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Question
Solve the following differential equation:
(D2 – 2D – 15)y = 0 given that `("d"y)/("d"x)` = 0 and `("d"^2y)/("d"x^2)` = 2 when x = 0
Solution
The auxiliary equation is
m2 – 2m + 15 = 0
m2 + 3m – 5m – 15 = 0
m(m + 3) – 5(m + 3) = 0
(m + 3)(m – 5) = 0
m = – 3, 5
Roots are real and different
∴ The complementary function is
Aem1x + Bem2x
C.F = Ae–3x + Be5x
∴ The general solution is
y = (Ae–3x + Be5x) ........(1)
`("d"y)/("d"x)` = Ae-3x (-3) + Be5x (5)
`("d"y)/("d"x)` = – 3Ae–3x + 5Be5x ........(2)
`("d"^2y)/("d"x^2)` = 9Ae–3x + 25Be5x .......(3)
When x = 0, `("d"y)/("d"x)` = 0
3 Ae° + 5Be° = 0
– 3A + 5B = 0 ........(4)
When x = 0, `("d"^2y)/("d"x^2)` = 2
Equation (3)
⇒ 9Ae° + 25Be° = 2
9A + 25B = 2 ........(5)
Solving equation (4) and (5)
Equation (4) x 3 ⇒ – 9A + 15B = 0
Equation (5) ⇒ 9A + 25B = 2
40B = 2
∴ B = `2/40`
B = `1/20`
Substitute B = `1/20` in equation (4)
` 3"A" + 5(1/20)` = 0
` 3"A" + 1/4` = 0
` -3"A" = (-1)/4`
A = `1/12`
Substitute the value of A = `1/12` and B = `1/20` in equation (1)
y = `1/12 "e"^(-3x) + 1/20 "Be"^(5x)`
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