Find the general solution of the second order

burubukuamaw

burubukuamaw

Answered question

2022-03-22

Find the general solution of the second order equation t2y+2ty2y=0 given that y1(t)=t is a solution Also solve the initial value problem
y+3y4y=0,y(0)=1, y(0)=0, y(0)=12

Answer & Explanation

Payten Reese

Payten Reese

Beginner2022-03-23Added 10 answers

We have to solve the initial value problem
y+3y4y=0, y(0)=1, y(0)=0, y(0)=12
y+3y4y=0
AE: m3+3m24=0
(m1)(m+2)2=0
m=1,2,2
Solution
y=c1et+(c2+tc3)e2t
y=c1et2(c2+tc3)e2t+c3e2t
y=c1et2(c2+tc3)e2t+c3e2t2c3e2t
y(0)=1c1+(c2+0)=1c1+c2=1
y(0)=0c12(c2+0)+c3=0c12c2+c3=0
y(0)=12c14c2+c32c3=12c14c2c3=12
Now, solve the equations
c1+c2=1
c12c2+c3=0
c14c2c3=12
c1=1916, c2=316, c3=2316
Hence the solution y=116[19et+(3+23t)e2t]
Jeffrey Jordon

Jeffrey Jordon

Expert2022-03-31Added 2605 answers

Answer is given below (on video)

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