Force of parallel plate capacitor

Join the discussion
Ask a follow-up here, or get your own question answered by working scientists, mathematicians and engineers — people, not an autocomplete.
Real named experts · corrections over time · the nuance an AI answer skips
5 replies · 2K views
rgold
Messages
30
Reaction score
0

Homework Statement


A parallel-plate capacitor has a plate area of .3m^2 and a plate separation of .1mm. If the charge on ech plate has a magnitude of 5*10^-6C then the force exerted by one plate on the other has what magnitude

Homework Equations


Q=E Ԑ A
F=qE

The Attempt at a Solution


so to solve for E i used the first equation: 5*10^-6C=E*(10^-11)(.2) and got E=1.67*10^6 V/m
First i want to make sure that i am moving in the right direction and also do i use 5*10^-6C as my q in the second equation?
 
on Phys.org
U= (Q^2)/(2c) = (Q^2)/(2ԐA) d and F=(dU)/(dd) = (-Q^2)/ (2ԐA)?
so F= (5*10^-6C)^2/(2 * 10^-11 *.3)?

is the answer then 4N?
 
Your approximation for the value of ##\epsilon_o## is very crude. A good value would be ##\epsilon_o = 8.854 \times 10^{-12}~ F/m##, but even ##9 \times 10^{-12}~F/m## would be better.

The appropriate approach to this problem is to find the electric field due to a single charged plate and then determine the force that it exerts on the charge of the other plate. Note that between the plates of a parallel plate capacitor the net field is due to the contribution of the fields from both plates; each plate contributes half the total field.
rgold said:
so to solve for E i used the first equation: 5*10^-6C=E*(10^-11)(.2) and got E=1.67*10^6 V/m
What does the "(.2)" value represent?
 
gneill said:
Your approximation for the value of ##\epsilon_o## is very crude. A good value would be ##\epsilon_o = 8.854 \times 10^{-12}~ F/m##, but even ##9 \times 10^{-12}~F/m## would be better.

The appropriate approach to this problem is to find the electric field due to a single charged plate and then determine the force that it exerts on the charge of the other plate. Note that between the plates of a parallel plate capacitor the net field is due to the contribution of the fields from both plates; each plate contributes half the total field.

What does the "(.2)" value represent?

that was a typo i meant to write .3 m^2. ok i used the 8.85*10^-12 and got 4.71N is this more accurate
 
rgold said:
that was a typo i meant to write .3 m^2. ok i used the 8.85*10^-12 and got 4.71N is this more accurate
That would be a good answer :smile:
 
gneill said:
That would be a good answer :smile:
thank you very much!