New Reply

Finding the electric field of a uniformly charged cylinder using Gauss' law

 
Share Thread Thread Tools
Jul27-12, 10:11 PM   #1
 

Finding the electric field of a uniformly charged cylinder using Gauss' law

1. The problem statement, all variables and given/known data

A very long cylinder has charge density L/m and radius a. Find the electric field at a distance r, with r > a.

3. The attempt at a solution

I construct a gaussian cylinder around it with radius r, and then from Gauss' law the field at any point on it's side surface is E= Q/Ae, where A is the area of the side of the cylinder, e = vacuum permittivity. So, Q = L*length, A = 2*pi*r. This gets me the right answer in the text book (L/(2*pi*e)), but there's a sticking point in my approach - this assumes all of the flux is concentrated through the sides, whereas there should also be some through the top and bottom of the cylinder, right? The best explanation I can think of is that because the cylinder is "very long", SA of the sides >>> SA of the top and bottom and so flux through these is negligible. This reasoning is a bit too heuristic for me though and it would be great if someone can give a better/more quantitative explanation.
PhysOrg.com
PhysOrg		 science news on PhysOrg.com

>> Ants and carnivorous plants conspire for mutualistic feeding
>> Forecast for Titan: Wild weather could be ahead
>> Researchers stitch defects into the world's thinnest semiconductor
Jul27-12, 10:31 PM   #2
 
Quote by Miscing View Post
1. The problem statement, all variables and given/known data

A very long cylinder has charge density L/m and radius a. Find the electric field at a distance r, with r > a.

3. The attempt at a solution

I construct a gaussian cylinder around it with radius r, and then from Gauss' law the field at any point on it's side surface is E= Q/Ae, where A is the area of the side of the cylinder, e = vacuum permittivity. So, Q = L*length, A = 2*pi*r. This gets me the right answer in the text book (L/(2*pi*e)), but there's a sticking point in my approach - this assumes all of the flux is concentrated through the sides, whereas there should also be some through the top and bottom of the cylinder, right? The best explanation I can think of is that because the cylinder is "very long", SA of the sides >>> SA of the top and bottom and so flux through these is negligible. This reasoning is a bit too heuristic for me though and it would be great if someone can give a better/more quantitative explanation.
I think thats why they said a very long cylinder. Have you seen the Gauss law problems with the infinitely long wire of charge, and the infinitely large plates of charge? thats so you dont have to deal with the ends and edges as that would be very difficult using gauss.

If you have used the integrative technique to find the strength of an E-field at some point outside a line of charge of known length, L, then you know it can be a pain. And then how about a round plate of charge with known radius R, thats a bit of a pain and its only a bit of a pain if you want to know the efield strength at some point that lies right along the axis of the center of the plate. It would be an enormous pain if the point was not in line with the axis of the plate. Now combine that with the fact that you would have more charge contributing to the E.field of some cylinder of known L as well... a HUGE math pain. Better to just measure it.

Its Gauss, its supposed to be a short cut for objects with some sort of spherical symmetry usually.
Jul29-12, 01:25 AM   #3
 
Quote by pgardn View Post
I think thats why they said a very long cylinder. Have you seen the Gauss law problems with the infinitely long wire of charge, and the infinitely large plates of charge? thats so you dont have to deal with the ends and edges as that would be very difficult using gauss.

If you have used the integrative technique to find the strength of an E-field at some point outside a line of charge of known length, L, then you know it can be a pain. And then how about a round plate of charge with known radius R, thats a bit of a pain and its only a bit of a pain if you want to know the efield strength at some point that lies right along the axis of the center of the plate. It would be an enormous pain if the point was not in line with the axis of the plate. Now combine that with the fact that you would have more charge contributing to the E.field of some cylinder of known L as well... a HUGE math pain. Better to just measure it.

Its Gauss, its supposed to be a short cut for objects with some sort of spherical symmetry usually.
Awesome, thanks. I did try to set up the integral first and it quickly turned into a cluster**** haha
New Reply
Thread Tools


Similar Threads for: Finding the electric field of a uniformly charged cylinder using Gauss' law
Thread Forum Replies
Electric Field of a uniformly charged rod Introductory Physics Homework 7
Electric Field of a Uniformly Charged Ring Introductory Physics Homework 3
Electric Field due to a charged hallow cylinder/solid cylinder on a point Introductory Physics Homework 7
Finding Electric Field on the Bisector of a Non-Uniformly Charged Rod Introductory Physics Homework 20
electric field due to a uniformly charged rod Introductory Physics Homework 1