Mathematical Methods for Physics and Engineering : A Comprehensive Guide

(Darren Dugan) #1

15.2 LINEAR EQUATIONS WITH VARIABLE COEFFICIENTS


where


g(x)=a 0 (x)−^14 [a 1 (x)]^2 −^12 a′ 1 (x)

h(x)=f(x)exp

{
1
2


a 1 (z)dz

}
.

Since (15.73) is of a simpler form than the original equation, (15.70), it may

prove easier to solve.


Solve

4 x^2

d^2 y
dx^2

+4x

dy
dx

+(x^2 −1)y=0. (15.74)

Dividing (15.74) through by 4x^2 , we see that it is of the form (15.70) witha 1 (x)=1/x,
a 0 (x)=(x^2 −1)/ 4 x^2 andf(x) = 0. Therefore, making the substitution


y=vu=vexp

(




1


2 x

dx

)


=


Av

x

,


we obtain


d^2 v
dx^2

+


v
4

=0. (15.75)


Equation (15.75) is easily solved to give


v=c 1 sin^12 x+c 2 cos^12 x,

so the solution of (15.74) is


y=

v

x

=


c 1 sin^12 x+c 2 cos^12 x

x

.


As an alternative to choosingu(x) such that the coefficient ofv′in (15.71) is

zero, we could choose a differentu(x) such that the coefficient ofvvanishes. For


this to be the case, we see from (15.71) that we would require


u′′+a 1 u′+a 0 u=0,

sou(x) would have to be a solution of the original ODE with the RHS set to


zero, i.e. part of the complementary function. If such a solution were known then


the substitutiony=uvwould yield an equation with no term inv, which could


be solved by two straightforward integrations. This is a special (second-order)


case of the method discussed in subsection 15.2.3.


Solution method.Write the equation in the form (15.70), then substitutey=uv,


whereu(x)is given by (15.72). This leads to an equation of the form (15.73), in


which there is no term indv/dxand which may be easier to solve. Alternatively,


if part of the complementary function is known then follow the method of subsec-


tion 15.2.3.

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