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adrian52
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Homework Statement
A cylindrical volume of length L, radius a, is given a uniform magnetization M along its axis (call it the z axis). The question is to first find the bound currents, then use them to find the magnetic field B, as well as "the auxiliary field" H - but only along the axis of the cylinder.
Homework Equations
The bound volume current is \vec J_b = \nabla \times \vec M
The bound surface current is \vec K_b = \vec M \times \hat n
The magnetization is \vec M = M_o \hat z
The auxiliary field is defined as \vec H = \frac{1}{\mu_o}\vec B - \vec M
Possibly using Amperian loops: \oint B \cdot dl = \mu_o I_e (I_e is the enclosed current, both bound and free)
Also possibly using similar loops for H: \oint \vec H \cdot \vec dl = I_f (I_f is the free, enclosed charge...which is zero in this case, as far as I can tell)
The magnetic vector potential is: \vec A = \frac{u_o}{4\pi}\int_V \frac{\vec J_b\vec (r')}{r_s}\ dV' + \frac{u_o}{4\pi}\oint_S \frac{\vec K_b\vec (r')}{r_s}\ da'
And from magnetic vector potential, the magnetic field \vec B = \nabla \times \vec A or the curl of \vec A.
Here r_s is the magnitude of the separation vector. So r_s = r - r', where r' is the distance from the origin to the source charge and r is the distance from the origin to the field. Similarly all primed coordinates represent the distances or vectors to the source charges/currents in the system.
The Attempt at a Solution
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Using boldface as vector notation, since M is uniform, I found Jb to be zero, while Kb was zero at the end faces of the cylinder, but not along the side face, where the right-hand-rule determines that Kb = M \hat \phi (using cylindrical coordinates).
After a horribly long period of confusion trying to apply Amperian loops across infinitesimal distances, I gave up and tried to use the formula for the magnetic vector potential directly. Only the closed surface integral remains since J is 0. In a nutshell, I chose my origin to be the center of the cylinder. I wrote r = z \hat z while the primed, source r' was: r' = a \hat s + z' \hat z.
Then the magnitude, r_s was found to be \sqrt{a^2 + (z-z')^2}
The primed area, da', was written (in cylindrical) to be: ad\phi' dz'
So here's all of it put together:
\vec A = \frac{\mu_o M}{4\pi}\int_0^{2\pi} \int_\frac{-L}{2}^\frac{L}{2} \frac{1}{\sqrt{a^2 + (z-z')^2}}ad\phi'dz' \hat \phi
Anyway in the end I used the fact that \int \frac{1}{\sqrt{a^2 + x^2}}dx = ln(x + \sqrt{a^2 + x^2}) to compute the integral, and it was purely in terms of z, L/2, a, and some other constants.
Then I computed the curl (in cylindrical coordinates), but here was the big problem. In my textbook (Griffiths, electrodynamics), the one of the two non-zero terms that I had to compute was \frac{1}{s}[\frac{\partial}{\partial s}(sA_\phi)] \hat z.
My magnetic vector potential has no "s" term, because I am only considering points along the axis. That's why I have r = z \hat z and not r = s \hat s + z \hat z.
So basically this requires me to multiply by s, take the partial of s, then divide by s. In the end I have a magnetic field with a \frac{1}{s} term! But I want to find the field at s = 0...along the axis. So my magnetic field blows up everywhere along z!
I am really stuck on this one, hopefully someone can respond soon so that I have time to study for my other two midterms, before I try to finish the other four problems :(.
Also note I'm pretty sure you can't just use the amperian loops as before because its a *finite* cylinder so the old symmetrical tricks don't work anymore. Unless you consider them in a really small area, but I have no idea how that would work. i.e. there *is* a radial component now, it doesn't get canceled out by some infinite length. And anyway even if there was a way, I am deeply confused as to why the equation they give me in the book isn't working. Where am I going wrong?
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