Answer:
a.[tex]y(x)=c_1e^{2x}+c-2xe^{2x}+x^3e^{2x}[/tex]
b[tex]y(x)=c_1cos 3x+c_2 sin 3x-5 cos x+ 7sin x[/tex]
Step-by-step explanation:
1.[tex]y''-4y'+4y=6x e^{2x}[/tex]
Auxillary equation
[tex]D^2-4D+ 4=0[/tex]
[tex](D-2)(D-2)=0[/tex]
D=2,2
Then complementary solution =[tex] C_1e^{2x}+C_2xe^{2x}[/tex]
Particular solution [tex]=\frac{6 xe^{2x}}{(D-2)^2}[/tex]
D is replace by D+2 then we get
P.I=[tex]\frac{6xe^{2x}}{0}[/tex]
P.I=[tex]\frac{e^{ax}}{D+a} \cdot .V[/tex]
where V is a function of x
P.I=[tex]\frac}x^3e^{2x}[/tex]
By integrating two times
Hence, the general solution
[tex]y(x)=c_1e^{2x}+c-2xe^{2x}+x^3e^{2x}[/tex]
b.y''+9y=5 cos x-7 sin x
Auxillary equation
[tex]D^2+9=0[/tex]
D=[tex]\pm 3i[/tex]
[tex]C.F=c_1 cos 3x+ c_2sin 3x[/tex]
P.I=[tex]\frac{5 cos x-7 sin x}{D^2+9}[/tex]
P.I=[tex]\frac{sin ax}{D^2+bD +C}[/tex]
Then D square is replace by -a square
[tex] D^2 [/tex] is replace by - then we get
P.I=-5 cos x+7 sin x
The general solution
[tex]y(x)=c_1cos 3x+c_2 sin 3x-5 cos x+ 7sin x[/tex]
