Question

X'+7x=5cos(2t), x(0)=0

Answer 1

The ODE is linear. Multiplying both sides by $e^{7t}$ allows you to condense the left hand side as the derivative of a product.

$x'+7x=5\cos2t$
$e^{7t}x'+7e^{7t}x=5e^{7t}\cos2t$
$\dfrac{\mathrm d}{\mathrm dt}\left[e^{7t}x\right]=5e^{7t}\cos2t$

Integrating both sides with respect to $t$ yields

$e^{7t}x=5\displaystyle\int e^{7t}\cos2t\,\mathrm dt$

The integral can be done by parts. You should get

$e^{7t}x=\dfrac5{53}e^{7t}(7\cos2t+2\sin2t)+C$
$x=\dfrac5{53}(7\cos2t+2\sin2t)+Ce^{-7t}$

With the given initial condition, you have

$0=\dfrac5{53}(7+0)+C\implies C=-\dfrac{35}{53}$

So the particular solution to the ODE is

$x=\dfrac5{53}(7\cos2t+2\sin2t)-\dfrac{35}{53}e^{-7t}$