- #1
fuchini
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Homework Statement
There is a charged particle (charge=q) moving on the x-axis such that x(t)=A\,sin(\omega t). Prove that:
\int <\rho>\,dV=q
Homework Equations
We have the following equations:
<\rho>=\frac{1}{T} \int_0^T \rho\, dt
Where T=\frac{2 \pi}{\omega}
The Attempt at a Solution
So for this particle we have the following charge density \rho=q\,\delta(z)\delta(y)\delta(x-A\,sin(\omega t)) therefore:
<\rho>=\frac{\omega}{2\pi}q\,\delta(z)\delta(y) \int_0^T \delta(x-A\,sin(\omega t))\,dt
However, we know that \delta(f(t))=\sum \frac{\delta(t-t_i)}{|f^\prime (t_i)|} for every root of f(t). So we have \delta(x-A\,sin(\omega t))=\delta(x/A-sin(\omega t))/|A| where f(t)=x/A-sin(\omega t).
Considering the integral is over one period I'll only take one root into account:
\delta(x-A\,sin(\omega t))=\frac{1}{|A|}\frac{\delta(t-sin^{-1}(x/A)/\omega)}{\omega cos(sin^{-1}(x/A))}=\frac{\sqrt{A^2-x^2}}{\omega}\delta(t-sin^{-1}(x/A)/\omega)
Then, the average value is:
<\rho>=\frac{\sqrt{A^2-x^2}}{\omega}\frac{\omega}{2\pi}q\,\delta(z)\delta(y) \int_0^T \delta(t-sin^{-1}(x/A)/\omega)\,dt=\frac{\sqrt{A^2-x^2}}{2\pi}q\,\delta(z)\delta(y)
Finally we have:
<\rho>=\int \frac{\sqrt{A^2-x^2}}{2\pi}q\,\delta(z)\delta(y)\, dV =\frac{q}{2\pi}\int \sqrt{A^2-x^2}\,dx
This is as far as I go, please help me if there is any mistake and how can I get the final result. Thanks a lot.
