -p co and dx -+ 0 in such a way that q dx remains finite, we have formed what is known as a dipole. Let r be the position vector from the origin to the dipole, and let M = q dr, where dr is the vector from

the negative charge to the positive charge; !drl = dx. We have (M r)/r8 = (qr dr)/ra = (qx dx)/r3, so that

M is called the strength or moment of the dipole.

than one dipole, the potential at a point P is given by

For more

VECTOR AND TENSOR ANALYSIS

158

i= i

[SEC. 72

(Mi.ri) ri3

where r; is the vector from P to the dipole having strength M. Example 89. The field strength due to a dipole is E _ --Vv so that r (262) E = V rs ) rs ra

-

-

Example 90.

Potential energy of a dipole in a field of potential V.

Let (p, be the potential at the charge q and c2 the potential at the charge -q. The energy of the dipole is

L

app

ds = M W = spiq + IP2(-q) = q(spl - IP2) = g as ao where ds is the distance between the charges. Now

d,p = ds V p

so that W = M as VV = M V(p. 72. Electric Polarization. Let us consider a volume filled with dipoles. The potential due to any single dipole is given by (261). If we let P be the dipole moment per unit volume, that is, P = lim (AM/or), then the total potential due to the dipoles is A"o

= I f f r ra- dr

(263)

Now V V. (P/r) = (1/r)V P - [(P r)/r3]. The reason that we have taken V(1/r) t= r/r3 instead of -r/r3 is that

r = [( - x)2 + (n - y)2 + (J

- z)2]'

and V performs the differentiations with respect to x, y, z, the coordinates of the point P at which V is being evaluated. The coordinates t, ot, t belong to the region R and are the variables of

integration, and r = (E - x)i + (n - y)j + (r - z)k. (263) becomes `P=fffv.(!)dr R

fff R

Hence

SEC. 72]

STATIC AND DYNAMIC ELECTRICITY

159

and

(p -

ff!.dd_ fff_!d

r

(264)

by applying the divergence theorem. Example 91. Let us find the electric intensity at the center of a uniformly polarized sphere. Here P = Pok, so that V P = 0 inside R. Hence (264) becomes sp(x, y, z) =

Pok dd

ff

x)2 + (71 - y)2 + ( - z) 2]i

S

and

E=

fj

Po(k

dd)[(E - x)i + (n

- y)j + (1' - z)k]

[(E-x)2+(7] -y)2+(J -z)2]$

S

E(0,0,0)

f

f

ni + 'k)Po(k dd)

(265)

Now for points on the sphere, 52 +' 72+-2 = a2,

and letting t = a sin B cos -o, n = a sin 0 sin tp, is easily seen that (265) reduces to

E(0, 0, 0) = -frPok

a cos 0, it (266)

E is independent of the radius of the sphere. By superimposing (concentrically) a sphere with an equal but negative polarization, we see that the field at the center of a uniformly polarized shell is zero. Problems 1. Prove (262). 2. Prove (266). 3. If M1 and M2 are the vector moments of two dipoles at A and B, and if r is the vector from A to B, show that the energy - 3(M1 r)(M2 r)r-6. of the system is W = M1 4. The dipole-moment density is given by P = r over a sphere of radius a. Calculate the field at the center of the sphere. Mgr-a

160

VECTOR AND TENSOR ANALYSIS

[SEc. 73

73. Magnetostatics. The same laws that have held for electrostatics are true for magnetostatics with the exception that OZcp.. = 0 always, since we cannot isolate a magnetic charge. We make the following correspondences, since all the laws of electrostatics were derived on the assumption of the inversesquare force law, which applies equally well for stationary magnets.

EH

Magnetostatics

Electrostatics q

qm

D ---) B (magnetic induction) K <---- u (permeability) D = KE F----- B = µH

(267)

0

74. Solid Angle. Let r be the position vector from a point P N to a surface of area dS and unit normal N, that

is, do = N dS. We define the solid angle subtended at P by the surface dS to be (see Fig. 67)

dct =

r3

P Fia. 67.

The total solid angle of a surface is

J'r.do r S 3

Example 92.

(268)

Let S be a sphere and P the origin so that 12(P)=

4rdS=4u r

fJr

Example 93. The magnetic dipole is the exact analogue of the electric dipole. We consider a magnetic shell, that is, a thin sheet magnetized uniformly in a direction normal to its surface (Fig. 68). Let $ be the magnetic moment per unit area and

STATIC AND DYNAMIC ELECTRICITY

SEC. 75]

161

assume S = constant. The potential at P is given by

sff r,MdS=13 f f rras=On Now let P and Q be opposite points on

the negative and positive sides of the surface S.

We have

,p(Q) = -P(4ir - 11)

so that the work done in taking a unit positive pole from a point P on the negative side of the shell to a point Q on the positive side of the shell is given by

P Fur. 68.

W = f," H H. dr = - f,' Vp . dr = *(P) - F(Q)

=6U+$(4,r- 9) W = 4x-8

(269)

75. Moving Charges, or Currents. If two conductors at different potentials are joined together by a metal wire, it is found that certain phenomena occur (heating of the wire, magnetic field), so that one is led to believe that a flow of charge is taking place. Let v be the velocity of the charge and p the density of charge. We define current density by j = pv. The total charge passing through a surface per unit time is given by

ffpv.do_ Jfj.dd Now the total charge inside a closed surface S is Q = f f f p dr. R

If there are no sources or sinks inside S, then the loss of charge

per unit time is given by - aQ = -

ffpv.dd=-

f f at dr. R

dr

Thus

162

VECTOR AND TENSOR ANALYSIS

[SEC. 76

Applying the divergence theorem, we have 0

(270)

or

at

=

0

Equations (270) are the statement of conservation of electric charge.

We define a steady state as one for which p is independ-

ent of the time, a = 0, which implies V j = 0. It has been found by experiment that if E is the electric field, then

j = XE = -A VM

(271)

where X is the conductivity of the metal. This is Ohm's law. a

For the general case, j, = I Xa,gE#, and the simplest case, 69=1

X = constant, so that V2(p = 0 for the steady state.

We now compute the work done on a charge q as it moves The

from a point of potential p, to one of potential 02, Ip2 > 92. energy at (pi is qpl and at V2 is q(p2. The loss in energy is W = (1v1 - Iv2)q

This loss in electrical energy does not go into mechanical energy, since the flow is assumed steady. Hence the electrical energy

is converted into heat, Q = (,p1 - p2)q. The power loss is

P = dt

= (1P1 - (P2) dq,

and since 01 - 02 = RJ (another form

of Ohm's law, where R is resistance and J current), we have

P=RJ2

(272)

76. Magnetic Effect of Currents (Oersted). Experiments show that electric currents produce magnetic fields. The mathematical expression for the magnetic field is given by dH =

Jr x dr (273) cra

STATIC AND DYNAMIC ELECTRICITY

SEC. 76]

163

where r is the vector from the point P; P is the point at which we calculate the magnetic field dH due to the line current J in that

portion of the wire dr, and c is a constant, the ratio of the electrostatic to the electromagnetic unit of charge (see Fig. 69).

Q (tn'r)

Biot and Savart

established this law for straight-line currents. For a closed path

Jrxdr

H=

(274)

P (x,y, z)

cra

Fra. 69.

- x)2 + (n - y)2 + ( - z)2];, and V(1/r) = r/ra, + j a + k az. Hence where V = i clx Now r = [(E

y

H=1fiJVI c r

x(Jdr r

c

since V does not operate on dr and J is a constant. Thus H = V x A, where A = (1/c) J dr/r = (11c) f f f i dr/r is integrated over all space containing currents.

Now V A = fif V (j/r) dr

f f (j/r) s

dd, so that if all

currents lie within a given sphere, we may push the boundary of R to infinity, since nothing new will be added to the integral yielding A. But when S is expanded to a great distance, j = 0

on S, so that that V A = 0. Also V x H = -VIA. Now since A = (1/c)

f f f j dr/r, or 0

A. = (1 /C)

f f f is dr/r, A. = As

(1 /c)

f f f j dr/r,

is dr r fff

164

VECTOR AND TENSOR ANALYSIS

we have from Sec. 69 that V2A = -- (47r/c)j.

[SEC. 76

Thus

VxH=47j c

(275)

Example 94. The work done in taking a unit magnetic pole around a closed path r in a magnetic field due to electric currents is

ff

c

S

ff s

For an electric current J in a wire that loops r, we have (276)

Example 95. The magnetic field at a point P, r units away from an infinite straight-line wire carrying a current J, is obtained by use of Example 94.

H dr = H(2irr) =

4a c

J

so that

H=

27 cr

We compute the dimensions of c//. Now

Example 96.

f. = qaq,'/Kr2, and f. = qqm'/µr2 so that [M][L]

[g612

[q+x]2

[712

[K][L]2

[µ][L]2

and

[J]

[dq,/dt]

[c]

[c]

[g] [c][T]

[M14[L][K]}

[c][T]2

F rom (276) , Work

Unit pole

=

H

,

dr

c

so that [M][L]2 _ [J] [gm][T]2

= 4'rJ

[c]

SEc. 77]

STATIC AND DYNAMIC ELECTRICITY

165

and

[Ml}[L];

[M]}[Ll'[K]i

[7'][µl}

[c][TJ2

yielding

L/i

[TL]

We see that c// has the dimensions of speed. We shall soon see the significance of this.

(2)

(1)

Fca. 70.

77. Mutual Induction and Action of Two Circuits.

Consider

two closed circuits with currents J, and J2 (Fig. 70). The magnetic field at 0 due to J, is H, = V x A, where

A,=J, r dr c (1)r We define the mutual inductance of the two circuits as the mag-

netic flux through the surface B due to a unit current in (1). This is

IM=

f f L da= f f a

a

1(2) A1. dr = c 1(2)

(1(1)

drl)

dr2

Hence

M=

dr, dr,

1 C

f(2)J(1)

r

(277)

The current element J2 dr2 seta up a magnetic field, so that from Newton's third law of action and reaction, any magnetic

166

VECTOR AND TENSOR ANALYSIS

[SEC. 77

field will act on J2 dr2 with an equal and opposite force. Thus

df = J 2 drz x H, =

J,cJ2

(L) dr, x V r

x dr2

(278)

and integrating over (2) we obtain

f-J,J2f drzxf (2)

C

OZ

(1)

r

xdr,

Now dr2 x (TI 1 x

r

dr,) = V 1 (dr, dr2) - (dr2 "V 1) dr, r r

and J 2) [dr2 - v(1/r)] dr, =

f=

I2)

d(1/r) dr, = 0, so that

Jc 2

J (2)1(1)

(C'

1) (dr,

dr2)

This is the force of loop (1) on loop (2).

(279)

It is equal and

opposite to the force of loop (2) on loop (1), this being immediately deducible from (279) when we keep in mind that

v-=-V1

1

r2,

r12

In (279), r = r2,. Example 97. We find the force per unit length between two long straight parallel wires carrying currents J, and J2. We use (278) and the result of Example 95. We have H, = (2J,/cd)i at right angles to the plane containing the wires. Hence

df=Jzdr2x 2J, di.

=

2J,J2

dr2xi

and the force per unit length is F = 2J,J2/cd. If the currents are parallel, F is an attractive force; if the currents are opposite, F is a repulsive force. Problems

1. From (278) show that f = J2 f f dd2 x (V X H,). a 2. Find the force between an infinite straight-line wire carrying

a current J, and a square loop of side a with current J2, the

SEC. 791

167

STATIC AND DYNAMIC ELECTRICITY

extended plane of the loop containing the straight-line wire, and the shortest distance from the wire to the loop being d. 3. A current J flows around a circle of radius a, and a current J' flows in a very long straight wire in the same plane. Show

that the mutual attraction is 4irJJ'/c(sec a - 1), where 2a is the angle subtended by the circle at the nearest point of the straight wire.

4. Show that A = (J/c) f f dd x V (1 /r) for a current J in a S

closed loop bounding the area S.

For a small circular loop, show

that A = (M x r/r$), where r is very much larger than the radius of the loop and is the vector to the center of the circle, and where

M=c f f dd 78. Law of Induction (Faraday). It has been found by experiment that a changing magnetic field produces an electromotive force in a circuit. If B is the magnetic inductance, the flux through a surface S with boundary curve r is given by f f B dd. S

The law of induction states that

-ca f f Applying Stokes's theorem, we have

_ - =VxE C at

(280)

The time rate of change of magnetic inductance is proportional to the curl of the electric field. Equation (280) is a generalization of V x E = 0, which is true for the electrostatic case in which

B = 0 and for the steady state for which atB = 0.

79. Maxwell's Equations. Up to the present we have, for an electrostatic field, V x E = 0, V D = 4,rp and, for stationary currents, V x H = (41r/c)j, V- B = 0.

VECTOR AND TENSOR ANALYSIS

168

Now V x E_- 1CaB at

[SEC. 79

a generalization of V x E = 0.

is

Maxwell looked for a generalization of V x H = (41r/c)j. He decided to retain the two laws: (1) V D = 4rp as the definition

of charge, and (2) V j +

at

= 0 as the law of conservation of

charge.

Let us assume

VxH=4w(j+x)

(281)

C

We take the divergence

as a generalization of V x H = (47r/c) j. of (281) and obtain

(282)

so that

= - V j = at = Oar at (V . D)

V

aD 0

so that

We can choose Z =

VxH= w- (i

+--aD) (283)

C

We call -

aD t

the displacement current.

We rewrite Maxwell's equations

V D = 4irp (284)

V X

4c \1 + 41r aD1 t

SEC. 801

STATIC AND DYNAMIC ELECTRICITY

169

We have in addition the equation

f=p(E+1vxBJ

(v)

\\

(285)

C

where f is the force on a charge p with velocity v moving in an electric field E and magnetic inductance B. This result follows from Sec. 77.

Problems

1. Show that the equations of motion of a particle of mass m and charge e moving between the plates of a parallel-plate condenser producing a constant field E and subjected to a constant magnetic field H parallel to the plates are

md-

= Be -

dy

d

dx = He ML dt dtz

Given that

d

dt

= x = y = 0 when t = 0, show that

z = (E/wH) (1 - cos wt), y = (E/(X) (wt - sin wt), where He

w = -

m

2. From (iii) of (284) show that V - aB = 0.

3. From (i) and (iv) of (284) show that

D) -

at

4. Write down Maxwell's equations for a vacuum where

j=p=O,D=E,B=H.

80. Solution of Maxwell's Equations for "Electrically" Free

Space. We have p = j = 0 and c, u are constants. Equations (284) become

VECTOR AND TENSOR ANALYSIS

170

[SEC. 80

V E=0

(i)

VH=0 vxE=

(ii)

aH

(286)

K aE vxHcat

We take the curl of (iii) and obtain

V x (V x E) = V(V E) - V2E _ or

V2E =

µK a2E

C2 at2

(287)

by making use of (i) and (iv). Similarly

V2H -

JLK a2H C2

8t2

(287a)

Equation (287) represents a three-dimensional vector wave equation. To illustrate, consider a wave traveling down the x axis

with velocity V and possessing the wave profile y = f(x) at t = 0. At any time t it is easy to see that y = f(x - Vt). From y = f(x - Vt) we have

a2-y

= f"(x - Vt) and

at= = V2f"(x - V0 so that a2y ax2

1 a2y V2 at2

(288)

Equation (287) represents three such equations, and µK/c2 plays

the same role as 1/V2, so that c/V has the dimensions of a velocity (see Example 96).

c = 3 X 1010 by experiment. z

Example 98.

We solve the wave equation V2f = Y2 at2 in

spherical coordinates where f = f(r, t).

STATIC AND DYNAMIC ELECTRICITY

SEC. 80J

171

Vf = f'(r, t) Vr = f' r V2f

=

V.(rr/

3f+rf" = rf V - r+V(

)'r f,

Our wave equation is 2 of

19 2f

1 a2f V28t2

are+rar

(289)

Now let u(r, t) = rf(r, t); then

af_1au Or

r Or

u

02fi0 2u2au

r2

are

r are

r2 Or

2

+

r2

and substituting into (289), we obtain a2u V2 at2

82u

are

of which the most general solution is

u(r, t) = g(r - Vt) + h(r + Vt) and so

.f(r, t) = r [g(r - Vt) + h(r + Vt)]

(290)

is the most general solution of (289).

Let us now try to determine a solution of Maxwell's equations

for the case E = E(x, t), H = H(x, t).

Now V E = 0, so that which implies

aE=(x, t)

8E.(x, t) ax = 0.

ax

+

aEy(x, t) ay

+

8Eg(x, t) az

0,

We are not interested in a uniform

field in the x direction, so we choose E. = 0. Hence

E = EE(x, t)j + Es(x, t)k and similarly

H = Hy(x, t) j + H.(x, t)k

172

VECTOR AND TENSOR ANALYSIS

[SEC. 80

Now we use Eq. (iii) of (286), V x E _ - c axt , so that i

j

k

a

a

a

ax

ay

az

0

Ey

E.

AaH, i

LaH,

at c at

c

k

or

(i)

OE.

,.8H4

ax

c

at

aE,

aH,

ax

at

(291)

Similarly, on using (iv) of (286), we obtain (i)

aH,

K aE

8x

c at

aH,

K aE,

ax

c at

(292)

The four unknowns are E., E,, H,,, H,, which must satisfy (291) and (292). If we choose H = E, = 0, we see that (i) of (291) and (ii) of (292) are satisfied. Differentiating (ii) of (291) with respect to x and (i) of (292) with respect to t, we obtain a2Ey

axe

UK 61%

C2 at2

(293)

We leave it to the reader to show that 82H. ax2

Ax a2H, c2

at=

(294)

'These equations are of the type represented by (288). Hence a solution to Maxwell's equations is E = [E,,(') (x - Vt) + Eyes) (x + Vt)Jj H = [H,(')(x - Vt) + H,{2>(x + Vt)Jk

(295)

where V = c(AK)"}.

Both waves are transverse waves, that is, they travel down the x axis but have components perpendicular to the x axis.

SEC. 801

STATIC AND DYNAMIC ELECTRICITY

173

Also note that E H = 0, so that E and H are always at right angles to each other.

By letting H. = Er, = 0, we can obtain another solution, E = E.(x, t)k, H = H (x, t)j. These two solutions are called the two states of polarization, the electric vector being always oriented 90° with the magnetic vector. Example 99. We compute the energy density. 2

w,n=

_

_

We _

BH 2

and w = w, +

2 µH.2

2 µH2

2 = 2 =w.

=2

2w, = 2 ,. = KE 2, and for both waves

w, = K(E,,2 + E.2). We have here used the fact that

(see Prob. 1). Example 100. Maxwell's equations in a homogeneous conducting medium are

V.E=4p K

V.H = 0 OH

7E

c at

VxH=4c1uE+4v

a/

Assume a periodic solution of the form z)e-;'e

E = Eo(x, y, H = Ho(x, y,

z)e-'"e

Substituting into (iv), we obtain e--;tee V

x Ho =

4 1t oe.-;'eE0 -

iKW

or

VxHo

4a/ =-lo-Eo 2Kw

C

4r

(296)

VECTOR AND TENSOR ANALYSIS

174

[SEC. 81

This equation is the same as that which occurs for "electrically" free space with a complex dielectric coefficient. Problems

1. By letting E = f(x - Vt), Hz = F(x -- Vt), V = c/, show that H. = VKIIA E. 2. Derive (287a). a2y = 3. Letr=x- Vt, s =x+ Vt, and show thataX2

1 a2y V2 at2

2

reduces to -ay = 0. Integrate this equation and show that the Or as

general solution of (288) is y = f(x - Vt) + F(x + Vt), where f and F are arbitrary functions. 4. Prove that Maxwell's equations for insulators (a = 0) are

v x H=

KaE C at

V x E_- c a

and

(297)

5. Show that the solution of (297) can be expressed in terms of a single vector V, the Hertzian vector, where

aV 2

H=-vx at

and V satisfies V2V =at2 c. 6. Prove

thatE=-VxeH= at c

-V(V.W)+Kµa

2W

C2 at2

isa

192W

solution of (297), provided that W satisfies V2W = e

at2

7. Derive (294). 8. Look up a proof of the laws of reflection and refraction. 9. By considering (i) and (iv) of Example 100, show that

P=

Poe-4x'`i`

81. Poynting's Theorem. Our starting point is Maxwell's equations. Dot Eq. (iii) of (284) with H and Eq. (iv) with E and subtract, obtaining

c(H-V xE -

xH) = -H aB at

ID at

(298)

STATIC AND DYNAMIC ELECTRICITY

SEc. 821

Now from (218) aw, at

1

E

4ir

aD

aw,,

at

at

_

175

H aB 4r at 1

Let us write j = jo + jc where jo represents the galvanic current and j. = pv, the conduction current. Now dr

awmec,,,,a;c,,

awM

at

at

and from Sec. 75 it is easy to prove that E ja is Joule's power loss =

aQ

Moreover, H V x E - E V x H = V (E x H), so

that we rewrite (298) as

c V (E X H) = -41r

aw,

aw, at

+

at

aQl

awm

+

at

+

at

(299)

Integrating over a volume R and applying the divergence theorem, we obtain

f if aQ dr + 4r f f E x H- dd

f f at dr J

(300)

where w is the total energy density. We define s = (c/4x)E x H as Poynting's vector. Equation (300) states that to determine the time rate of energy loss in a

given volume V, we may find the flux through the boundary surface of the vector s = (c/4T)E x H and add to this the rate of generation of heat within the volume. It is natural to interpret Poynting's vector as the density of energy flow. Problems

1. Find the value of E and H on the surface of an infinite cylindrical wire carrying a current. Show that Poynting's vector represents a flow of energy into the wire, and show that this flow is just enough to supply the energy which appears as heat.

2. Find the Poynting vector around a uniformly charged sphere placed in a uniform magnetic field.

3. If E of Sec. 80 is sinusoidal, E = Eo sin co(x - Vt)k, find the energy density after finding the magnetic wave H.

82. Lorentz's Electron Theory. For charges moving with velocity v, j = pv, and Maxwell's equations become

VECTOR AND TENSOR ANALYSIS

176

[SEc. 82

4irp

(i) (ii)

(iii)

(301)

(iv)

V

xH

= 4c

D)

+

(pv

These equations are due to Lorentz. From (ii) we can write B = V x (Ao + Vx) = V x A. Substitute this value of B into C

(iii) and obtain V x E

v x Af or its equivalent

vx(E+catA/

0

I

Thus E + A is irrotational, so that E + 1

-vgp.

A

Let D= KE, B = pH, and substitute into (iv). We have I µ

V x (V xA) =

-

r Ipv+ 4a(

z at2A-vaC1 SO

t

c

and since V x (V x A) = --V2A + V(V A), we obtain z

v2A

cl-p

v + V j,

c2 at2

(302)

where

vA+c2 at Now

= -K V2(p -

K(--AKa2S0/ C

at

c

Kp, 12,p

4rp

_

14

c2 812

K

so that

_ vg

cat

at2

(303)

SEC. 821

STATIC AND DYNAMIC ELECTRICITY

177

Equations (302) and (303) would be very much simplified if

VA+

we could make

KA a

c- at

__ O.

This is called the equa-

tion of gauge invariance.

Let us see if this is possible. i aA° = Now B = V x A0 and E -v4p° so that + C at l aA

I aAo

cat - vp

E = -cat where A = A0 + V. Thus c1

(BA

aA0

at

at

1a

-cat °x =

v((P°

c°)

and

_

Iax _ C at 1 a2x C ate

(p + constant

asoo

aso

at

at

Now we desire

a' c2 at

ao C

z

at

C

at21

or 2

vzx

a°

-v A0

cz atz

cz

(304)

The right-hand side of (304) is a known function of x, y, x, t. This equation is called the inhomogeneous wave equation, and if the equation of gauge invariance is to hold, we must be able to solve it. If we can solve it, the Lorentz equations will reduce to four inhomogeneous wave equations and so will also be solvable. They are

v2A-c2

a2t2

=

v25p-=-= K a2c C2 at 2

4cµP,v,

(305)

4w K

P

VECTOR AND TENSOR ANALYSIS

178

(SEC. 83

Problems

1. For the Lorentz transformations (see Prob. 11, Sec. 24), show that a2,p

825,

1 a2p c2at2

a24,

a2tp

a2,p

a2(p

1 a2V

c2ai2

the D'Alembertian. We call 2. Consider the four-dimensional vector C; = (A1, A2, A3, -q'), 2

i = 1, 2, 3, 4, the A; satisfying V2A = C2 at2' while p satisfies 2

V 2v = -

with H = V x A, and E=

4,

-cat -

Let

X, = x) x2 = y, x3 = z, x' = ct, and show that

_ F"

Show that

0

_ aC;

8C; C axi

- H.

Hr

axf

-HY

0 Hx

E.

EY

H, - Es

- Hz - Es 0 E.

--E, 0

axr,s = 0, i = 1, 2, 3, 4, yields V x H =

-1

V E = 0, Fit = -F;;, i or j = 4, otherwise Fu = F;1.

at

and Also

show that

aFj-

aF.# axy

+

axp

3. If P;;

+

= °

ax.

aH

yields V x E _ 4

aF#,

a, P, y = 1,2,3,4

and V H = 0.

4

axa axs

c

formations P12 = -171 =

show that for the Lorentz trans-

Ht

ll -

(y2/C2)]l

Complete the ma-

trix P 1.

83. Retarded Potentials. Kirchhoff's Solution of

72

1

V2

2

av

- 47rF(x, y, z, t)

STATIC AND DYNAMIC ELECTRICITY

SEC. 83]

179

To find the solution (p(P, t) of the inhomogeneous wave equation at t = 0, we surround the point P by a small sphere of

Fia. 71.

radius e, and let S be the surface of a region R containing P (see Fig. 71). We apply Green's formula to this region.

fJ f

dT = f f

V2,p

R

Vp - V#) dd

B

+ f f (# V-p - p Vu')

dd

(306)

9

We choose for ¢ a solution of 'V24, - V2 a

= 0. We know

that 4, = f(r + Vt)/r is one such solution, where f is arbitrary. Equation (306) now becomes

V2f

If

(4,,,2,p

t_V

actd-r-4'rfff FOd-r= f f R

.. .

B

+ fJ a

.

(307)

VECTOR AND TENSOR ANALYSIS

180

[SEc. 83

Equation (307) is true for all values of t so that we may integrate

(307) with respect to t between limits t = tl and t = t2. We obtain

III

at

1:2l

at

j:2

dT - 4

dt j f f F4, dT

f dt (if .. rr

=

.+

Now on E, ¢ _ (1/E)f( + Vt) and

v o da = -

j

f

ar,._ = 1 [f(E + Vt) E

(308)

+ Vt)] dS

2

so that (308) reduces to 12

V2

f

If [f(r + Vt) &p at r

- 4w f if + 91

Vf'(r + Vt)1t2

r

fiFf(r+

t)dt dr = f,t: dt

Ef'(E + Vt)

dr

t,

f(E + Vt) R]

`

f

E

[f( Vt) 1

, da .+ f f

JJ

E2

...}

(309)

s

Let us now return to a consideration of f(r + Vt). Since f is arbitrary, let us choose f ° 0 for jr + VtI > 6, with the addias f(r + Vt) d(r + Vt) = 1, where 6 is tional restriction that arbitrary for the moment. Notice that f = 0 for Ir + Vti > a. Now let us choose t2 > 0 and tl negatively large, so that for all values of r in the region R, jr + Vt[ > a. Hence

f

[f(r + Vt) &p r at L

_

_

Vf'(r + Vt)

r

Itt,

since Ir + V121 > a, I r + V4J > S. Moreover

ft

F f(r

+ Vt) dt = 1 fttip f(r + Vt) d(r + Vt)

=Vj

da F

f (x) dx

(310)

for a fixed r. Now if S is chosen very small, the value of (310) reduces to approximately

STATIC AND DYNAMIC ELECTRICITY

SBc. 831

1

r z=o (F)

V

IL f(x)

dx =

181

1

V

(r

t_-r/v

Hence the left-hand side of (3' 09) reduces to 4V

(311)

()t_-r/vdr

Now considering the right-hand side of (309), we see that

lim e-.0

ff

E

rf(E + Vt) Dtp L

E

(pf'(E + Vt)

+

R] dd = 0

E

since dd is of the order E2, and f, f , tp, Dtp are bounded for a fixed a.

We also have that

lim -

t: jI

dt f f

since f f dS =

'pE, f(E + Vt) . dS = -

1

v 47rcp(P)

(312)

and for small 6,

E

Finally,

fs f i:'

dtlf(r+ Vt)D

(rf'

Dr] dd

2

r2

L

ii fl'

= s

dt{f(r+Vt)Dp-Vr].dd

r

r

f

- f f j,t dt r f'(Dr . dd) = ff f .t dt

[f(r + Vt) r

+ -f Dr] . dd + f f j i s rV f at dt (Dr dd)

(313)

s

on integrating by parts and noticing that f} = 0. Finally the right-hand side of (313) becomes equivalent to

V sf f(rD t - -r/V -,p t--r/V

1

r

1

t3(o

rV at t- -r/V (314)

VECTOR AND TENSOR ANALYSIS

182

[SEC. 83

Combining (311), (312), and (314), we obtain V(P)

` 1 JR J

F=

dr

-r/ v 1

- i fJ

(v , ~

S

V r + rV at

V

r)

dd

(315)

t= -r/'V

Now let S recede to infinity and assume that (p,

when

evaluated at t = -r/V on the surface S, have the value zero until a definite time T. For large r, t = -r/V is negative and so is always less than T. Hence the surface element vanishes, and V

(P)=

JJJ

t- -r/V

di

-

(316)

The solutions to (305) are thus seen to be A (P,

t) =

f fJ W

4

pv

Ie

r t-(r/V)

,v(P,t)'JLI x t - (r/V) whe re V = Finally,

dr 317)

dr

B=VxA l aA E=-'cat-V

(318)

The physical interpretation of these results is simple. The values of the magnetic and electric intensities at any particular point P at any instant t are, in general, determined not by the state of the rest of the field (p, v) at that particular instant, but by its previous history. The effects at P, due to elements at a distance r from P, depend on the state of the element at a previous time t -- (r/V). This is just the difference in time required for the waves to travel from the element to P with the velocity V = c/ V AK, hence the name retarded potential. Had we considered the function f(r - Vt), we should have obtained a solution depending on the advanced potentials. Physically this is impossible, since future events cannot affect past eventsl

SEC. 831

STATIC AND DYNAMIC ELECTRICITY

183

Problem

1. A short length of wire carries an alternating current, j = pv = Io (sin wt)k, -1/2 5 z 5 1/2. (a) At distances far removed from the wire, show that

A=

j-o1

cr

sin w

(t

- rc//J k

and that in spherical coordinates A,.

=jot sin wit - r1 cos 0

\ c/l / Isin0 Ae= - Iotsinwltc// cr cr

A, =O (b) Show that H, = He = 0, and that Hw =

cr sin 0

cos w Ct - c) + r sin w IC

t - -) 1

(c) Find p from the equation of gauge invariance, and then

E,, E8, E from E + c A - V o.

CHAPTER 6 MECHANICS

84. Kinematics of a Particle. We shall describe the motion of a particle relative to a cartesian coordinate system. The motion of any particle is known when r = x(t)i + y(t)j + z(t)k is known, where t is the time. We have seen that the velocity and acceleration, relative to this frame of reference, will be given by

v' dt i +dt a=

d2y

d2x dtz 1

+

dt

j

dtz

k

d zz

+

dt2

k

The velocity may also be given by v = vt, where v is the speed

and t is the unit tangent vector to the curve r = r(t). Differentiating, we obtain

a=dt

dtt+vdsdt

by making use of (95).

=dtt+Kv2n

(319)

Analyzing (319), we see that the accelera-

tion of the particle can be resolved into two components: a tangential acceleration of magnitude dt, and a normal accelera-

This latter acceleration is called centripetal acceleration and is due to the fact that the velocity vector is changing direction, and so we expect the curvature to play a role here. For a particle moving in a plane, we have seen in Sec. 17, Example 18, that the acceleration may be given by tion of magnitude v2rc = v2/p.

2r

2l

- r ` de]R -}- r d (2 de P = [ dt r

a

184

MECHANICS

SEC. 84J

Example 101.

185

Let us assume that a particle moves in a plane

and that its a cceleration is only radial. In this case we must have r d [ r2 de1 = 0, and integrating, +r2 dte = h = constant.

From the calculus we know that the sectoral area is given by dA = }r2 dB (see Fig. 72). Thus dA = constant, so that

equal areas are swept out in equal intervals of time. Example 102. For a particle

Fie. 72.

moving around a circle r = b with constant angular speed coo = d

we have dt = 0 and

(r2wo) = 0, so that a = -bwo2R.

Example 103. To find the tangential and normal components of the acceleration if the velocity and acceleration are known.

v=vt, and

a v = vat Also

so that

as =

v

axv=va,nxt= -vanb

and

an = I$)V,i°I

Problems 1. A particle moves in a plane with no radial acceleration and constant angular speed wo. Show that r = Ae"o' + Be at. 2. A particle moves according to the law

r = cos t i + sin t j + t2k Find the tangential and normal components of the acceleration.

VECTOR AND TENSOR ANALYST °

186

[SEc. 85

3. A particle describes the circle r = a cos 0 with constant Show that the acceleration is constant in magnitude and directed toward the center of the circle. 4. A particle P moves in a plane with constant angular speed w about 0. If the rate of increase of its acceleration is parallel speed.

d2r

to OP, prove that ate = 4rw2 5. If the tangential and normal components of the acceleration

of a particle moving in a plane are constant, show that the particle describes a spiral. 85. Motion about a Fixed Axis. In Sec. 10, Example 12, we saw that the velocity is given by v = w x r. Differentiating, we obtain dw dr xr a=wxa+dt

a=wxv+axr

(320)

Since v = w x r, we where a is the angular acceleration --' at have also

wl

a=wx(wxr)+axr

_ (w - r)w - w2r + a x r

If we take the origin on the line of w in the plane of the motion, then w is perpendicular

tororor = 0, so that

a= -w2r+axr a x r is the tangential acceleraFm. 73.

tion, and w x (w x r) is the

centripetal acceleration. If we assume that a particle P is rotating about two intersecting lines simultaneously, with angular velocities cal, w2 (Fig. 73), we can choose our origin at the point of intersection so that

vi = wl x r, and the total velocity is

v2 = 632 x r

V = V1 + V2 = (wi + (02) x r

MECHANICS

SFC. 86]

187

A particle on a spinning top that is also precessing experiences such motion. 86. Relative Motion. Let A and B be two particles traversing curves r, and r2 (Fig. 74). r, and r2 are the vectors from a point 0 to A and B, respectively.

r2=r+rl

(321)

Definition: dt is the relative velocity of B with respect to A, written V4(B).

Fia. 74.

Differentiating (321), we have dr2

dr

dt - dt

dri

+

dt

or

Vo(B) = VA(B) + Vo(A)

(322)

More generally, we have

Vo(A) = V4,(A) + VA,(A1) + VA.(A,) + ..

.

+ Vo(A.)

It is important to note that V4(B) _ -VB(A). Example 104. A man walks eastward at 3 miles per hour, and the wind appears to come from the north. He then decreases his speed to 1 mile per hour and notices that the wind comes from the northwest (Fig. 75). What is the velocity of the wind? We have V0(W) = VM(W) + V0(M) G(ground)

VECTOR AND TENSOR ANALYSIS

188

ISEc. 86

In the first case

VM(W) = -kj,

V0(M) = 3i

so that

VG(JV) = -kj + 3i In the second case,

VM(W) = h(i - j),

VG(M) = i

so that

V0(W) = h(i - j) + i = (h + 1)i - hj, and

3=h+1,

-k= -h,

VG(W) =3i-2j

miles per hour, and its direction The speed of the wind is makes an angle of tan-' I with the south line.

N

x.

E

S Fia. 75.

Fzo. 76.

Example 105. To find the relative motion of two particles moving with the same speed v, one of which describes a circle of radius a while the other moves along the diameter (Fig. 76). We have

P=acos0i-}-asin0j,

adze=v

Q = (a - vt)i This assumes that both particles started together.

T -dQ=(-a sin0dO+v)i+acos0doi VQ(P) = v(1 - sin 0)i + v cos 6 j

MECHANICS

Sec. 87]

189

The relative speed is IVQ(P)I = [v2(1

- sin

0)2 + v2 cos2 B]} = 2}v(1 - sin B)}

Maximum IVQ(P)I occurs at 0 = 3x/2, minimum at 0 = x/2. Problems 1. A man traveling east at 8 miles per hour finds that the wind seems to blow from the north. On doubling his speed, he finds that it appears to come from the northeast. Find the velocity of the wind. 2. A, B, C are on a straight line, B midway between A and C. It then takes A 4 minutes to catch C, and B catches C in 6 minutes. How long does it take A to catch up to B?

3. An airplane has a true course west and an air speed of 200 miles per hour. The wind speed is 50 miles per hour from 1300. Find the heading and ground speed of the plane. 87. Dynamics of a Particle. Up to the present, nothing has

been said of the forces that produce or cause the motion of a particle. Experiment shows that for a particle to acquire an acceleration relative to certain types of reference frames, there must be a force acting on the particle. The types of forces encountered most frequently are (1) mechanical (push, pull), (2) gravitational, (3) electrical, (4) magnetic, (5) electromagnetic. We shall be chiefly concerned with forces of the types (1) and (2). For the present we shall assume Newton's laws of motion hold for motion relative to the earth. Afterward we shall modify this. Newton's laws are: (a) A particle free from the action of forces will remain fixed or will continue to move in a straight line with constant speed. (b) Force is proportional to time rate of change of momentum,

that is, f = dt (mv). In general, m = constant, so that

The factor m is found by experiment to be an invariant for a given particle and is called the mass of the particle. In the theory of

relativity, m is not a constant. my is called the momentum. (c) If A exerts a force on B, then B exerts an equal and opposite force on A. This is the law of action and reaction: fAB = -fha

VECTOR AND TENSOR ANALYSIS

190

[SEC. 88

By a particle we mean a finite mass occupying a point in our Euclidean space. This is a purely mathematical concept, and physically we mean a mass occupying negligible volume as compared to the distance between masses. For example, the earth

and sun may be thought of as particles in comparison to their distance apart, to a first approximation. 88. Equations of Motion for a Particle.

Newton's second law

may be written f = m dt = ma. We postulate that the forces acting on a particle behave as vectors. This is an experimental fact. Hence if fl, f2j . . . , f act on m, its acceleration is given by a

1

(fl+f2+....+fn)_

m

1I

mti_1

We may also write f = m d

dt2

,

f,_ mff

where r is the position vector from

the origin of our coordinate system to the particle. If the particle d

is at rest or is moving with constant velocity, then

dt2

= 0, and

so f = 0, and conversely. Hence a necessary and sufficient condition that a particle be in static equilibrium is that the vector sum of the forces acting on it be zero.

A standard body is taken as the unit mass (pound mass). A poundal is the force required to accelerate a one-pound mass one foot per second per second. The mass of any other body can be compared with the unit mass by comparing the weights (force of f12/ m2 gravit y at mean sea leve l ) o f th e two objects. This assumes the equivalence of gravitational mass and inertial mass. Example 106. Newton's law of gravi-

tation for two particles is that every pair of particles in the universe exerts Fzo. 77.

a mutual attraction with a force directed along the line joining the particles, the magnitude of the force being inversely

proportional to the square of the distance between them and directly proportional to the product of their masses. f12 = (Gmim2/r2)R (see Fig. 77). G is a universal constant.

Let

191

MECHANICS

SEC. 88]

the mass of the sun be M and that of the earth be m. We shall assume that the sun is fixed at the origin of a given coordinate system (Fig. 78). The force act-

ing on the earth due to the sun is f = - (Gm.M/r3)r From the second law GmM rs r

dv dt

d2r m dt2

so that dv

GM

dt

r3

M

(323)

Fia. 78.

Now d v) dt (r x

dv

= r x dt

and hence d

dt(rxv)=rx(-GMr) =0

This implies

r x v = h = constant vector or

rxa = dr

(324)

h

Since Ir x drl = twice sectoral area, we have 2 dA = Ihl, or equal

areas are swept out in equal intervals of time. This is Kepler's first law of planetary motion. Moreover, r I r x dt ] = r h = 0,

so that r remains perpendicular to the fixed vector h, and the motion is planar. Now

-GMrxh= -GMrx(rxv)

a xh from (324), and

d

d

(v x h) = d x h, so that (v x h)

GM

r x (r x v)

(325)

VECTOR AND TENSOR ANALYSIS

192

Now r = rR, where R is a unit vector.

SEC. 88

Hence R

v

so that (325) becomes

\ d(vxh)=-GMrx (rxrR) / =

-GMRx(RxdR) -GM K R .

ddR

t/

R - R2 dRJ

= GM ddR

(326)

since R is a unit vector. Integrating (326), we obtain

vxh=GMR+k and

h' = GMr + rk cos (R, k)

(327)

Thus h2/GM

r

(328)

1 + (k/GM) cos (r, k)

We choose the direction of the constant vector k as the polar axis, so that

r

h'/GM 1 + (k/GM) cos 8

(329)

This is the polar equation of a conic section. For the planets these conic sections are closed curves, so that we obtain Kepler's second law, which states that the orbits of the planets are ellipses with the sun at one of the foci. Let us now write the ellipse in the form S

r

1+ e cos 9

where e=

GM' p

k

MECHANICS

SEC. 88]

193

The curve ci osses the polar axis at 0 = 0, 0 = it so that the length of the major axis is

ep + ep 2, - 1+e 1-e

2p

2h2

1-e2

GM(1-e2

For an ellipse, b2 = a2 - c2 = a2 - e2a2, orb = a(l - ,2)1. area of the ellipse is A = Tab = ,ra2(1 - e2)1, and since

The

dA = Jh, dt

the period for one complete revolution is

T

2A

2ara2(1 - e2)i Zral - e2)1 = G1Mi

- h - a1GiM1(1

Thus

_

T2

47r2

0

GM =

constant, for all planets

(330)

This is Kepler's third law, which states that the squares of the periods of revolution of the planets are proportional to the cubes of the mean distances from the sun. Problems

1. A particle of mass m is attracted toward the origin with the force f = - (k2m/r6)r. If it starts from the point (a, 0) with the speed vo = k/21a2 perpendicular to the x axis, show that the path is given by r = a cos 0. 2. A bead of mass m slides along a smooth rod which is rotating

with constant angular speed w, the rod always lying in a horizontal plane. Find the reaction between bead and rod. 3. A particle of mass m is attracted toward the origin with a force - (mk2/r3)R._ If it starts from the point (a, 0) with velocity vo > k/a perpendicular to the x axis, show that the equation of the path is (OW k2)i r = a sec C 0

-

avo

I

4. In a uniform gravitational field (earth), a 16-pound shot leaves the putter's fingers 7 feet from the ground. At what angle should the shot leave to attain a maximum horizontal distance?

194

VECTOR AND TENSOR ANALYSIS

[SEC. 89

5. Assume a comet starts from infinity at rest and is attracted toward the sun. Let ro be its least distance to the sun. Show that the motion of the comet is given by r = 2ro/(1 + cos 0). 89. System of Particles. Let us consider a system consisting of a finite number of particles moving under the action of various forces. A given particle will be under the influence of two types of forces: (1) internal forces, that is, forces due to the interaction of the particle with the other particles of the system, and (2) all

other forces acting on the particle, said forces being called external forces.

If r; is the position vector to the particle of mass m,, then we shall designate f,(e) as the sum of the external forces acting on the jth particle, and f,(i) as the sum of the internal forces acting on this particle. Newton's second law becomes for this particle

f1( + f1( = m; d2r'

(331)

Unfortunately, we do not know, in general, f;('), so that we shall not try to find the motion of each particle but shall look rather for the motion of the system as a whole. Since Eq. (331) is true for each j, we can sum up j for all the particles. This yields n

J=1

f'c6> +

d 2r,

f'(i) ;=1

1-1

m' dt2

From Newton's third law we know that for every internal force n

there is an equal and opposite reaction, so that This leaves

A

f ®= 0.

n

n

l m,

f,

dt2

(332)

We now define a new vector, called the center-of-mass vector, by the equation n

Im,r,

n

ra =1' =

(333) n

;11

7-1

MECHANICS

SEC. 89)

195

The end point of r. is called the center of mass of the system. It is a geometric property and depends only on the position of the particles. Differentiating (333) twice with respect to time, we obtain Md2r` _ dt2

n

md?r, ' dt2

;=1

so that (332) becomes n

f

f.(e)=M

2_1°

(334)

z

)ml

Equation (334) states that the center of mass of the system accelerates as if the total mass were concentrated there and all the external forces acted at that point.

Fia. 79.

Example 107. If our system is composed of two particles in free space and if they are originally at rest, then the center of

mass will always remain at rest, since f = 0 so that d2° = 0, and r. = constant satisfies the equation of motion and the initial condition

0.

For the earth and sun we may choose the center

of mass as the origin of our coordinate system (Fig. 79). The equations of motion for earth and sun are m

d2r1 dt2

r2)2f = - (rlGmMR

M d2r2 dt2

_ (rlGmMR - 12)2

Since r. = 0, we have mr, + Mr2 = 0, and d2r1 d12

_

-GM

rl

[1 + (m/M))2 rig

196

VECTOR AND TENSOR ANALYSIS

[SEc. 91

This shows that m is attracted toward the center of mass by an inverse-square force.

The results of Example 106 hold by replac-

ing M by M[1 + (m/M)1-2. Problems

1. Show that the center of mass is independent of the origin of our coordinate system. 2. Particles of masses 1, 2, 3, 4, 5, 6, 7, 8 are placed at the corners of a unit cube. Find the center of mass. 3. Find the center of mass of a uniform hemisphere. 4. Find the force of attraction of a hemisphere on another hemisphere, the two hemispheres forming a full sphere. 90. Momentum and Angular Momentum. The momentum of a particle of mass m and velocity v is defined as M = mv. The total momentum of a system of particles is given by M = j m;v1. j-1

We have at once that dM dt

n

I mj j-1

dv1

dt =

n

I f; (e) = f

(335)

j-1

We emphasize again that the mass of each particle is assumed constant throughout the motion. The vector quantity r x my is defined as the angular momentum, or moment of momentum, of the particle about the origin 0. f The total angular momentum is given by n

H = E r; x mjvj

(336)

j-1 91. Torque, or Force Moment. Let Fla. 80.

f be a force acting in a given direction and let r be any vector from the origin

whose end point lies on the line of action of the force (see Fig. 80). The vector quantity r x f is defined as the force moment, or torque, of f about 0. For a system of forces, n

L = I r, x f, j-1

(337)

MECHANICS

SEC. 921

197

We immediately ask if the torque is different if we use a differ-

ent vector ri to the line of action of f.

The answer is in the

negative, for

(r, - r) x f = 0 since ri - r is parallel to f. Hence rl x f = r x f. What of the torque due to two

equal and opposite forces both acting along the same line? It is zero, for

r1xf+r1x(-f)

=r1x(f-f)=0

Two equal and opposite forces

with different lines of action constitute a couple (see Fig. 81).

Let ri be a vector to f and r2 a vector to -f. The torque due

Fio. 81.

to this couple is

L = r1xf+r2x(-f) = (r1 - r2) x f

The couple depends only on f and on any vector from the line of action of -f to the line of action of f. Problems 1. Show that if the resultant of a system of forces is zero, the total torque about one point is the same as that about any other point. 2. Show that the torques about two different points are equal, provided that the resultant of the forces is parallel to the vector joining the two origins.

3. Show that any set of forces acting on a body can be replaced by a single force, acting at an arbitrary point, plus a Prove this first for a single force. 4. Prove that the torque due to internal forces vanishes.

suitable couple.

92. A Theorem Relating Angular Momentum with Torque. We are now in a position to prove that the time rate of change of angular momentum is equal to the sum of the external torques for a system of particles.

198

VECTOR AND TENSOR ANALYSIS

[SEC. 93

Since n

H = Ir3xmjv

r, x

j=1

j=1

dri

m'dt

we have on differentiating

dH _ dt

n

Z r, x m,

dt2

n

I

j-1 r' x

aii = dt

n

d2r,

dri

dri

+ j=1 dt x m' dt

(f1" + f, (') ) n

I r; x

j=1

f;(e)

=L

(338)

93. Moment of Momentum (Continued). It is occasionally more useful to choose a moving point Q as the origin of our

FIG. 82.

coordinate system. space. We define

Let 0 be a fixed point and Q any point in n

dri

HQa = I (r, -- rQ) x m; di j-1

(339)

The superscript a stands for absolute momentum, that is, the velocity of m; is taken relative to 0, whereas the subscript Q stands for the fact that the lever arm is measured from Q to the particle m; (Fig. 82).

Differentiating (339), we obtain

MECHANICS

SEc. 941

dHQa

_

dt

drQl

(dri _ drQ

dl

dr,

dt /

+ L (r. -

dt

dr1

n

j-1

m;r,, so that M dt =

m1

dr,

-, and

l1

j=1

j-1

dt2

(r1 - rQ) x (f.(e) + f .(i))

xLm'dt+I

n

Now Mr =

rQ) x "ni

j=1

n

j=1

d2r;

nn`

X 7n,

(dt

j=1

199

n f,(i)=0,

j=1

r1 x f;(') = 0 from Sec. 91, so that dHQa

M

dt =

drQ

I

dF

n

(r, - rQ) dt x dt + j-1

x fj(e)

or dtQa

LQ (e)

-M

Qx dt

dtc

(340)

We can simplify (340) under three conditions:

1. Q at rest, so that

drQ

dt

=0

2. Center of mass at rest, dt` = 0

3. Velocity of Q is parallel to velocity of center of mass, drQ

dre

dt

dt

0

In all three cases

dHe

= LQ(e)

dt

(341)

In particular, if LQ(e) = 0, then He - constant, and this is the law of conservation of angular momentum. 94. Moment of Relative Momentum about Q. In Sec. 93 we assumed that the absolute velocity of each particle was known.

It is often more convenient to calculate the velocity of each particle relative to Q.

This is

dr, dt

- drQdt

We now define rela-

VECTOR AND TENSOR ANALYSIS

200

[SEC. 94

tive moment of momentum about Q as n

HQr =

j-1

(rj - rQ) x mj

(rj - rQ)

dl

(342)

Differentiating, dHQ*

dt

j-1 =

(d2rj

(r' - rQ) x m'

(r7 - rQ) x

dt2

dl2

d2rQ

`

(fj(ei

/

d2rQ

f3(i))

n

x

dt2

I m, (rj - rQ) j-1

We see that dtiQr

a,

LQ(' +

'rQ d12

n

x I mj (rj - rQ)

(343)

js1

Under what conditions does dd Q' = Lo d2rQ

dt2

?

We need

n

x I mj(rj - rQ) = 0

or

M

d2rQ

dt2

x (r, - rQ) = 0

(344)

Now (344) holds if 1. rQ = rQ, or Q is at the center of mass.

2. Q moves with constant velocity,

dQ l = 0.

2

3. r. - rQ is parallel to

2 dt'

Problems n

1. Show that

jet

a rQ

m4(r1 - rQ) x dt2 = M(r. - rQ) x

d2rQ dt2

2. A system of particles lies in a plane, and each particle remains at a fixed distance from a point 0 in this plane, each

MECHANICS

SEC. 95]

201

particle rotating about 0 with angular velocity w. n

Show that

Ho = Iw, where I = I m;r;2, and show that Lo = I at j=1

3. A hoop rolls down an inclined plane. What point can be

taken as Q so that the equation of motion (343) would be simplified?

95. Kinetic Energy. We define the kinetic energy of a particle of mass m and velocity v as T = jmv v. C M For a system of particles, r.-r n

T

n

1

2 mv,2 f=1

fdrs\ 2

1

2 m'

.1-1

(345)

dt 1

P;

`r

r

Now let r, be the vector to the center of 0 mass C (Fig. 83). It is obvious that

Fia. 83.

r;=rr+(r,-r-) so that dr; dt dr; dr; _ (dro)2 di dt dt

_ dr, dt

+

d dt

(r; - r-)

(r, - rc) -{+2 drd dt dt

I d. L dt

(r; - rc) ]

2

Hence 1 (dr12 dr" T=2M dtJ +dt

d

n

2

+ jn

Now Mr. =

1

2 m'

n

(346)

n

r,, so that

m;r, j-1

r`)] [dt (r' -

j-1

m1 alt (r; - r-) = 0, ;-1

and (346) reduces to

T=IM

()2

-}-

-1 2

m; [-d

dt

(r; - r.)]2 a)(347) 1

This proves that the kinetic energy of a system of particles is equal to the kinetic energy of a particle having the total mass

202

VECTOR AND TENSOR ANALYSIS

[SEC. 96

of the system and moving with the center of mass, plus the kinetic energy of the particles in their motion relative to the center of mass. 96. Work. If a particle moves along a curve r with velocity v

under the action of a force f, we define the work done by this force as

W=

fr f t

fr f

f acts at right angles to the path, no work is done. If the field is conservative, f = -V(p, the work done in taking

the particle from a point A to a point B is independent of the path (see Sec. 52). Now dvi = fj(a) + fi(.) dt dvi = fi(e) . V1. + mivi . dt m,

Vi

and integrating and summing over all particles, n

J`o

mivi

dt' dt =

La

i:1

fi(a)

. vi dt +

fee:' fi('i

. v; dt

or n

i=1

lmi[vi2(ti) - vi2(to)l = W(e)

W°

(349)

This is the principle of work and energy. The change in the kinetic energy of a system of particles is equal to the total work done by both the external and internal forces.

If the particles always remain at a constant distance apart, (ri - rk)2 = constant, the internal forces do no work. Let r, and r2 be the position vectors of two particles whose distance apart remains constant, and let f and -f be the internal forces of one particle on the other and conversely. Now

(r, - r2) (r, - r2) = constant

MECHANICS

Sec. 97]

203

so that

(r, - r2)

dr, di

- dr2dt/

0

(350)

Also

W(o =

f ff

f is parallel to r, - r2, Ave have f = a(r, - r2) and

f (v, - v2) = a(r, - r2) (v, - v2) = 0

from (350). Thus W(° = 0. Problems 1. A system of particles has an angular velocity w. n

T=

i-i

Show that

Jm;lw x r,J2.

2. If to of Prob. 1 has a constant direction, show that T = }Iw2, n

where I =

md;2, d; being the shortest distance from m; to

line of w.

3. Show that dT = w L, by using the fact that T =

4-mv;2

and that v, = to x r;. 4. Show that the kinetic energy of a system of rotating particles is constant if the system is subjected to no torques. What if L is perpendicular to w?

5. A particle falls from infinity to the earth. Show that it strikes the earth with a speed of approximately 7.0 miles per Use the principle of work and energy. 97. Rigid Bodies. By a rigid body we mean a system of particles such that the relative distances between pairs of points remain constant during the discussion of our problem. Actually no such systems exist, but for practical purposes there do exist such rigid bodies, at least to a first approximation. Moreover, the rigid body may not consist of a finite number of particles, but rather will have a continuous distribution, at least to the unaided eye. We postulate that we can subdivide the body into a great many small parts so that we can apply our laws of motion for particles to this system, this postulate implying that we can use second.

VECTOR AND TENSOR ANALYSIS

204

the integral calculus. the following form:

[SEC. 98

Our laws of motion as derived above take

T = f f f -pv2 dr,

p = density

R

ff pr dr f f f p dr R

dr,

( 351)

2

J

fR f f(e)

dt2

H = f f f prxvdr R

-it ff r x f(e) dr where f(.) is the external force per unit volume. 98. Kinematics of a Rigid Body. Let 0 be a point of a rigid body for which 0 happens to be fixed.

It is easy to prove that the velocity f V (P1 = yr

P

of any other point P of the body must be perpendicular to the line joining 0

to P, for if r is the position vector from 0 to P, we have r - r = constant throughout the motion so that 0.

Q.E.D.

r dt = We next prove that if two points of a rigid body are fixed, then all other particles of the body are rotating around the line joining these two points.

Let A and B be the fixed

points and P any other point of the body.

From above we have

so that P is always moving perpendicular to the plane ABP. Moreover, since the body is rigid, the shortest distance from P to the line A B remains constant, so that P moves in a circle

Sec. 981

MECHANICS

around AB (Fig. 84). could be written

205

We saw in Sec. 10 that the velocity of P

VP =wxrp Is w the same for all particles? Yes! Assume Q is rotating about AB with angular velocity w,, so that vQ = to, x rQ. Now (rP - rQ)2 = constant, so that (rP - rQ) (vp - vQ) = 0 or

(rP - rQ) ((a x rp - w, x rQ) = 0 Thus

x rP -

xrQ = 0

and rQ x rp

(w, - w) = 0

We leave it to the reader to conclude that w, = w. VA

B

1

FIG 85.'

If one point of a rigid body is fixed, we cannot, in general, hope to find a fixed line about which the body is rotating. However, there does exist a moving line passing through the fixed point so that at any instant the body is actually rotating around this line. The proof proceeds as follows: Let 0 be the fixed point of our rigid body and let r` be the position vector to a point A. From above we know that the velocity of A, VA, is perpendicular to rA. Construct the plane through 0 and A perpendicular to VA (Fig. 85). Now choose a point B not in the plane. We also have that vB rB = 0, so that we can construct the plane through 0 and B perpendicular to vB. Both planes pass through 0, so

206

VECTOR AND TENSOR ANALYSIS

[SEC. 98

that their line of intersection, 1, passes through 0. Now consider any point C on this line. We have vc rc = 0. Moreover, (rc - rA) - (rc - rA) ° constant, so that

(re-rA).(vc-VA) =0 and (rc - rA) VC = 0, since vA is perpendicular to (rc - rA). Similarly (re - rB) vc = 0. Hence the projections of vc in three directions which are nonplanar are zero.

This means that

FIG. 86.

Vc - 0, so that we have two fixed points at this particular instant. Hence from the previous paragraph the motion is that of a rotation about the line 1. If w is the angular-velocity vector, then v; = w x r;, where r; is the vector from 0 to the jth particle. Now let us consider the most general type of motion of a rigid -r represent a fixed coordinate system in space, body. Let and let 0-x-y-z represent a coordinate system fixed in the rigid body (see Fig. 86). Let ,o; and r; represent the vectors from 0'

and 0 to the jth particle, and let a be the vector from 0' to 0. We have ei = a + r,, and differentiating, dLD;

dt

- da dt

+

dr, dt

MECHANICS

SEC. 98]

207

Now l represents the velocity of Pi relative to 0.

This means

0 is fixed as far as Pi is concerned, and from above we know that dri

dt - w

Thus

x ri.

_dei =

da

dt

dt

v'

(352)

+wxr;

that is, the most general type of motion of a rigid body is that of

a translation

A dt

plus a rotation w x r;.

We next ask the following question: If we change our origin

from 0 to, say, 0" does w change? (Fig. 87.) The answer is

"No"! Let b be the vector

0

from 0' to 0". Then v;

rf

=t=' + w,xr;

But

and

db

da

dt

dt

ri = (a

+w x (b - a) -- b) + ri

Fio. 87.

Thus

vi = d +w x(b - a)+wi x (a -b)+w, xri

(353)

Subtracting (352) from (353), we obtain

(w - wi) x (b-a)+(w,-w) xr;=0 or

(w - wl) x (b-a-r,)=

xr;"=0

0 and not parallel to the vector w - wl, at any particular instant. Hence w, ° w. We can certainly choose an r;"

Problems

1. Show that if r, and r2 are two position vectors from the origin of the moving system of coordinates to two points in the rigid body, then r, dt2 + r2 - dtl = 0.

VECTOR AND TENSOR ANALYSIS

208

[SEC. 99

2. A plane body is moving in its own plane. Find the point in the body which is instantaneously at rest.

3. Show that the most general motion of a rigid body is

a translation plus a rotation about a line parallel to the translation.

99. Relative Time Rate of Change of Vectors. Let S be an y vector measured in

the

moving system of coordinates (Fig. 88).

S = S i + Sj + S,k

Fin. 88.

(354)

To find out how S changes with time as measured by an observer at 0', we differentiate (354), dS

dS=.

dt = dt 1+

dS

.

dt'+

dk dS, di _ dj dt k+S= dt+Sydt+S'dt

(355)

We do not keep i, j, k fixed since i, j, k suffer motions relative to

0'. But we do know that dt is the velocity of a point one unit along the x axis, relative to 0. Hence dk = w x k.

at dS

d

= w x is dt = w x it

Hence (355) becomes

dSs

dt - dt

i -}

dS dt

dS,

j + d k + w x (3j +

S1t)

and dS

dt

DS

S dt + w x

(356)

where DS represents the time rate of change of S relative to the moving frame, for S= is measured in the moving frame and so d _ t

is the time rate of change of S. as measured by an observer in the moving frame.

MECHANICS

SEC. 1001

209

Intuitively, we expected the result of (356), for not only does S change relative to 0, but to this change we must add the change in S because of the rotating frame. The reader might well ask, What of the motion of 0 itself? Will not this motion have to be considered? The answer is "No," for a translation of 0 only

pulls S along, that is, S does not change length or direction if 0 is translated. It is the motion of S relative to the frame O-x-y-z and the rotation about 0 that produce changes in S. Problems

1. Show that d dl 2. For a pure translation show that

dS

DS

dt =

dt

3. From (356) show that di = w x i.

Let P be any point in space and let 9 and r be the position vectors to P 100. Velocity.

from 0' and 0, respectively (see Fig. 89). Obviously a + r, so that _ dp _ A dr v

dt

dt

+

dt

Now r is a vector measured in

the O-x-y-z system, so that (356) applies to r. This yields dr _ Dr + to x r and

7t

dt

v

dt

This result is expected.

t

-dt

FIG. 89. xr+Dr

(357)

A is the drag velocity of P, co x r is

the velocity due to the rotation of the 0-x-y-z frame, and

Dr

is

the velocity of P relative to the 0-x-y-z frame. The vector sum is the velocity of P relative to the frame 0'--i-r.

VECTOR AND TENSOR ANALYSIS

210

(SEC. J 01

101. Acceleration. In Sec. 100 we saw that

v=ac

A dt+wxr+ Dr dt

To find the acceleration, we differentiate (357) and obtain

dv_d2p_d2a dt

dt2

dt2

d

+ dt (wxr) +

d(Drl dt

dt

(358)

We apply (356) to w x r and obtain

d

(wxr) = w x (wxr) + D (w x r)

Similarly d

dldtl d2p

dt 2

_

d2a dt2

+ w x (wxr) +

D xdt+d`dtl

Dr D2r do x r + 2w x dt dt + dt2

(359)

If P were fixed relative Dr = D2r to the moving frame, we would have 0 and consedt2 = dt quently P would still suffer the acceleration Let us analyze each term of (359).

d2a dt2

&

+wx(wxr)+dt xr

This vector sum is appropriately called the drag acceleration of the particle. Now let us analyze each term of the drag acceleration. If the moving frame were not rotating, we would have 2

0, and the drag acceleration reduces to the single term dta This is the translational acceleration of 0 relative to 0'. Now in Sec. 84 we saw that w x (w x r) represented the centripetal accel-

eration due to rotation and d x r represented the tangential component of acceleration due to the angular-acceleration vector

MECHANICS

SEC. 1011

d We easily explain the term relative to the O-x-y-z frame.

D2r

211

as the acceleration of P

What, then, of the term 2w x dr?

This term is called the Coriolis acceleration, named after its discoverer. We do not try to give a geometrical or physical reason for its existence. Suffice to say, it occurs in Eq. (359) and must be considered when we discuss the motion of bodies moving over the earth's surface. Notice that the term disappears for par-

ticles at rest relative to the moving frame, for then dt = 0.

It

also does not exist for nonrotating frames.

Now Newton's second law states that force is proportional to the acceleration when the mass of the particle remains constant. It is found that the frame of reference for which this law holds best is that of the so-called "fixed stars." We call such a frame of reference an inertial frame. Any other coordinate system moving relative to an inertial frame with constant velocity D d2

is also an inertial frame, since from (359) we have d e = because w = Of

66

1

0,

dt2r

da d1 constant, dta = 0. dt =

Let us now consider the motion of a particle relative to the earth. If f is the vector sum of the external forces (real forces, 2

that is, gravitation, push, pull, etc.), then d p = m, and (359) becomes D2r

d2a

Dr

d4,3

f

dt2 - w x (w x r) - d x r - 2w x dt + m (360)

dt2

This is the differential equation of motion for a particle of mass m with external force f applied to it. Example 108. Let us consider the earth as our rotating frame. The quantity w x ((a x r) is small, since jwl 27r/86,164 rad/sec,

and for a particle near the earth's surface, lrl , (4,000)(5,280) feet.

Also

d2

dt

- 0 over a short time; da ,= 0 over a short time;

212

VECTOR AND TENSOR ANALYSIS

[SEC. 101

so that (360) becomes D2r

-2w x dt +

dt2

m

(361)

Now consider a freely falling body starting from a point P at rest relative to the earth. Let the z axis be taken as the line joining the center of the earth

to P, and let the x axis be taken perpendicular to the z axis in the eastward direction.

We shall denote the latitude of the place by A, assuming A > 0. The equation of motion in the eastward direction is given by

yd1x

_

t2

S

(fm/, = 0.

tion it is

(see Fig. 90).

dj dt

, + Cfm

/

has no component eastward, so

We do not know

-gtk +

x

Now f (force of attraction)

Fio. 90.

that

-2 (w

at

but to a first approxima-

Moreover, w = w sin A k + w cos A j

i.

Hence (w x

at)

d2x

dt' =

0

= -wgt cos A, and

2wgt cos A

(362)

If the particle remains in the vicinity of latitude A, we can keep A constant, so that on integrating (362), we obtain dx dt

X=

=wgt2cosA 3ts cos A

(363)

(363) is to a first approximation the eastward deflection of a shot if it is dropped in the Northern Hemisphere. If h is the

MECHANICS

SEc. 1011

213

distance the shot falls, then h = Jgt2 approximately, so that 2

x = 3 wh

cos X

2gh1}

( J

Problems

1. Show that the winds in the Northern Hemisphere have a horizontal deflecting Coriolis acceleration 2wv sin X at right angles to v. 2. A body is thrown vertically upward. Show that it strikes the ground 'jwh cos X (2h/g)1 to the west. 3. Choose the x axis east, y axis south, z axis along the plumb line, and show that the equations of motion for a freely falling body are d2x

W

+2wsinUdt z- 2wcos0dty=0 dt +2w cos0dy =0

dtz-g-2w sin0dx =0 2

where 0 is the colatitude. CO

Fio. 91.

4. Using the coordinate system of Prob. 3, let us consider the motion of the Foucault pendulum (see Fig. 91). Let ii, i2, i$ be the unit tangent vectors to the spherical curves r, 8, p. We leave it to the reader to show that the acceleration

VECTOR AND TENSOR ANALYSIS

214

[SEC. 101

along the is vector is 2 cos e .06 + sin 0 0 when the string is of unit length.

The two external forces are mgk along the z axis and

the tension in the string, T = - Tr = - Tit. We wish to find the component of these forces along the i3 direction. T has no component in the is direction. Now k is = 0, so that mgk has no component along the is direction. Finally, we must compute Dr The velocity vector is the is component of -2w x Dr dt

_ Bit + sin 6 rpis

Also w = w(- cos A j - sin X k), so that we must find the relationship between i i2, is and i, j, k. Now

r = i, = sin0cosci+sin Bsin cpj+cos0k ail i2

cos 0 cos v i + cos 0 sin

= aB =

_

ail

1

sin B ai

1s

sin 0 k

- sin sp i + coo sp j

Thus

i = (i il)i, + (i i2)i2 + (i

i3)is

= sin 0 cos Tp it + cos 0 cos jP is -- sin rp is

j = sin 0 sin Sp i, + cos B sin 'P i2 + C0803 k = cos 0 it - sin B i2 11

is

i2

-2wx-=2w cos A sin 0 sin P + sin A cos 0 0

-sinAsin0 6

sine c

and

(-

r

2w x -D dt

= #(sin A sin 0 sin ip + sin A cos 0)

Equation (361) yields 2 cos 006+ sin 8;p = 2w(B sin A sin B sin rp + # sin A cos 0) (364)

MECHANICS

SEC. 102]

For small oscillations, sin 0

215

0, and (364) reduces to

, = w sin X

(365)

Hence the pendulum rotates about the vertical in the clockwise sense when viewed from the point of suspension with an angular speed w sin X. At latitude 30° the time for one complete oscillation is 48 hours.

5. Find the equation of motion by considering the i2 components of (361) for the Foucault pendulum. 102. Motion of a Rigid Body with One Point Fixed. The motion of a rigid body with one point fixed will depend on the forces acting on the body. Let O-x-y-z be a coordinate system fixed in the moving body, and let O-- be the coordinate system fixed in space. 0 is the fixed point of the body. In Sec. 94 we

saw that

-Or

= Lo.

Now Ho* = f if r x p dt dr. We can

replace dt by to x r (w unknown). Thus

H0? = f f f pr x (w x r) dr R

= fJf p[r2w - (r

w)r] dr

(366)

R

Let

w=w=i+wyj+w

r=xi+yj+zk

so that

r2w - (r w)r = (x2 + y2 + z2) (w i + wyj + W k) + (xwx + ywy + zws) (xi + yj + zk) = [(y2 + z2)wz - xywy - xzws]i

+ [-xyw. + (22 + x2)wy - yzw=lj + [-xzwz - yzwy -- (x2 + y2)w]k We thus obtain H0? = i[w= f f f p(y2 + z2) dr - w f f f pxy dr - wz f f f pxz dr]

+ j[ - w=f f f pxy dr + wyf f f p(z2 + x2) dr - w: f f f pyz dr] + k[ -w=f f f pxz dr - wyf f f pyz dr + w=f f f p(x2 + y2) dr] (367)

216

VECTOR AND TENSOR ANALYSIS

[SEC. 102

The quantities A = f f f p(y2 + Z2) dr

B=fffp(z2+x2)dr C = fffp(x2 + y2) dr D = f f fpyzdr E = f f fpzxdr

(368)

F = f f f pxy dr

are independent of the motion and are constants of the body. That they are independent of the motion is seen from the fact that for a particle with coordinates x, y, z, the scalars x, y, z remain invariant because the O-x-y-z frame is fixed in the body.

The quantities A, B, C are the moments of inertia about the x, y, z axes, and D, E, F are called the products of inertia. We assume the student has studied these integrals in the integral calculus.

Now from Sec. 99 we have

Lo =

dHor dt

_

DHor + w x Hor so that dt

DRO, dt + to x Hor

Hence

L=i+Lvj+LA=i(A

+

ds-F

+j(-F

w

+ k \-E

dt

dtE

dts/ +Bdty-Ddt;/

- D dt + C dta/

i

k

wy

wt

Aws - Fwv - Ewz,

WV

-Fws+Bwv - Dw=,

-Ews - Dwv+Ccos (369)

In the special case when the axes are so chosen that the products of inertia vanish (see Sec. 107), we have Euler's celebrated equations of motion :

MECHANICS

SEc. 1031

217.

L. = A d[ + (C - B)wYwz

L = B

dwY

(370)

+ (A - C)w,wZ dt

L. = C

dw, dt

+ (B

A)wzwy

103. Applications. If no torques are applied to the body of Sec. 102, Euler's equations reduce to A

(i)

dwz

dt-

+ (C

B)wYw, = 0

B dt +(A-C)w,wx=0

(371)

C d,+(B-A}wZwY=0

Multiplying (i), (ii), (iii) by

w,, respectively, and adding,

we obtain Aws

dws

dt

+ Bw dwY + Cw, dwa = 0 dt dt

Integrating yields Aws2 + Bw,,2 + Cw,2 = constant

(372)

This is one of the integrals of the motion. We obtain another integral by multiplying (i), (ii), (iii) by Aw,z, Bw,,, Cw,, and adding. This yields AZ w,

dws

dt

+

BZwy'dw'

dt

+

C2w,

dw, dt

=

0

so that A 2w12 + B2wV2 + C2w,2 =constant

(373)

If originally the motion was that of a rotation of angular velocity w about a principal axis (x axis), then initially

VECTOR AND TENSOR ANALYSIS

218

[SEc. 103

wz(0) = coo

0

(374)

ws(0) = 0

and we notice that (371) and the boundary condition (374) are satisfied by wt(t) = -coo

0

wZ(t) = 0

so that the motion continues to be one of constant angular velocity about the x axis. Here we have used a theorem on the uniqueness of solutions for a system of differential equations.

Now suppose the body to be rotating this way and then slightly disturbed, so that now the body has acquired the very We can neglect ww: as compared Euler's equations now become

small angular velocities w,,, wt.

to

and wswo.

B dty + (A - C)wswo = 0

Cdt

+(B0

(375)

wo = constant

Differentiating the first equation of (375) with respect to time and eliminating d s' we obtain B

z

dtzy +

(- C)((A - B) w02w = 0

(376)

If A is greater than B and C or smaller than B and C, then (A - C) (A - B) a2 =

C

> 0, and the solution to (376) is

wy = L cos (at + a)

Also ws =

aBL sin (at + a) by replacing w,, in (375). wo(A - C)

SEC. 1041

MECHANICS

219

Problems 1. Solve the free body with A = B for wzj co,, co,.

2. A disk (B = C) rotates about its x axis (perpendicular to the plane of the disk) with constant angular speed wo. A constant torque Lo is applied constantly in the y direction. Find w and W..

3. Show that a necessary and sufficient condition that a rigid

body be in static equilibrium is that the sum of the external forces and external torques vanish. 4. A sphere rotates about its fixed center. If the only forces acting on the sphere are applied at the center, show that the initial motion continues.

5. In Prob. 2 a constant torque Lo is also applied in the z direction.

Find w,, and ws.

104. Euler's Angular Coordinates. More complicated problems can be solved by use of Euler's angular coordinates. Let O-x'-y'-z' be a cartesian coordinate system fixed in space, and let O-x-y-z be fixed in the moving body (Fig. 92). The x-y plane will intersect the x'-y' plane in a line, called the nodal line N. Let 0 be the angle between the z and z' axes, L' the angle between the x' and N axes, and (p the angle between the nodal line and the x axis. The positive directions of these angles are indicated in the figure. The three angles &, 0, rp completely specify the configuration

of the body. Now d represents the rotation of the O-z'-N-T' frame relative to the O-x'-y'-z' frame; de represents the rotation of the O-z-N-T frame relative to the O-z'-N-T' frame, and finally, d(P

represents the rotation of the O-x-y-z frame relative to the

O-z-N-T frame. Therefore

+ dO + dt gives us the angular

velocity of the O-x-y-z framed* relative to the fixed O-x'-y'-z' frame, and

d1 + dO + d

(377)

220

VECTOR AND TENSOR ANALYSIS

[SEC. 104

The three angular velocities are not mutually perpendicular. We now define i, j, k, i', j', k', N, T', T as unit vectors along the x, y, z, x', y', z', N, T', T axes, respectively. Thus w =

d

k

wzi + w,j + wLk wz'i' + wy j' + wZ k'

Fia. 92.

Now it is easy to verify that i = cos rp N + sin cp T

j = - sinpN+cosjpT i' = cos 4, N - sin ' T'

(378)

MECHANICS

SEC. 1051

221

sin 4, N+cos#T' sin psin B cosspsin 0

sin

so that

ki

ws at

at

at

sin p sin 0 d + cos s dB day

do

at dp

at

w = cos (p sin 8 --- - sin (p day

W: = cos B d +

dt

Rewriting this, we have

dt

wy =

d4,

sin 0 sin (P + sin B cos

wI = d cos 8 +Also

wi=wss+w2+(O2=

cos
- dt8 sin So

(379)

d

dd

(d)2

do

d2

(dB 2

+

+Cdt

+ 2 cos 8

dcp d#

dt dt

(380)

For the fixed frame

a

w=-

wy

do

dcp

sin>Gt - cos0sin8dt

(381)

d +cos6d 105. Motion of a Free Top about a Fixed Point. Let us assume that no torques exist and that the top is symmetric (A = B). Euler's equations become

VECTOR AND TENSOR ANALYSIS

222

(i)

A

(ii)

A d' + (A - C)cvxwZ = 0

[SEC. 106

(382)

Cdts=O

(iii)

Integrating (iii), we obtain wz = w, = constant. and add to (i). We obtain by i =

Multiply

A dt (w= + iwv) + (C - A)wo(wy - iwz) = 0 or

A

d (co., + iwy) = iwo(C - A)(wx + i

)

Integrating, wz + 2Wy =

ae<'(C-A)/ALot

so that co. = a cos at wy = a sin at

(383)

where a = [(C - A)/A]wo and a is a constant of integration. Now w2 = ws2 + Wye + ws2 = a2 + wp2 = constant, so that the

magnitude of the angular velocity remains constant during the motion.

Moreover,

fixed space.

d

= 0, so that H is a constant vector in

We choose the z' axis for the direction of H. Now

H = Awzi + Bw,j + Cwk = Aa cos at i + Aa sin at j + Cwok

(384)

This shows that H rotates around the z axis (of the body) with constant angular speed a = [(C - A)/A]wo, and since H is fixed in space, it is the z axis of the body which is rotating about the fixed z' axis with constant angular speed -a = [(A - C)/A]wo.

Also H k = I HI cos 0 = Cwo, so that 9 is a constant since I HI = constant. We say that the top precesses about the z' axis. 106. The Top (Continued). We have assumed above that the weight of the top or gyroscope was negligible, or that the gyroscope was balanced, that is, suspended with its center of mass at the point of support, so that no torques were produced. We

MECHANICS

SEC. 106]

223

shall now assume that the center of mass, while still located on the axis of symmetry, is not at the point of support. We now have the following situation (Fig. 93) :

L = 1kx(.-Wk') = WI sin ON The three components of the torque are Lz = WI sin 0 cos 'v

L" = - Wl sin 0 sin p L. = 0 ZI

Fro. 93.

Euler's equations become

Wl sin 0 cos p = A - WI sin 8 sin (p = A

dw=

dt dwdt"

+ (C - A)w"ws

+ (A - C)wws

(385)

0=CdsforA=B Multiplying Eqs. (385) by wx, w", Co., respectively, and adding, we obtain Hence w: = coo.

2

d (Awx2 + Bw"2 + Cw,2) = Wl sin 0(wy cos

w" sin (p)

(386)

224

VECTOR AND TENSOR ANALYSIS

[SEC. 106

From (379) we have wz cos P - w sin cp = de, so that (386) becomes

1 d (A w=2 +

d8 B

2 dt

dt

and integrating Cwz2 = -2W1 cos 0 + k

Awx2 +

or, again using (379), (dO)2

(j)2

= a - a cos B

sin2 B +

(387)

a and a are constants.

Now since Le = L k' = 0) we have HZ- = constant. Also H = AwJ + Bw j + Cwsk, so that

9+Cwocos0

sin

= constant

Replacing wr and w by their equals from (379), we have A

sin2 9

sine,p + d sin (p sin B cos

+ di cos2 V sin2 0

- dte cos V sin (p sin 9) + Cwo cos 8 = constant

(388)

or A d sin2 9 + Cwo cos 9 = constant = He. Let 16 = H,,/A, b = Cwo/A, so that (388) becomes

d' -bcos9 dt - sin2 9

(389)

From (379) d4' w, = wo =

cos B + LIP

dt

(390)

dt

Using (389), (387) becomes ll2

(

sin9 s 9/

x

+(de = a - a cos 0

(391)

MECHANICS

SEC. 107]

Let z

cos 0, so that dt = - sin 6

225

-, and

2

( - bz)2 +

Cdt

= (a - az) (1 - z2)

Hence

t = fos [(a - az) (1 - z2) - (g - bz) 2]-} dz

(392)

This integral belongs to the class of elliptic integrals. If we can integrate and find z, then we shall know

9-bz

dip

dt - 1 - z2'

dt

d4,

= wa

d'y

- dt

The reader should look up a complete discussion of elliptic integrals in the literature.

Fm. 94.

107. Inertia Tensor. The moment of inertia of a rigid body about a line through the origin may be computed as follows. Let the line L be given by the unit vector ro = li + mj + nk, and let r be the vector from 0 to any point P in the body, r = xi + yj + zk

(see Fig. 94).

The shortest distance from P to L is given by

226

VECTOR AND TENSOR ANALYSIS

[SEC. 107

D2 = r2 -- (r r0)2 _ (x2 + y2 + z2) - (lx + my + nz)2 (12 + m2 + n2)(x2 + y2 + z2) - (lx + my + nz)2 _ 1l2(y2

=

+ z2) + m2(z2 + x2) + n2(x2 + y2) - 2mnyz

- 2lnzx - 2lmxy

Thus

I = f f fpD2dzdydx = Ale + Bm2 + Cn2 - 2mnD - 2n1E - 2lmF Let us replace 1, m, n by the variables x, y, z, and let us consider the surface

,p(x, y, z) = Axe + By2 + Cz2 --- 2Dyz - 2Ezx - 2Fxy = 1 (393)

A line L through the origin is given by the equation x = It, y = mt, z = nt. This line intersects the ellipsoid rp(x, y, z) = 1 for t satisfying

(Al2 + Bm2 + Cn2 - 2Dmn - 2n1E - 2lmF)t2 = 1

or t2 = 1/I. The distance from the origin to this point of intersection is given by d = (1212 + m2t2 + n2t2)} = t =

I-f

so that (394)

We know that a rotation of axes will keep I fixed, for the line and the body will be similarly situated after the rotation. We

now attempt to simplify the equation of the quadric surface ,p(x, y, z) = 1. First, let us find a point P on this surface at which the normal will be parallel to the radius vector to this point. The normal to the surface is given by Vip, so that we desire r parallel to Vv, which yields the equations

Ax - Ez - Fy

By - Dz - Fx

Cz - Dy - Ex

x

y

z

(395)

Any orthogonal transformation (Example 8) will preserve the form of (393) and (395) with x, y, z replaced by x', y', z' and A, B, . . . , F replaced by A', B', .. . , P. Now choose the

227

MECHANICS

SEC. 107]

z' axis through P so that x' = 0, y' = 0, z' _

satisfy (395).

This yields - E'/O = - D'/0 = C', which means that

E'=D'=0 and (393) reduces to

A'x'' + B'y'' + C'z'' - 2F'x'y' = 1 The rotation

(396)

x"=x'cos0-y'sin0

y"= x' sin0+y'cos0 z" = z'

with tan 20 = F'/(B' - A') reduces (396) to A"z" + D''y.,, + cf/z,F= = 1

(397)

This is the canonical form desired. We have thus proved the important theorem that a quadratic form of the type (393) can always be reduced to a sum of squares of the form (397) by a rotation of axes. In the proof we made the assumption that there was a point P such that r is parallel to V o, which yielded (395). We could have arrived at Eqs. (395) by asking at what point on the sphere x2 + y2 + z2 = 1 is (p(x, y, z) a maximum. Since p(x, y, z) is continuous on the compact set

x2+y2+z2 = 1 such a point always exists. Equations (395) are then easily deduced by Lagrange's method of multipliers. We can arrange the constants of inertia into a square matrix

-E

I = -F

B -D

-E -D

(398)

C

The elements of the matrix (an array of elements) are called the components of I. Under a proper rotation we have shown that we can write

A" 0

I= 0 0

B" .

0

0 0 C"

(399)

228

VECTOR AND TENSOR ANALYSIS

[SEC. 107

In general, under an orthogonal transformation, I will become

- E'

-F1

A'

I = -F'

-D'

B'

-D'

- E'

(400)

C'

and the components of I in (400) will be related to the components of I in (398) according to a certain law. We shall see in Chap. 8 that I is a tensor and so is called the inertia tensor. Referring back to (367), we may write

A -F -E H _ -F B -D

wZ

Hz

ws

H=

-E -D

wb

C

(401)

from the definition of multiplication of matrices, where

w = w1 + wyJ + w If we write (398) as

111

121

I31

1112

122

I32

113

123

I3

and

Ho' = H,i + H2J + H3k

w=w1i + w2j + w3k, then (367) may be written 3

H, = I, I,-way

j= 1, 2, 3

(402)

aa1

which is equivalent to the matrix form (401). Problems

1. Find the moments and products of inertia for a uniform cube, taking the cube edges as axes. 2. Show that the moment of inertia of a body about any line is equal to its moment of inertia about a parallel line through the center of mass, plus the product of the total mass and the square of the distance from the line to the center of mass.

3. Find the angular-momentum vector of a thin rectangular sheet rotating about one of its diagonals with constant angular speed we.

229

MECHANICS

SEC. 1071

4. If 3

Hp =

3

Ipawa,

Hp = I Ipacoa a-1

a=1 3

lip = I ap'Ha,

3

coo =

a-1

apawa,

3 = 1, 2, 3

a-1

for arbitrary wa, show that 3

3

1 Ipaaa = I Ia°apa, a-1

6, a = 1, 2, 3

amt

5. Let us consider the form

I = x2 + 9y2 + 18z2 - 2xy - 2xz + 18yz We may write

I = (x2 - 2xy - 2xz) + 9y2 + 18yz + 18z2

(x-y-z)2+8y2+16yz+1722

y - z)2 + 8(y + z)2 + 9z2 X2 +Y2 + Z2 (x

where X = x - y - z, Y = V"8- (y + z), Z = 3z, a set of linear transformations from x, y, z to X, Y, Z. This method may be employed to reduce any quadratic form to normal form. However, the linear transformations may not be a rotation of axes. Reduce I to normal form by a rotation of axes.

CHAPTER 7 HYDRODYNAMICS AND ELASTICITY

108. Pressure. The science of hydrodynamics deals with the motion of fluids. We shall be interested in liquids and gases, a liquid or gas being defined as a collection of molecules, which, when studied macroscopically, appear to be continuous in structure. A liquid differs from a z

solid in that the liquid will yield to any shearing stress, however small, if the stress is continued long enough. All liquids are compressible

to a slight extent, but for many purposes it is simpler to consider the liquid as being incompressible. We shall

also be highly interested in

FIG. 95.

These are

perfect fluids.

liquids which possess no shearing stresses. We now show that the pressure is the same in all directions for a perfect fluid. Let us consider the motion of the tetrahedron ORST (see Fig. 95). The face ORT has a force acting on it, since it is in contact with other parts of the liquid. Under the above assumption, this force acts normal to the face. Call it Af,,. If we divide Af" by the area of the face ORT, AA,,, we

obtain the pressure on this face, P,, =

f"

AAy

The limit of this

quotient is called the pressure in the direction normal to the face

ORT. The y component of the pressure on the face RST is P cos l4. Let f" be the y component of the external force per unit volume, and let p be the density of the fluid. of motion in the y direction is given by

The equation

+f"oT=d = 230

p A zr

y

dt°

(403)

HYDRODYNAMICS AND ELASTICITY

SEC. 109]

since

dt

(p Ar) =

dm dt

231

= 0. Now AA = AA,. cos 0, so that (403)

becomes

(Pv - Pn) + fv A

As A --- 0, we have

AA

oAv dt

Oz Cp

(404)

i

0, so that if we assume f,,, d

dt2

p

finite, we must have P = P.. Similarly, P = P. = P. = p. Since the normal n for the tetrahedron can be chosen arbitrarily, the pressure is the same in all directions and p is a point function, p = p(x, y, z, t). We leave it to the student to prove that at the boundary of two perfect fluids the pressure is continuous. 109. The Equation of Continuity. Consider a surface S bounding a simply connected region lying entirely inside the liquid. Let p be the density of the fluid, so that the total mass of the fluid inside S is given by p(x,y,z,t)d-r M=

ff R

Differentiating with respect to time and remembering that x, y, z are variables of integration, we obtain M dd =

f J fat dr

(405)

Now there are only three ways in which the mass of the fluid inside S can change: (1) fluid may be entering or leaving the surface.

The contribution due to this effect is JJ vp dd. s

(2) matter may be created (source), or (3) matter may be destroyed (sink). Let 4,(x, y, z, t) be the amount of matter created or destroyed per unit volume. For a source, 4, > 0, and for a sink, 0 < 0. The net gain of fluid is therefore

ffJ1dT_ jfpv.dd

(406)

Equating (405) and (406) and applying the divergence theorem, we obtain

232

VECTOR AND TENSOR ANALYSIS

ap + V (Pv) = #(x, y, z, t)

[SEC. 109

(407)

This is the equation of continuity. For no source and sink, (407) reduces to 0 at + V - (Pv) =

(408)

If furthermore the liquid is incompressible, p = constant, aP

at

= 0, and (408) becomes

Vv=0

(409)

If the motion is irrotational, that is, if f v dr = 0, then V=

so that the equation of continuity for an incompressible

fluid possessing no sources and sinks and having irrotational motion is given by V2V = 0

(410)

We call p the velocity potential. We solve Laplace's equation for rp, then compute the velocity from v = Vrp. Problems 1. If the velocity of a fluid is radial, u = u(r, t), show that the equation of continuity is ap

at

LP

+ u ar +

P a

r2 ar

(r2u)

Solve this equation for an incompressible fluid, if '(r, t) = 1/r2. z _2xyz x z - 1<)zj+

2. Showthaty=

(x2 + y2)2

i+ (x2 + y2)2

x2 + y2 kiss

possible motion for an incompressible perfect fluid. Is this motion irrotational? 3. Prove that, if the normal velocity is zero at every point of the boundary of a liquid occupying a simply connected region, and moving irrotationally, rp is constant throughout the interior of that region.

Sic. 110]

233

HYDRODYNAMICS AND ELASTICITY

4. Prove that if v is constant over the boundary of any simply connected region, then (p has the same constant value throughout the interior. 5. Express (407) in cylindrical coordinates, spherical coordinates, rectangular coordinates. 110. Equations of Motion for a Perfect Fluid. Let us consider the motion of a fluid inside a simply connected region of volume V and boundary S. The forces acting on this volume are

(1) external forces (gravity, etc.), say, f per unit mass; (2) pressure thrust on the surface, - p dd, since dd points outward. The total force acting on V is

F = fff pfdr - f f pdd

=

f f f (pf - Vp)dr

The linear momentum of V is

M = J117 pvdr and the time rate of change of linear momentum is

dMd =

fffpvdr

I tf f pdT + f f f v(pdr)

since the volume V changes with time. However, p dr is the mass of the volume dT, and this remains constant throughout the motion, so that

d

(p dT) = 0.

Since F =

dd , we obtain

fff(pf-vp)drfffpdr This equation is true for all V, so that

pf - VP=p dv d

I

or

dt

f - p VP

This is Euler's equation of motion.

(411)

234

VECTOR AND TENSOR ANALYSIS

From (76) we have that

dvav dt

at

SEC. 111

+ (v V)v, so that an alterna-

tive form of (411) is (412)

Vp

Also from Eq. (9) of Sec. 22, Vv2 = 2v x (V x v) + 2(v - V)v, so that (412) becomes av

at

1

+1VV2-Vx(VxV)=f-PVp 2

(413)

111. Equations of Motion for an Incompressible Fluid under the Action of a Conservative Field. If the external field is con-

servative, f = -Vx, so that f - (1/p) Vp = -V[x + (p/p)] if p = constan t. Hence (413) becomes (IV

\

-vx(Vxv)=-V(x+P+2v2)

(414)

-

We consider two special cases: (a) Irrotational motion. v = V\p and V x v = 0, so that (414) becomes

at

= -v l x + + 2 v2). \ P

(b) Steady motion. a = 0, so that (414) becomes

l 1 vX(Vxv)=VlX++1v2 P For this case we immediately have that v.[V(x+p+1v2)]=0

p

2

Hence V[x + (p/p) + +v2] is normal everywhere to the velocity field v. Thus v is parallel to the surface X + (p/p) + j v2 = constant. The curve drawn in the fluid so that its tangents are parallel to the velocity vectors at corresponding points is called a streamline. We have proved that for an incompressible

perfect fluid, which moves under the action of conservative

SEC. 111]

HYDRODYNAMICS AND ELASTICITY

235

forces and whose motion is steady, the expression X + (p/P) + -v2 rernains constant along a streamline. This is the general form of Bernoulli's theorem. If X remains essentially constant, then an increase of velocity demands a decrease of pressure, and conversely.

1.

Problems If the motion of a perfect incompressible fluid is both steady

and irrotational, show that x + (p/p) + V2 = constant.

2. If the fluid is at rest, dt = 0. Show that V x (pf) = 0, and hence that f V x f = 0. This is a necessary condition for equilibrium of a fluid. Why must pf be the gradient of a scalar if equilibrium is to be possible?

3. If a liquid rotates like a rigid body with constant angular velocity w = wk and if gravity is the only external force, prove that p/p = 1w2r2 - gz + constant, where r is the distance from the z axis.

4. Write (411) in rectangular, cylindrical, and spherical coordinates.

5. A liquid is in equilibrium under the action of an external

force f = (y + z)i + (z + x)j + (x + y)k. Find the surfaces of equal pressure.

6. If the motion of the fluid is referred to a moving frame of reference which rotates with angular velocity w and has translational velocity u, show that the equation of motion is dw Dr D2r du f--Vp=dt+dt Xr+wx (wxr)+2wxdt+ dt2 1

P

and that the equation of continuity is at

(P Rdt-) r

For a simply connected region R with boundary S, the kinetic energy of R is 7. The energy equation.

T=ifffpv2dr

R

Let the surface S move so that it always contains all the original mass of R. Show that

236

VECTOR AND TENSOR ANALYSIS

dT

= ffJ R

dt

-dv2

dt

= If! =

[SEc. 112

v.f!Vpdr

f f f v.fdr- f f

f f f pdt(dr)

S

R

(415)

R

Analyze each term of (415). 8. For irrotational flow show that

at = p(p),

- (x + P + 2 v2) + C(t), z

f-D(t).

-f- 2 + x + t 112. The General Motion of a Fluid. Let us consider the

and if p =

velocities of the particles occupying an element of volume of a

Let P be a point of the volume or region, and let vp represent the velocity of the fluid.

fluid at P (Fig. 96). The veloc-

ity at a nearby point Q is vQ = vp + dvp = Vp + (dr . V)vp from (75).

(416)

By (dr V)vp we

mean that after differentiation, the partial derivatives of v are

calculated at P. We now replace dr by r for convenience, so that r = xi .+ y} + zk if we consider P as the origin and x,

Fio. 96.

y, z large in comparison with x2, y2, z2, zy, etc.

now becomes vQ = vp + (r V)vp. Now

Equation (416)

r x (V x w) +

(417)

from (9), (10), (12) of Sec. 22. Now let

w = (r V)vp = x av + y av + z avl

al p

ay p

azlp

(418)

SEC:. 1121

and hence

HYDRODYNAMICS AND ELASTICITY

-- P+yayay ax av ax ax

ay av

237

az avI P

+z azazP

=w We did not differentiate the

(' ayP axP I

IV P

' since they have

been evaluated at P and so are constants for the moment. using (417), we obtain

Thus,

w = j V(r w) + J(V x w) x r Moreover, v (418)], and

(419)

=Vp+w, so thatV xv =V xw = (Vxv)p [see VQ = VP+ -(V x v)P

(420)

It is easy to verify that r w is a quadratic form, that is,

Axe+Bye+Cz2+2Dyz+2Ezx+2Fxy and so by a rotation (Sec. 107), we can write and

IV(r w) = axi + byj + czk We may now write (420) as

VQ = VP + w x r + (axi + byj + czk)

(421)

where w = J(V x v)p. Let us analyze (421), which states that the velocity of Q is the sum of three parts: 1. The velocity vp of P, which corresponds to a translation of the element. 2. w x r represents the velocity due to a rotation about a line through P with angular velocity J(V x v) p.

3. axi + byj + czk represents a velocity relative to P with components ax, by, cz, respectively, along the x, y, z axes. The first two are rigid-body motions; they could still take place if the fluid were a solid. The third term shows that particles at

238

VECTOR AND TENSOR ANALYSIS

(SEc. 113

different distances from P move at different rates relative to P. If we consider a sphere surrounding P, the spherical element is trans-

lated, rotated, and stretched in the directions of the principal axes by amounts proportional to a, b, c. Hence the sphere is deformed into an ellipsoid. This third motion is called a pure strain and takes place only when a substance is deformable. Each point of the fluid will have the three principal directions associated with it. Unfortunately, these directions are not the same at all points, so that no single coordinate system will suffice for the complete fluid. The most general motion of a fluid is that described above and

is independent of the coordinate system used to describe the motion. It is therefore an intrinsic property of the fluid. 113. Vortex Motion. If at each point of a curve the tangent

vector is parallel to the vector w = J(V x v), we say that the dx

dy

wz

wy

curve is a vortex line. This implies that dx =

=

dz where w,

dx, dy, dz are the components of the tangent vector and

w=wi+wyJ+w L The integration of this system of differential equations yields the vortex lines. The vortex lines may change as time goes on, since, in general, w will depend on the time. Let us now calculate the circulation around any closed curve in the fluid.

C=

ff (V xv) dd

(422)

s r If V x v = 0, then C = 0. This is true while we keep the curve r fixed in space. Let us now find out how the circulation

changes with time if we let the particles which comprise P move according to the motion of the fluid. As time goes on, assuming continuity of flow, the closed curve will remain closed. Now

e=

(423}

r r' where s is are length along the particular curve v, at some time t. At an instant later the curve t' has moved to a new position given by the curve r". The velocity of the particles over this path is

239

HYDRODYNAMICS AND ELASTICITY

SFC. 1141

slightly different from that over r, and, moreover, the unit tangents ds have changed.

The parameter s is still a variable of

integration and has nothing to do with the time. Therefore dt

dt

ds

ds + $6 v

Er- ds

= T dt . ds

+

v.

d

dt Pdsl

ds \dt/

ds

ds

(424)

Euler's equation of motion (411) for a conservative field,

f = -VX is

dv dt

1

= -VX - Vp = -VV, where V = x + f dp/p.

There-

1

fore

2I

2

dt

_

--0d(V-J2) =0

(425)

We have arrived at a theorem by Lord Kelvin that the circulation around a closed curve composed of a given set of particles

remains constant if the field is conservative, provided that the density p is a function only of the pressure p. If we now consider a closed curve

lying on a tube made up of vortex lines, but not encircling the tube (see Fig. 97), then

C=

ff 8

s i nce dd i s normal to V x v.

Fr om Fio. 97. Kelvin's theorem, C = 0 for all time, so that the curve r always lies on the vortex tube. 114. Applications Example 109. Let us consider the steady irrotational motion of an incompressible fluid when a sphere moves through the fluid

VECTOR AND TENSOR ANALYSIS

240

ISEC. 114

with constant velocity. Let the center of the sphere travel along the z axis with velocity vo. We choose the center of the sphere as the origin of our coordinate system. From Sec. 110, Prob. 6, we have

f - pop=

at

and

0

Hence

Dr

=

Now at points on the surface

so that V2p = 0.

of the sphere we must have CYT)radWLY = 0, so that

(a?Y-a = 0. Or

We look for a solution of Laplace's equation satisfying this boundary condition, so that we try 'P = (see Sec. 67).

(Ar +

! r/J

cos 8

(426)

We need B -CA-

a3

cosB=0

so that B = a2A/2. Moreover, at infinity we expect the velocity of the fluid to be zero, so that the velocity relative to the sphere should be -vo. Hence aVs az z

.= A =

- vo

and s

P = -vo (r + 2r2

cos 0

(427)

The velocity of the fluid relative to the sphere is given by v = Vsp and the velocity of the fluid is v = Vp + vok. Example 110. Let us consider a fluid resting on a horizontal surface (x-y plane) and take z vertical. Let us assume a transverse wave traveling in the x direction. For an incompressible

Sec. 114]

HYDRODYNAMICS AND ELASTICITY

241

fluid z+az?

°2`P-ax

0

2

(428)

We assume a solution of the form p = A (z)e

aLT(X-'i)t.

Sub-

stituting into (428), we obtain 2w

e

tZ_voi f

41x2

- 2 A (z) +

d2A dx2

I=0

so that d2A

_

41r2

(429)

\2 A

dz2

The solution to (429) is A = Ape
(x - vt)]

(Aoe(2r/X)z + Boe-(zrn*)z) cos

(430)

L

The fluid has no vertical velocity at the bottom of the plane on

which it rests, so that v. =

= 0 at z = 0. This yields

L(P

az

A 0 = B0, so that = Ao(e(2r')= + ec2r/l.>=) cos

I2r

(x - Vi) J

= 20 cosh (-- z)

cos

[

xr (x - vt)]

(431)

From Prob. 8, Sec. 110, we have

-(x++2v2)+C(t)

at

and for a gravitational potential, x = gz, so that at

=

- (gz +

p

+

2

v2)

+ C(t)

(432)

We now assume that the waves are restricted to small amplitudes and velocities, so that we neglect Jv2. Moreover, at the

VECTOR AND TENSOR ANALYSIS

242

[SEC. 114

surface, p, the atmospheric pressure, is essentially constant, so

that dp = 0. Differentiating (432), we obtain a2(

_

dC

az .9 at

ate

+

(433)

dl

and again at the surface at = vZ = az , so that (433) becomes dC

a_p

a2V

(434)

g az + dt

ate

Substituting (431) into (434), we obtain 2

zcosLA (x - Vt)

-v2 a2 A0 cosh

g

2w-

z cos

I2r

(x - vt) ] + dt

(435)

In order for C to be dependent only on t, we must have the coefficient of cos [(27r/A) (x - vt) ]identically zero in (435). Ao

(- v

227r2

cosh

27r

z+

g

sink

27r

z=0

Hence (435a)

or

v2 =

g tanh - z

In deep water z/X is large so that tank

z

1, and the

velocity of the wave is v = (Ag/2,r)*.

Problems

1. Show that for steady motion of an incompressible fluid under the action of conservative forces, (v O)w - (w V)v = 0, wherew = D x v. 2. Show that dt (Pl = \P of v for a conservative system.

SEc. 1151

HYDRODYNAMICS AND ELASTICITY

243

3. If C is the circulation around any closed circuit moving

with the fluid, prove that

dC

=

p d (1) if the field is con-

servative and if the pressure depends only on the density.

4. Show that v = 2axyi + a(x2 - y2)j is a possible velocity of an incompressible fluid.

5. Verify that the velocity potential (p = A[r + (a2/r)] cos 0 represents a stream motion past a fixed circular cylinder. 115. Small Displacements. Strain Tensor. In the absence of external forces, a solid body remains in equilibrium and the forces between the various particles of the solid are in equilibrium because of the configuration of the particles. If external forces

are added, the particles (atoms, molecules) tend to redistribute themselves so that equilibrium will occur again. Here we are interested in the kinematic relationship between the old positions

r

p°

of equilibrium and the new. We shall assume that the deformations are small and continuous. We expect, from Sec. 112, that

so po

r

p

Is p

Fia. 98 .

in the neighborhood of a given point Po, the remaining points will

be rotated about Po and will suffer a pure strain relative to Po. Let r be the position vector of P relative to Po, and let s be the displacement vector suffered by P, and so the displacement suffered by Po (Fig. 98). Then

S = so + ds = so + (r

V)so

(436)

Let s = u(x, y, z, t)i + v(x, y, z, t)j + w(x, y, z, t)k. Since we will be dealing with static conditions,

s = u(x, y, z)i + v(x, y, z)j + w(x, y, z)k From (420),

S = so+J(V xs)P,

(437)

where

w=x-asax

as

PO

as

+yay Pc +zoz

PO

since s = v At.

We are interested in the position of P after the deformation (now P') relative to the new position of Po (now Po ). This is

244

VECTOR AND TENSOR ANALYSIS

[SEC. 115

the vector r' = r `}- s - so, or

r' = r+4(D xs)po x r +

(438)

Since J(V x s)P, x r represents a rigid-body rotation about P0, we ignore this nondeformation term and so are interested in r + 'I'p(r w). Now

auj aw a-l +2 D Cx tax +xyax +xz at av au awl I r + yz D xy 1

Po

+2

y Po

P.

+

y2

ay PO

0

ay Po

aw

+ 2D

zx azlPo

+ zy a P.

az Po

and

r+

1

aul x Ci

x

+

(au

avl x (aw au ax! + 2 \ax + az J i

au

_y

+ 2 Cay +

ax av

av

_z (aw

2y+

+yCl+ay x (aw

y aw

au

av

az)+2Cay+az

8v

aw 1 az

Jk

(439)

The partial derivatives are evaluated at the point Po. Let us now consider the matrix

au i + ax

lIsr'II =

au

av

2 ay

+ Ox

1

+ + ax/ i aw aul i law 2 Cay

2 C 8x

+

y

azl 2 `ay +

(440)

av az

The nine components of this matrix form the strain tensor. If

we write r = x'i + x2j + xak and r' = y'i + y2j + yak

(see

245

HYDRODYNAMICS AND ELASTICITY

SEC. 115)

Example 8), then r' = r + I V(r w) may be written i = 1, 2,3

yi = sfix' + S2 'X2 + 83ix3, or 3

y' =

(441)

Sa'xa

a-1

We shall see in Chap. 8 that since r and r' are vectors, then, of

necessity, the s/ are the components of a tensor. Notice that Sii = s; , so that the tensor is symmetric. The ellipsoid which has the equation

(

aul

avl

(

1 + ax)xr+ 1 +ay y2+ aw

(awl 1

ay +aavlxy

+ az)z2+ au

aw

av

+ (ay + az

(au

yz + (ax

+

az

zx = 1

(442)

is called the strain ellipsoid. From Sec. 107 we know that we can reduce the ellipsoid to the form

Ax" + By'2 + Cz'z = 1

by a proper rotation. The strain tensor becomes entirely diagonal, A

0

0

0 B 0 0 C 0 In the directions of the new x', y', z' axes, the deformation is a pure translation, and these directions are called the principal directions of the strain ellipsoid. Let us now compute the change in the unit vectors, neglecting

the rotation term. The unit vector i has the components (1, 0, 0), so that from (438) and (439) i

(

au

1

au

av

- r1 = \1 + ax) 1 + 2 (ay +

1

aw

ax 1 + 2

ax

(LU)

By neglecting higher terms such as

_ Iril

I

1+

au ax

21

+

az/ k

u-

y

I

.

a_ul

Similarly j --> r2, and lr2l = 1

we have

+

avl

ay

; k - rs,

246

VECTOR AND TENSOR ANALYSIS

and fr31 = 1 +

awl

[SEC. 116

The angle between r1 and r2 is given by

. I

cos B =

au +r,jjr2+

av

v ay + ax'

.

The terms of the strain tensor are now fully understood. The volume of the parallelepiped formed by r1, r2, r3 is

au

av

r2xrs = 1+ ax + ay +

V

so that V

_

V

_ au

aw az

aw

av

(443)

ax+8y +az

V

The left-hand side of (443) is independent of the coordinate system, so that V s is an invariant. Finally, we see that the deformation tensor due to the tensor - V (r w) has the components

1

2\ay+8x/ 2(ax+ az)

ax au

8v'\

2 (ay aw 1

+ ax/

2 \ ax

av

ay

au

1 (au

+

az

2 \ay + az

+

axi/1I

av

aui 2 (axl

au

av

2 (ay

+ az

1

aw az (444)

where

u1 =u, u2=v, u3=w,

x1=x x2=y x3=z

116. The Stress Tensor. Corresponding to any strain in the body must be an impressed force which produces this strain. Let us consider a cube with faces perpendicular to the coordinate axes. In Sec. 108 we assumed no shearing stresses, but now we consider all forces possible between two neighboring surfaces.

SF:C. 116]

247

HYDRODYNAMICS AND ELASTICITY

Let us consider the face ABCD (Fig. 99). It is in immediate contact with other particles of the body. As a consequence, the resultant force tx on the face ABCD can he decomposed into three forces: txx, tyx, tzx, where txx is the component of tx in the x direc-

tion, t, is the component of tx in the y direction, and tzz is the ,

z

y

Fia. 99.

component of tt in the z direction. We have similar results for the other two faces and so obtain the matrix tzz

tzy

tzz

tyz

tyy

tyz

tzz

tzy

G.

(445)

These are the components of the stress tensor. By considering a tetrahedron as in Sec. 108, we immediately see that if dd is the vectoral area of the slant face, then the components of the force f on this face are f, = tzx dsz + tzy d s + tzz dsz fy = tyx dsz + tyy dsy + tyz dsz fz = tzz ds, + tzy dsy + tzz dsz

where dsz = i dd, dsy = j dd, dsz = k dd.

(446)

248

VECTOR AND TENSOR ANALYSIS

[SEC. 117

We immediately see that tyx =

Of.,

fx,

tx

asv

as., 3

and that fi = I tia dsa, where f, = f,, f2 = f,,, f3 = f., t12 = t,,, a=1

.

.

.

.

We shall see later that this explains why the ti; are called the components of a dv tensor.

Let us now consider the resultant force acting on a volume V with boundary 8

z

(see Fig. 100). (446)

Wehavefrom

fz = txx dsx + txv ds + tzx dst

so that Y

fz _

F. =

JJtxzdSx

+ t,, ds, + tx, dss

=

!s J t.dd

Fio. 100.

where t = tz, + Applying the divergence theorem, we obtain Fz

- JIf Jr V

acz=

acZy

ax

+

4-9t"

ay

+

az

dT

t,, k.

(447)

with similar expressions for F,,, F. By letting V --p 0, we have that the x component of the force

per unit volume must be Vax- +

qty"

y

+

tz

117. Relationship between the Strain and Stress Tensors. In the neighborhood of a point P in our region, let us choose the three principal directions of the stress tensor for the axes of our cartesian coordinate system. If we assume that the region is isotropic (only contractions and extensions exist), a cube with faces normal to the principal directions will suffer distortions only along the principal axes. Hence the principal directions of the

249

HYDRODYNAMICS AND ELASTICITY

SEC. 1171

strain ellipsoid will coincide with those of the stress ellipsoid. this coordinate system el ie17JJ =

0

0

0

It,

0 0

0

0 0 t2

In

0 0

(448)

0

0

Our fundamental postulate relating the shear components with those of the stress will be Hooke's law, which states that every tension produces an extension in the direction of the tension and is proportional to it. We let E (Young's modulus) be the factor of proportionality. Experiments also show that extensions in fibers produce transverse contractions. The constant for this phenomenon is called Poisson's ratio a. We thus obtain for the relative elongations of the cube in the three principal directions the following: 1 -SET a el =E;ti --(t2+t3) _ E E 1

0,

or

t2 -

e2 1

e3 =

E

E(t1+t2+t3)

(t3 + tl) =

1 r

t2 -

E (t1 + t2 + t3)

t3 "-

(t1 + t2 + t3)

(449)

1-r-a-

a 3 - - (11 + t2)

The formulas for el, e2, e3 apply only in the immediate neighbor-

hood of a point P. Since points far removed from P will have different stress ellipsoids, the principal directions will vary from point to point. Hence no single coordinate system will exist that would enable the stress and strain components to be related by the simple law of (449). Let us therefore transform the components of the stress and strain tensors so that they may be referred to a single coordinate system. The reader should read Chap. 8 to understand what follows. If he desires not to break the continuity of the present paragraph, he may take formula (456) with a grain of salt, at least for the present. Example 8, Probs. 21 and 22 of Sec. 11, and Prob. 21 of Sec. 15 will aid the reader in what follows. If x1, x2, x3 are the coordinates above, and if we change to a new coordinate system 11'. T2, 23 where 3

x' = I a'xx, a-1

i = 1, 2, 3

(450)

VECTOR AND TENSOR ANALYSIS

250

(SEC. 117

then the transformation (450) is said to be linear. Notice that the origin (0, 0, 0) remains invariant.. If, furthermore, we desire distance to be preserved, we must have 3

3

(xi)

(.Ti), =

In Chap. 8 we shall easily show that this requires

=0ifij

3

a=1

= 1if ij

a.,aaia = S=i

(451)

Equation (451) is the requirement that (450) be a rotation of axes. Moreover, since we are dealing with tensors, we shall see that the components of the strain tensor in the x'-x2-x3 coordinate system

are related to the components in the x'-a 2-x3 system by the following rule: 3

3

e;i = I I a,aa1 ea#

(452)

'6=1 a=1

If we now let i = j and sum on i, we obtain `3

3

3

3

L, ei, =i=1I I0=1 Z a=1 aiaMeag

:=1

3

3

3

Saisea# = I eaa

a-1

0-1 a-1

so that e11 + 922+933 = e11 + e22 + e33 = el + e2 + e3

(453)

This is an invariant obtained from the strain tensor [see (443)]. A similar expression is obtained for the stress tensor; namely,

that 111+122+133 = t11 +t22+133 = t1+t2+t3 Equations (449) may now be written as

el -1+0 E t1+ e2=1

(454)

e3=1Eor

ts+

HYDRODYN.4.1IICS AND ELASTICITY

SEC. 117]

251

where 4, is the invariant E (tl + t2 + t3)

-

(III + 122 + 133)

From Eq. (452) we have 3

eij =

3

E aiaa,8eas B=1 a-1

and since eap = 0 unless a = 6 [see (448)], we obtain 3

3

1 aiaaJaeaa = I aiaajaea a=1 a=1 3

a

-l

aiaaja (1

1+ a F,

E

to

+)

3

3

I aiaajala + Y' 1 aiaaja a-1

a=1

and 1 + o

eij = E 3

3

of + 4,5ij

(455)

3

since 1j = I I aiaajalas = I aiaaala. 6=1 a -l

a=1

Equation (455) is the relationship between the components of the strain and stress tensors when referred to a single coordinate

system. We have Q111

ell =

- E (tll + 122 + 133)

1

1

922 =

E +Q_ E

122 -

oT

-

(111 + t22 + 138)

O e33 =

1

1 912 =

+ 133 - E, (111 + E22 + 133) +v_ E

112

1+0. 923 =

E

l23

1 +Q_ 981 =

E

131

(456)

252

VECTOR AND TENSOR ANALYSIS

[SFC. 11

Solving Eels. (456) for the t;; and removing the bars, we obtain t11 =

1+

[ell +

01

1

(ell + e22 + e33)

2au

E

o

aw

av

(au

=i+o, axl-2vax+ay+az

= tss

=

E rav

au

v

J

av awt22

1+aLay1-2v (ax+ay+az)] E taw v 1+aaz+1-2QV*s E

t12=t21= t23 = t32 =

=

t31 - t13 =

E

(457) (au

av

2(1+o) ay+ax aw E av 2(1 + v) \az + ay E (aw au

2(1+Q)ax +az

Equation (447) now becomes

E

F=

[d?u

-}- v

ax2

+

(a2u 1 - 20 \49x2

E

+ _

1

2(1+o)

a2w

+ ax ay +

ax az

a2u

2(1 + u) aye

E -2(1+a)IV

a2v

.

a (au

a2w

a2v

a2u

ay ax

+ az ax + az2

av

aw

1

zu+1 -2aaxax+ay+ az J

[vu+ 1 1

The forces per unit volume in the y and z directions are Fy

2(1+a)[Dzv+1 12vay(V - s)I E

{V2W+

a

1 I-2oaz

(0 s)

so that

f=

+ 2(1

[V2S r)

V(V s)] + 1 1 2cr

(458)

If we let R = RJ + R j + R2k be the external body force per unit volume, p the density of the medium, then Newton's second

253

HYDRODYNAMICS AND ELASTICITY

SEc. 117]

law of motion yields

R+ 2(1 +o,)[V2S+-Lv(V.S)]

= P

For the case R = 0, (459) reduces to E 2(1 + a) [v2s

+

1

- 2a °(°

2

s)

=p

at2

(460)

In Sec. 70 we saw that a vector could be written as the sum of a solenoidal and an irrotational vector. Let s= s1 + s2j where V s, = 0 and V x s2 = 0. Since (460) is linear in s, we can consider it as satisfied by s, and s2. This yields E V2s1_- p a2S, 2(1 + a) ate and

(461) 2(1

E +a,)

1

[V2s2

+ 1 -2a °(° . s2)

a2s2

= p ate

However,

V X (V X 62) = V(V S2) - V 'S2 = 0

so that E(1 T a)

(1 +a)(1 - 2a)

V2S2

= pa2s2 at2

(462)

In Sec. 80, we saw that (461) leads to a transverse wave moving with speed Vt = E/2(1 + a)p. Equation (462) is also a wave equation, but the wave is not transverse. Let us assume that the wave is traveling along the x axis. Then

s2=s2(X-Vt) = u(x - Vt)i + v(x - Vt)j + w(x - Vt)k

=0

V X S2 =

axJ+-k=0

clx

254

VECTOR AND TENSOR ANALYSIS

[SEC. 117

so that w and v are independent of x and therefore are independent

of x - Vt. We are not interested in constant displacements, so that s2 = u(x - Vt)i, and the di,,placement of s-2 is parallel to the direction of propagation of the wave. longitudinal. The speed of the wave is

The wave is therefore

L'(1 - o.)

V,=

P(1 + v)(1

2v)

In general, both types of waves are produced, this result being useful in the study of earthquakes. Problems 1. Derive (451). 2. If P, f--, f3 are the components of a vector for a cartesian

coordinate system, prove that the components P, P, j'3 of this vector in a new cartesian coordinate system are related to the old 3

components by the rule J' =

i = 1, 2, 3, using the

n=i

coordinate transformation (450). 3. If the body forces are negligible and if the medium is in a

state of equilibrium, show that V2S +

1 -1

V(V s) = 0.

4. If the strain of Prob. 3 is radial, that is, if s = s(r)r, find the differential equation satisfied by s(r).

5. Assuming a = 0 for a long thin bar, find the velocity of propagation of the longitudinal waves.

6. If µ = E/2(1 + v) (modulus of rigidity) and Ea

A=

(1 + a) (1 - 2Q)

show that Eq. (459) becomes 49

R+AVss+ x

7. Why do we use ats instead of

's

Pats x

in in (459)?

8. A coaxial cable is made by filling the space between a solid

core of radius a and a concentric cylindrical shell of internal radius b with rubber. If the core is displaced a small distance

Ssc. 118]

HYDRODYNAMICS AND ELASTICITY

255

axially, find the displacement in the rubber. Assume that end effects, gravity, and the distortion of the metal can be neglected. 118. Navier-Stokes Equation. We are now in a position to derive the equations of motion of a viscous fluid. In the case of nonviscous fluids, we assumed no friction between adjacent layers of fluid. As a result of friction (viscosity), rapidly moving layers tend to drag along the slower layers of fluid, and, conversely, the

slower layers tend to retard the motion of the faster layers. It is found by experiment that the force of viscosity is directly proportional to the common area A of the two layers and to the gradient of the velocity normal to the flow. If the fluid is moving in the x-y plane with speed v, then the viscous force is

since av is the gradient of the speed normal to the direction of flow. 17 is called the coefficient of viscosity.

We shall let Pt; be the stress tensor and u;; the strain tensor for the fluid analogous to t; and e;; of the previous paragraphs. We have

_

E au 2(1 + v) ay

P12

Ov

+

ax

where u, v, w are the components of the velocity vector v (see Sec. 112). For a fluid moving in the y direction with a gradient

in the x direction, we have u = 0 and au = 0, so that ay

_

P12

Hence the term

E 2(1

E av _ av 2(1 + v) ax = '' ax must be replaced by q.

or)

In addition to the stress components due to viscosity, we must add the stress components due to the pressure field, which we assume to be

-p I

0 0

0

0

-p

0

0

-p

VECTOR AND TENSOR ANALYSIS

256

[SEC. 118

The equations of (457) become (463)

P;i = 2rio;i + X(911 + 022 + r33)aii - pa+i

where X is undetermined as yet. We see that

Now let i = j and sum on j.

P11 + P22 + P33 = (2rj + 3X)(ail + 022 + 033) - 3p

We know that P11 + P22 + P33 is an invariant and that for the static case P11 + P22 + P33 = -3p. Consequently we choose 2, + 3X = 0, so that (463) becomes p;, = P;, = 2+10;1 - I V(0-11 + 022 + 033) - pa+i

(464)

Moreover, the velocity vector is given by

for small velocities.

v = u11 + 1627 + u3k

and 0;i =

1

au;

2 C axi

auiax:

+

' so that div v = V v = 011 + 022 + 033-

To obtain the equations of motion, we note that from (447) ap11 fl -

ax, 3 c3

= jG =1

49p12

+

axe

x1 = x where x2 = y

49p13

+ axi

x3=z

apli ax

3

and in general f;

I apt'

Hence

-i

du;

pF; + f1 = p dt becomes 3

pF. +

ap;i axi

du:

(465)

P dt

j =1

where F; is the external force per unit mass.

From (464)

a0;i 2 a(diy v) ap ap;i 17 = 2,i axi - 3 axi a`i - axi a+i axi _ 'q a au; au) 2 a(V v) +1 axi 3 = axi axi + ax'

-

-

ap a; - axi

257

HYDRODYNAMICS AND ELASTICITY

SEC. 1181

and 3

api;

3

a

au;

au;

2

+ axi/

1-1 ax?

3'

v)

a (V

ap

ax,

The equations of motion (465) are dui

p dt - = pFi + v

I 3

J

1

a aui ax' Cax'

ap 2 a(V v) + au; -7 ax' axi axi 3

(466)

or

pat

= pf +,q V2v - - V(V v) - Vp

(467)

For an incompressible fluid V v = 0, and

pd Along with (467) we have the equation of continuity

at

=0

Problems 1. Derive (467) from (466). 2. Consider the steady flow of an incompressible fluid through a small cylindrical tube of radius a in a nonexternal field. Let

v = vk and show that p = p(z) and +1 V2v =

ap

Show that the

boundary conditions are v = 0 when r = a, and v = v(r), r2 = x2 + y2, and that = r dr (r dr) Hence show that v = (A/4i7)(r2 - a2), where A is a constant and LP = A. 3. Consider a sphere moving with constant velocity vok (along the z axis) in an infinite mass of incompressible fluid. Choose the center of the sphere as the origin of our coordinate system.

Show that the equation of motion is p aE = q V2v - Vp and that

the boundary conditions are v = 0 for r = a, v = -vok at r = oo

258

VECTOR AND TENSOR ANALYSIS

[SEC. 118

and that for steady motion a = 0 for any quantity 4, associated with the motion. Moreover V v = 0. We shall assume that v and the partial derivatives of v are small. Show that this implies (i)

Vp = I V2v

Hence prove that V2p = 0.

Now let v = -V(p + wlk and show

that awi

=v4o z

49Z

Assuming p = -,1 V2p and V2w1 = 0, show that (i) and (ii) will be satisfied. Let w, = 3voa/2r, rp = coz - (voa3z/4r3) + (3voaz/4r),

P=

3,gvoaz 2r3

and show that V2w1 = 0,

V2p = 0,

p = -n V2rp

v= -V(p+wik=0forr=a v = -vok for r = co

4. Solve for the steady motion of an incompressible viscous fluid between two parallel plates, one of the plates fixed, the other moving at a constant velocity, the distance between the plates remaining constant. 5. Find the steady motion of an incompressible, viscous fluid surrounding a sphere rotating about a diameter with constant angular velocity.

No external forces exist.

CHAPTER 8 TENSOR ANALYSIS AND RIEMANNIAN GEOMETRY

We shall be interested in sums

119. Summation Notation. of the type

S = alx, + a2x2 + .

. + anxn

.

(468)

We can shorten the writing of (468) and write n

S = Z aixi

(469)

i=i

Now it will be much more convenient to replace the subscripts of the quantities x:, x2,

.

. .

, x by superscripts, x', x2,

. . . , X11.

The superscripts do not stand for powers but are labels that allow us to distinguish between the various x's. Our sum S now becomes n

S=

(470)

aixi

We can get rid of the summation sign and write (471)

S = aixi

where the repeated index i is to be summed from I to n. This notation is due to Einstein. Whenever a letter appears once as a subscript and once as a superscript, we shall mean that a summation is to occur on this letter. If we are dealing with n dimensions, we shall sum from 1 to n. The index of summation is a dummy index since the final result is independent of the letter used. We can write

S = a;xi = a;x' = a,,xa = as0. Example 111. If f = f(x', x2, calculus 259

,

xn), we have from the

0,60

VECTOR AND TENSOR ANALYSIS

. + -CIx"dx"

df = ax dxl + ax dx2 +

_ = of

[SEC. 120

of dx' ax'

dxa

axa

;.nd

df afdJxa

dt - axa dt

The index a occurs both as Hence we first sum on a, say from

Example 112. Let S = gasxax#.

a subscript and superscript. 1 to 3. This yields

S = 9iax'x8 + 92ax'x' + g38xaxe

Now each term of S has the repeated index # summed, say, from I to 3. Hence S = g11x'x1 + 912x'x2 + 913x'x3 + 921x2x' + g22x2x2 + 923X2x3 + 931x3x' + g32x3x2 + 933x8x3

and S = gaoxaxa represents the double sum 3

3

S = Z I g-Oxaxs

0-1 a-1 We also notice that the gap can be thought of as elements of a square matrix gii 912 913 921

922

923

931

932

933

120. The Kronecker Deltas. We define the Kronecker o to be equal to zero if i - j and to equal one if i = j:

a;=0,ipj 1,i=j We notice that Si = 52 _ 1

1

b_ = 03 =

= SA = 1, =

r

+1 = u

(472)

TENSOR ANALYSIS

SEC. 120)

If xI, x2,

261

... , x" are n independent variables, then

ax' axl

= S,

i

for if

axe = 1, and if i

j, there is no change in the vari-

able x' if we change x1 since they are independent variables, so

that

ax!

ax1

= 0.

Example 113. Let S = aaxa. as -=

ax"

Then

as ga"

cis

= as ax , and

ax

Now Sµ = 0 except when a = µ, so that on summing on a we a(axa) obtain = a". ax"

Let S = apxax# = 0 for all values of the vari. . , x^. We show that a,, + a;; = 0. First differentiate S with respect to x' and obtain

Example 114. ables x', x2, .

T

axa axp as = aa$xa xa = 0 + a, ax' ax' axi = aaflxaaf + aa$67x8 = 0

= aaixa + a;se = 0 Now differentiate with respect to xi so that 028 axe

ax'

- a.v + aiob = 0

and

a,,+a;,

0

We define the generalized Kronecker delta as follows: The superscripts and subscripts can have any value from 1 to n.

If at least two superscripts or at least two subscripts have the same value, or if the subscripts are not the same set of numbers as the superscripts, then we define the generalized Kronecker delta to be zero. If all the superscripts and subscripts are separately distinct, and the subscripts are the same set of numbers Qs the superscripts, the delta has the value of + 1, or --1, accord-

262

VECTOR AND TENSOR ANALYSIS

[SEC. 120

ing to whether it requires an even or odd number of permutations to arrange the superscripts in the same order as the subscripts. For example, 6x23 = 1, 6213 - - 1, 61231 23 = 1, 6163 = 0, a1438 - -11 a123

=

0221

= 6312 323

0,

61213

=0

It is convenient to define eilh ... i.. =

(473)

and Eiji, ... i. =

Problems

1. Write in full aaxa=bi,a,i= 1, 2, 3. 2. If aae7xax8xY = 0, show that ai;k + aki; + a; + aJik + akii + aiki = 0.

3i,ti:'412 ...n i.,i,...i. 6;,i:...;.. 3. Show that 612..,, i. = 4. If yi = aaxa, zi = by, show that zi = bas;x#. 5. Prove that bas = are - a8r baBratYaapi = arst + airs

+ astr - sari - aisr - arts

6. Show that the determinant I at at can be written 2

a1

a11

a2'

atz

a2

2

a2

= Etiiaia? = etiia1

2

and that at

a2

2

z

a1 8

a1

1

a3 at z

a2

a3

8

a$$

a2

7. Prove that ei1i, ... ie =

8. Show that aij

= Eiika;a;ak = eiikai4a8 e'li2 ' ' i*.

ax axi 9. If yi = yi(xl, x2) ... , xe), i = 1, 2, . . . , n, show that ayi ax" ai assuming the existence of the derivatives. Also a; = axa y

i

show that ayi

-

axe

e

yi

as = a?. Show that a2yi

axa ax¢

axa 8x8 ayi

8yk

ayi

492xa

+ Oxa ayi ayk - 0

TENSOR ANALYSIS

SEC. 1211

10. If

= cp(x', x 2 .

. .

.

. .

n),

xi = xi(y', y2'

i = 1,2,

.

yn)

,

= xi(y)

n, and if