Charge on capacitor plates when separated

In summary: As the field decreases the field lines start to bunch up and the inductance increases. This is analogous to what happens with a capacitor when you pull the plates apart.
  • #1
curiouschris
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As I understand it if you charge two plates as in a capacitor and then disconnect the voltage source and pull the plates apart to an arbitrary distance the voltage at the terminal increases.

Is that correct?
Will that voltage continue to increase?
Is there a point that the voltage will stop increasing?
If so why?
Will the plates discharge into the surrounding environment if the plates are physically separated by a large distance?

Curious.
 
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  • #2
curiouschris said:
As I understand it if you charge two plates as in a capacitor and then disconnect the voltage source and pull the plates apart to an arbitrary distance the voltage at the terminal increases.

Is that correct?
Will that voltage continue to increase?
Is there a point that the voltage will stop increasing?
If so why?
Will the plates discharge into the surrounding environment if the plates are physically separated by a large distance?

Curious.

If you're able to pull the plates apart without upsetting the charge stored then yes, the voltage will increase.

Q = CV where Q is charge, C is capacitance and V is voltage. If you pull the plates away you reduce C which increases V since Q remains constant.

There is a point at which the voltage will stop increasing because at some point the dielectric between the plates will cease to function. As the capacitance gets smaller and smaller other capacitances in the environment will play increasingly important roles in the system and eventually will dominate and share charge with your idealized capacitor.

The capacitor will only discharge to the environment if other conductors are present. Since in the real world this is always the case I will say as a practical answer yes, the plates will discharge.

Since you're curious, there is a fascinating type of device call a parametric amplifier used in very high speed RF systems. Basically it works by charging up a capacitor (usually a part of a specific type of diode) and then changing the capacitor to increase or decrease the voltage. Voila! An amplifier.
 
  • #3
curiouschris said:
As I understand it if you charge two plates as in a capacitor and then disconnect the voltage source and pull the plates apart to an arbitrary distance the voltage at the terminal increases.

Is that correct?

The voltage increases between the capacitor plates with distance d till the distance is still much less then the size of the plates. Only in that case is approximately true that the electric field E is homogeneous and thus V=Ed.
See picture. One plate is grounded, the other having positive charge, is moved away from it. The edge effect appears and the field lines scatter out more and more from between the plates as the distance increases. At very high distance the plate behaves more and more as a point charge.

ehild
 

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  • #4
ehild said:
The voltage increases between the capacitor plates with distance d till the distance is still much less then the size of the plates. Only in that case is approximately true that the electric field E is homogeneous and thus V=Ed.
See picture. One plate is grounded, the other having positive charge, is moved away from it. The edge effect appears and the field lines scatter out more and more from between the plates as the distance increases. At very high distance the plate behaves more and more as a point charge.

ehild

This is quite true but it doesn't give a clean break where we can declare "The Capacitor is no longer operating". In my experience you'll get parasitic capacitors dominating long before you reach a situation where the plates behave as point charges.
 
  • #5
Even a single charged piece of metal operates as a capacitor, as it has some voltage with respect to the ground, or infinity, and C=Q/U. Only the capacitance is no more C=εA/d when d is comparable to the size of the plates.

ehild
 
  • #6
Thanks all for your input. I am much clearer on it. That's an interesting 'proof' analogdesign using a cap as an amplifier. makes total sense though when you think about it.

My wondering was in relation to whether you could charge one plate up on a capacitor and then use it as a sort of battery. but the fact the voltage rises in relation to the charge and capacitance it would quickly become lethal even with a moderate charge.

Its very analogous with a collapsing field on an open cct inductor.
 

Related to Charge on capacitor plates when separated

1. What is a capacitor and how does it work?

A capacitor is an electronic component that stores electrical energy in the form of an electric charge. It consists of two conductive plates separated by an insulating material, known as a dielectric. When a voltage is applied to the plates, the electric charge accumulates on the plates, creating an electric field between them.

2. How is the charge distributed on the capacitor plates when separated?

The charge on the capacitor plates is distributed uniformly, with equal and opposite charges on each plate. This is due to the electric field created between the plates, which causes the charges to attract and accumulate on the plates.

3. Does the distance between the plates affect the amount of charge on the capacitor?

Yes, the amount of charge on the capacitor plates is directly proportional to the distance between the plates. The closer the plates are, the stronger the electric field between them, resulting in a higher amount of charge on the plates.

4. How does the charge on the capacitor plates affect the capacitance?

The amount of charge on the capacitor plates is directly proportional to the capacitance. This means that as the charge increases, the capacitance also increases, and vice versa. This relationship is described by the equation C = Q/V, where C is the capacitance, Q is the charge, and V is the voltage.

5. What happens to the charge on the capacitor plates when they are connected in a circuit?

When the capacitor plates are connected in a circuit, the charge on the plates is able to flow through the circuit, creating an electric current. As the capacitor discharges, the amount of charge on the plates decreases until it reaches equilibrium with the rest of the circuit. This process can be repeated by charging the capacitor again.

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