Gauss's Law - field of infinite plane sheet

AI Thread Summary
The discussion focuses on using Gauss's Law to determine the electric field produced by an infinite plane sheet with surface charge density σ0. The derived formula shows that the electric field E is equal to σ/2ϵ0, where the factor of 2 accounts for the electric field contributions from both sides of the sheet. Participants discuss the choice of a cylindrical Gaussian surface and confirm that the electric field is normal to the sheet, resulting in zero flux through the cylinder's sides. The total flux is calculated through the two ends of the cylinder, reinforcing the understanding of the electric field's behavior around the charged sheet. The conversation emphasizes the significance of the geometry in applying Gauss's Law effectively.
ZedCar
Messages
353
Reaction score
1

Homework Statement



Use Gauss's Law to calculate the field of an infinite plane sheet of surface charge density σ0.


Homework Equations





The Attempt at a Solution




The solution is, where A=area:

2EA=(σ/ ϵ0)A

E=σ/2ϵ0


Why is there a '2' in the solution? I know it's something to do with twice the electric field. Is it because there are two sides to the sheet surface?

Thank you.
 
Physics news on Phys.org
The solution is, where A=area:

2EA=(σ/ ϵ0)A

E=σ/2ϵ0

What gaussian surface did you use to get this?
 
ap123 said:
What gaussian surface did you use to get this?

Possibly a cylinder?

I'm not 100% sure, as I just have the solution as shown above, and no other 'working out'.
 
ZedCar said:
Possibly a cylinder?

I'm not 100% sure, as I just have the solution as shown above, and no other 'working out'.

Sounds a good choice.
What will the flux be through the cylinder?
 
ap123 said:
Sounds a good choice.
What will the flux be through the cylinder?

Not through it in one direction.

It's normal to the surface of the sheet.

As the sheet has two surfaces, the E-field is in both the two normal directions to the sheet.
 
ZedCar said:
Not through it in one direction.

It's normal to the surface of the sheet.

As the sheet has two surfaces, the E-field is in both the two normal directions to the sheet.

Since the field is normal to the sheet surface, the flux through the sides of the cylinder is zero - so that only leaves the 2 cylinder ends. What's the total flux through these?
Hint : you've already got the answer :)
 
ap123 said:
Since the field is normal to the sheet surface, the flux through the sides of the cylinder is zero - so that only leaves the 2 cylinder ends. What's the total flux through these?
Hint : you've already got the answer :)

2EA=(σ/ ϵ0)A

Where A, area, is the area of one cylinder end. i.e. ∏r^2
 
Yes, so the 2 comes from the fact that the flux through each cylinder end is EA
 
Thanks very much ap123..!
 

Similar threads

Electric field due to charges between 2 parallel infinite planes
Replies
9
Views
136
I Thought I Understood Gauss' Law (Sheets)
Replies
26
Views
2K
Gauss' Law for a conducting / non-conducting sheet
Replies
5
Views
1K
Electric field is constant around charged infinite plane. Why?
Replies
4
Views
4K
Gauss law two infinite plane question
Replies
1
Views
2K
Field of an infinite plane sheet of charge
Replies
3
Views
3K
Sheet of charge - theory
Replies
1
Views
937
Gauss' law problem -- Should the field due to both the inside and outside charges be taken into account?
Replies
28
Views
1K
No Electric Charges if No Electric Field in Region
Replies
22
Views
2K
Electric field between conducting and non-conducting sheets
Replies
9
Views
4K

Hot Threads

Recent Insights

Back
Top