Calculate the Electric Potential

discoverer02 · Nov 4, 2003

What am I doing wrong here?

Here's the problem:
For the arrangement descripbed in the previous problem (see attachment), calculate the electric potential at point B that lies on the perpendicular bisector of the rod a distance b above the x axis.

[lamb] = [alpha] x where [alpha] is a constant.

The correct answer is
V = -(k[alpha]L/2)ln(([squ] [(L^2/4) + b^2)] - L/2)/[squ] [(L^2/4) + b^2)] - L/2))

I'm not getting the same answer.

So far I've got the following: [the] = [<]'a' on the diagram.

V = kq/r
x' = btan[the]
dx' = bsec^2[the]d[the]
x = L/2 + x'
r = bsec[the]

dq = [lamb]d(L/2 + x') = [lamb]dx'
dq = [alpha](L/2 + x')dx' = [alpha](L/2 + btan[the])bsec^2[the]d[the]

so dV = k[alpha](L/2 + btan[the])bsec^2[the]d[the]/bsec[the]

Taking the integral of both sides from -[the] to +[the] doesn't yield the correct result.

I'd appreciate it if someone could point out where I went wrong. I have a feeling the problem's in [lamb] = dq/dL = dq(L/2 + x').

Thanks.

discoverer02 · Nov 4, 2003

I forgot the attachment. Here it is.

arcnets · Nov 4, 2003

How is that rod charged?

You say
dq = λ dx' with
λ = α x.

This would mean that the rod is NOT uniformly charged. Are you sure this is what the problem says?

Normally, problems like this have a uniformly charged rod, meaning
sth. like dq = λ dx', where λ is a constant.

discoverer02 · Nov 4, 2003

The rod is not uniformly charged. [lamb] varies with x.

gnome · Nov 5, 2003

Small typo in the answer. Should be:

-(kαL/2)ln{( sqrt[(L²/4) + b²)] + L/2)/ (sqrt[(L²/4) + b²] - L/2)}
(the answer you posted equals 0)

Don't set it up in terms of the angle.
You want V = -k∫dq/r
dq = Λdx and Λ = αx
therefore:
dq = αxdx
and
r = sqrt(b² + (x - L/2)²)

so your integral is

V = -kα∫ (xdx/(sqrt(b² + (x - L/2)²)) from x=0 to x=L

It actually does work out. Happy integrating.

discoverer02 · Nov 5, 2003

Thanks again gnome.

discoverer02 · Nov 5, 2003

That integral is a royal pain!

I'm curious. What was wrong with the integral I was originally working with other than the fact that it might be easier integrating with respect to 'x' rather than the angle?

gnome · Nov 5, 2003

Actually, nothing. Shoulda done it your way.

dV = kα(L/2 + btanθ)bsec^2θdθ/bsecθ
dV = kα(L/2 + btanθ)secθdθ
V = kαL/2 ∫secθdθ + kαb ∫tanθsecθdθ
V = kαL/2 {ln|secθ + tanθ|}{from -θ to θ} + kαb{secθ}{from -θ to θ}
The way you have defined theta, up at the top there, sec(-θ) = sec(θ) = (sqrt[L² + 4b²])/(2b) so the second term of the integral drops out completely.

tanθ = L/(2b)
tan(-θ) = -L/(2b)

so the integral, evaluated from -θ to θ, becomes:
(kαL/2)(ln{(sqrt[L² + 4b²])/(2b) + L/(2b)} - ln{(sqrt[L² + 4b²])/(2b) - L/(2b)})

Play around with that a little & you get exactly the same answer.

discoverer02 · Nov 5, 2003

Thanks.

It's a relief to know I set the integral up correctly. A stupid mistake on my part evaluating the integral turned into something it's not, so I thought I was going about it the wrong way.

Calculate the Electric Potential

Attachments

1. What is electric potential?

2. How is electric potential calculated?

3. What are the units of electric potential?

4. How is electric potential different from electric potential energy?

5. Can electric potential be negative?

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