Please solve for both parts

Question

asked Jun 11, 2023 27.9k views

1 Answer

Khasha · Answer 1 · 2023-06-18T14:47:44+0000

(a) The differential equation

$y' + \frac14 y = 3 + 2 \cos(2x)$

is linear, so we can use the integrating factor method. We have I.F.

$\mu = \displaystyle \exp\left(\int \frac{dx}4\right) = e^(x/4)$

so that multiplying both sides by
$\mu$ gives

$e^(x/4) y' + \frac14 e^(x/4) y = 3e^(x/4) + 2 e^(x/4) \cos(2x)$

$\left(e^(x/4) y\right)' = 3e^(x/4) + 2 e^(x/4) \cos(2x)$

Integrate both sides. (Integrate by parts twice on the right side; I'll omit the details.)

$e^(x/4) y = 12 e^(x/4) + \frac8{65} e^(x/4) (8\sin(2x) + \cos(2x)) + C$

Solve for
.

$y = 12 + \frac8{65} (\sin(2x) + \cos(2x)) + Ce^(-x/4)$

Given that
y(0)=0 , we find

$0 = 12 + \frac8{65} (\sin(0) + \cos(0)) + Ce^0 \implies C = -(788)/(65)$

and the particular solution to the initial value problem is

$\boxed{y = 12 + \frac8{65} (\sin(2x) + \cos(2x)) - (788)/(65) e^(-x/4)}$

As
gets large, the exponential term will converge to 0. We have

$\sin(2x) + \cos(2x) = \sqrt2 \sin\left(2x + \frac\pi4\right)$

which means the trigonometric terms will oscillate between
$\pm\sqrt2$ . So overall, the solution will oscillate between
$12\pm\sqrt2$ for large
.

(b) We want the smallest
such that
y=12 , i.e.

$0 = \frac8{65} (\sin(2x) + \cos(2x)) - (788)/(65) e^(-x/4)$

$(788)/(65) e^(-x/4) = (8\sqrt2)/(65) \sin\left(2x + \frac\pi4\right)$

$(197)/(\sqrt2) e^(-x/4) = \sin\left(2x + \frac\pi4\right)$

Using a calculator, the smallest solution seems to be around
$\boxed{x\approx21.909}$