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For a certain problem, I am trying to solve the ODE $\ddot{z}(t) - \omega^2 z(t) = f_0 \Big(e^{-i(\omega+\delta)t}+e^{-i(\omega-\delta)t}\Big)$ where $\omega$ is a real and $\delta$ is close to zero. I am pretty clueless what to do here, any hint would be appreciated.

2 Answers 2

4

This is just to tell you that there is a general formula to solve the EDO

y''+ay'+by=f(t),\quad y(t_0)=y_0,\ y'(t_0)=y_1.

I'll try to derive the formula as naturally as possible (without claiming to prove anything).

First put the above EDO in the form

y''-(\alpha+\beta)\,y'+\alpha\,\beta\,y=f(t),

where $\alpha$ and $\beta$ are complex numbers. The remainder of the euclidean division of a polynomial $P(X)$ by $(X-\alpha)(X-\beta)$ is

\begin{cases}\displaystyle P(\alpha)\ \frac{X-\beta}{\alpha-\beta} +P(\beta)\ \frac{X-\alpha}{\beta-\alpha}&\text{if }\alpha\not=\beta\\ \\ P(\alpha)+P'(\alpha)\ (X-\alpha)&\text{if }\alpha=\beta. \end{cases}

If you replace formally $P(X)$ by $e^{tX}$ in the above expressions, you get

$\begin{cases}\displaystyle e^{\alpha t}\ \frac{X-\beta}{\alpha-\beta} +e^{\beta t}\ \frac{X-\alpha}{\beta-\alpha}&\text{if }\alpha\not=\beta\\ \\ e^{\alpha t}+t\ e^{\alpha t}\ (X-\alpha)&\text{if }\alpha=\beta. \end{cases}$

If you write this polynomial in the form $g_0(t)+g_1(t)\ X$, you get

$g_0(t)=\begin{cases}\displaystyle\frac{\alpha\,e^{\beta t} -\beta\,e^{\alpha t}}{\alpha-\beta}&\text{if }\alpha\not=\beta\\ \\ (1-\alpha\,t)\,e^{\alpha t}&\text{if }\alpha=\beta, \end{cases}$

$g_1(t)= \begin{cases} \displaystyle\frac{e^{\alpha t}-e^{\beta t}}{\alpha-\beta}&\text{if }\alpha\not=\beta\\ \\ t\,e^{\alpha t}&\text{if }\alpha=\beta. \end{cases}$

Let $\alpha,\beta,y_0,y_1$ be complex numbers, let $t_0$ be a point in some open interval $J$, and let $f:J\to\mathbb C$ be continuous. Then the solution to

y''-(\alpha+\beta)\,y'+\alpha\,\beta\,y=f(t),\quad y(t_0)=y_0,\ y'(t_0)=y_1

is

$y(t)=y_0\ g_0(t-t_0)+y_1\ g_1(t-t_0)+\int_{t_0}^tg_1(t-x)\,f(x)\ dx.$

EDIT. Here is the (unrequested) solution to the general order $n$ linear ODE with constant coefficients.

Let $P$ be a degree $n>0$ monic complex polynomial in the indeterminate $X$, let $f$ be a continuous function on the real line, and let $y_0,\dots y_{n-1}$ be complex numbers. The solution to the ODE

$P(d/d t)\ y=f(t),\quad y^{(k)}(0)=y_k\quad(0\le k < n)$

is

$y(t)=\sum_{k=0}^{n-1}\ y_k\ g_k(t)+\int_0^t g_{n-1}(t-x)\ f(x)\ d x,$ where the functions $g_k(t)$ can be computed as follows.

Put $P=\prod_{j=1}^r(X-\lambda_j)^{m(j)}$ and $Q:=\sum_{k=0}^ng_k(t)X^k$. Then $Q$ is obtained by solving, thanks to Taylor's Formula, the congruences

$Q\equiv E_j\quad\bmod\quad(X-\lambda_j)^{m(j)},$

for $j=1,\dots,r$, where we have set

$E_j:=\exp(\lambda_jt)\ \sum_{r=0}^{m(j)-1}\ \frac{t^r}{r!}\ (X-\lambda_j)^r.$

More precisely, we have

$Q=\sum_{j=1}^r\ T_j\left(E_j\ \frac{(X-\lambda_j)^{m(j)}}{P}\right)\frac{P}{(X-\lambda_j)^{m(j)}}\quad,$

where $T_j$ means "degree $ Taylor polynomial at $X=\lambda_j$".

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You can do by the method of variation of parameters.

Equivalently you can also directly do by the Green's function. The Green's function of the equation $\frac{d^2z}{dt^2} - \omega^2 z = f_0 \left( e^{-i \left( \omega + \delta \right) } + e^{-i \left( \omega - \delta \right) }\right)$ is $G(t) = \frac{e^{\omega |t|}}{2 \omega}$