76 1 Mathematical Physics
F=
√
1 +y′^2
y=
y′^2
√
1 +y′^2+C
Simplifying√^1
y(1+y′^2 )
=Cwhere we have used (3)
Ory(1+y′^2 )=constant, say 2a∴(
dy
dx) 2
=
2 a−y
y∴dx
dy=
(
y
2 a−y) 1 / 2
=
y
(2ay−y^2 )^1 /^2
This equation can be easily solved by a change of variabley= 2 asin^2 θand
direct integration. The result isx= 2 asin−^1(y
2 a)
−
√
2 ay−y^2 +bwhich is the equation to a cycloid.1.91 Irrespective of the functiony, the surface generated by revolvingyabout the
x-axis has an area
2 π∫x 2x 1yds= 2 π∫
y(1+y′^2 )^1 /^2 dx (1)If this is to be minimum then Euler’s equation must be satisfied.
∂F
∂x−
d
dx(F−y′∂F
∂y′)=0(2)
Here
F=y(1+y′^2 )^1 /^2 (3)
SinceFdoes not containxexplicitly,∂∂Fx=0. SoF−y′∂F
∂y′=a=constant (4)Use (3) in (4)
y(1+y′^2 )(^12)
−yy′^2 (1+y′^2 )−
(^12)
=a
Simplifying
y
(1+y′^2 )^1 /^2
=a
or
dy
dx
=
√
y^2
a^2− 1 ,y=acosh(x
a+b)
This is an equation to a Catenary.1.92 The area is
A= 2 π∫
yds= 2 π∫a0y(1+y′^2 )^1 /^2 dx