Advanced book on Mathematics Olympiad

578 Real Analysis

Proof.For the sake of completeness we will prove Green’s identity. Consider the vector
field

−→

F =f∇g. Then

div

−→

F =

∂

∂x

(

f

∂g

∂x

)

+

∂

∂y

(

f

∂g

∂y

)

+

∂

∂z

(

f

∂g

∂z

)

=f

(

∂^2 g

∂x^2

+

∂^2 g

∂y^2

+

∂^2 g

∂z^2

)

+

(

∂f

∂x

∂g

∂x

+

∂f

∂y

∂g

∂y

+

∂f

∂z

∂g

∂z

)

.

So the left-hand side is

∫∫∫

Rdiv

−→

FdV. By the Gauss–Ostrogradski divergence theorem
this is equal to

∫∫

S

(f∇g)·−→ndS=

∫∫

S

f(∇g·−→n)dS=

∫∫

S

f

∂g

∂n

dS.

Writing Green’s first identity for the vector fieldg∇fand then subtracting it from
that of the vector fieldf∇g, we obtain Green’s second identity

∫∫∫

R

(f∇^2 g−g∇^2 f)dV=

∫∫

S

(

f

∂g

∂n

−g

∂f

∂n

)

dS.

The fact thatfandgare constant along the lines passing through the origin means that
on the unit sphere,∂f∂n=∂g∂n=0. Hence the conclusion.

531.Because

−→

F is obtained as an integral of the point-mass contributions of the masses
distributed in space, it suffices to prove this equality for a massMconcentrated at one
point, say the origin.
Newton’s law says that the gravitational force between two massesm 1 andm 2 at
distanceris equal tom^1 rm 22 G. By Newton’s law, a massMlocated at the origin generates
the gravitational field

−→

F (x, y, z)=MG

1

x^2 +y^2 +z^2

·

x

−→

i +y

−→

j +z

−→

k

√

x^2 +y^2 +z^2

=−MG

x

−→

i +y

−→

j +z

−→

k

(x^2 +y^2 +z^2 )^3 /^2

.

One can easily check that the divergence of this field is zero. Consider a small sphereS 0
of radiusrcentered at the origin, and letVbe the solid lying betweenS 0 andS. By the
Gauss–Ostrogradski divergence theorem,
∫∫

S

−→

F·−→ndS−

∫∫

S 0

−→

F ·−→ndS=

∫∫∫

V

div

−→

FdV= 0.

Hence it suffices to prove the Gauss law for the sphereS 0. On this sphere the flow

−→

F·−→nis
constantly equal to−GMr 2. Integrating it over the sphere gives− 4 πMG, proving the law.