Discharging a high voltage capacitor using a low voltage source?

AI Thread Summary
When discharging a capacitor from 2V to 1V using a 1V DC voltage source, the energy gained by the voltage source can be calculated as Vb*C*(Vc - Vb), while the reduction in stored energy in the capacitor is 1/2*C*(Vc^2 - Vb^2). The total energy loss during this process is 1/2*C*(Vc - Vb)^2, which remains constant regardless of the resistor value used in the circuit. The discussion highlights that while a voltage source can gain energy, this is contingent on its ideal characteristics, particularly when considering non-rechargeable batteries. Utilizing an inductor can minimize energy loss in such discharging scenarios.
seahs
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Suppose a capacitor is initially charged up to 2V, and then a 1V DC voltage source is used to discharge the capacitor to 1V, what is the energy consumption from the voltage source and what is the total energy loss?

Assume the capacitor is connected to the voltage source using a resistor and the capacitor is 1F.
 
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Homework ?
 
Carl Pugh said:
Homework ?

nope, just wondering what happens when the current flows into the voltage source
 
If Vb is the battery (voltage source) voltage and Vc is the initial capacitor voltage then :

The energy gained by the voltage source is Vb*Q = Vb C ( Vc - Vb )

The reduction in stored energy in the capacitor is 1/2 * C ( Vc^2 - Vb^2 )

The energy lost is the difference of the above, which equals 1/2 * C (Vc - Vb)^2.

Note that this energy loss is independent of the value of the resistor used to connect the two.
 
uart said:
If Vb is the battery (voltage source) voltage and Vc is the initial capacitor voltage then :

The energy gained by the voltage source is Vb*Q = Vb C ( Vc - Vb )

The reduction in stored energy in the capacitor is 1/2 * C ( Vc^2 - Vb^2 )

The energy lost is the difference of the above, which equals 1/2 * C (Vc - Vb)^2.

Note that this energy loss is independent of the value of the resistor used to connect the two.


Can the voltage source gain energy? what if the voltage source is like a non-rechargeable battery?
 
A battery is not an ideal voltage source, but under some circumstances is a good approximation. The above analysis is based on an ideal voltage source. It is applicable to the case of a battery only to the extent that the battery can be modeled as an ideal voltage source.
 
seahs said:
Can the voltage source gain energy? what if the voltage source is like a non-rechargeable battery?

Yes - the 'voltage source' receives charge from the Capacitor. But, as stated above, half the energy is lost in a 'simple' connecting circuit. However, using a suitable inductor can ensure (virtually) no energy loss.
 

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