Energy Density and Electric Field: Difference between revisions
Snileshwar3 (talk | contribs) No edit summary |
Snileshwar3 (talk | contribs) No edit summary |
||
| Line 10: | Line 10: | ||
<math>F=Q\frac{Q/A}{2\epsilon_0} </math> | <math>F=Q\frac{Q/A}{2\epsilon_0} </math> | ||
Now, suppose that you pull the positive plate of the capacitor slowly away from the negative plate, exerting a force that is just barely larger than the one exerted by the other plate. This work that you do, moving the plate a distance | Now, suppose that you pull the positive plate of the capacitor slowly away from the negative plate, exerting a force that is just barely larger than the one exerted by the other plate. This work that you do, moving the plate a distance Δs, increases the potential energy: | ||
<math>ΔU=W=Q\frac{Q/A}{2\epsilon_0}Δs</math> | |||
For the sake of simplification, working out the math, we get this representation: | |||
<math>ΔU=\frac{1}{2}\epsilon_0{\frac{Q/A}{\epsilon_0}^2}AΔs | |||
Revision as of 18:28, 30 November 2015
claimed by Samir Nileshwar
Main Idea
This section takes an alternative view and treats electric fields as if they have energy stored in them. To learn how this works, consider moving one plate of a capacitor. For a very small gap, the force of one capacitor plate on another capacitor plate is charge Q times the field made by the other plate:
[math]\displaystyle{ E_{one plate}=\frac{Q/A}{2\epsilon_0 } }[/math]
Then the force on one plate is:
[math]\displaystyle{ F=Q\frac{Q/A}{2\epsilon_0} }[/math]
Now, suppose that you pull the positive plate of the capacitor slowly away from the negative plate, exerting a force that is just barely larger than the one exerted by the other plate. This work that you do, moving the plate a distance Δs, increases the potential energy:
[math]\displaystyle{ ΔU=W=Q\frac{Q/A}{2\epsilon_0}Δs }[/math]
For the sake of simplification, working out the math, we get this representation:
<math>ΔU=\frac{1}{2}\epsilon_0{\frac{Q/A}{\epsilon_0}^2}AΔs