Announcement

Collapse
No announcement yet.

Energy In Capacitor

Collapse
X
 
  • Filter
  • Time
  • Show
Clear All
new posts

  • Energy In Capacitor

    The Scenario is this:
    A charged capacitor of let say 12v 40000uf was connected to another uncharged capacitor of the same value capacitance.

    after a while they would balance the energy in both capacitor
    the actual voltage on both capacitor is somehow close to 6.09v (which make sense)..

    the question now is how do you determine the efficiency of the energy transfer:
    considering the calculation of Energy stored in a capacitor
    w=0.5*v^2*C , w= 2.88 Joules

    do you use the formula above to calculate the energy in 2 capacitor which will result in total of 1.48 Joules (0.74 Joules each capacitor) lose like half to entropy e.g. heat. EM wave etc.. approx. 50% efficiency

    or do you use the energy (2.88 Joules) and calculate the voltage by changing the value of capacitance to 80000 uf and come with 8.48 volts and lost x amount of Joules in entropy e.g. heat. EM wave etc.. (1.39 volts worth of charge).. approx 72% efficiency
    v=sqrt ( w / (0.5 * 0.08 F))

    or are these math only to determine the supposed energy a charged capacitor has... and is it more sensible to think of voltage just as pressure, and the pressure (voltage) dropped by half because the space doubled (capacitance)..
    Last edited by ricards; 11-20-2017, 05:09 AM.

  • #2
    Capacitor energy

    Originally posted by ricards View Post
    The Scenario is this:
    A charged capacitor of let say 12v 40000uf was connected to another uncharged capacitor of the same value capacitance.

    after a while they would balance the energy in both capacitor
    the actual voltage on both capacitor is somehow close to 6.09v (which make sense)..

    the question now is how do you determine the efficiency of the energy transfer:
    considering the calculation of Energy stored in a capacitor
    w=0.5*v^2*C , w= 2.88 Joules

    do you use the formula above to calculate the energy in 2 capacitor which will result in total of 1.48 Joules (0.74 Joules each capacitor) lose like half to entropy e.g. heat. EM wave etc.. approx. 50% efficiency

    or do you use the energy (2.88 Joules) and calculate the voltage by changing the value of capacitance to 80000 uf and come with 8.48 volts and lost x amount of Joules in entropy e.g. heat. EM wave etc.. (1.39 volts worth of charge).. approx 72% efficiency
    v=sqrt ( w / (0.5 * 0.08 F))

    or are these math only to determine the supposed energy a charged capacitor has... and is it more sensible to think of voltage just as pressure, and the pressure (voltage) dropped by half because the space doubled (capacitance)..
    Hi ricards,

    after a while they would balance the energy in both capacitor
    You got that right. So each cap will have 1.44J. And voltage is 8.48V. That assumes ideal capacitors and circuit, meaning no resistance internal to the caps or in the connections, and no switching loss like an arc. Those are the only mechanisms for loss. So any difference in measured energy (using a voltmeter and the formula) and the ideal calculation of energy is lost as heat through the resistance (I^2*R).

    Regards,

    bi

    Comment


    • #3
      Hi Bistander,

      thanks for the quick reply, I was actually trying to calculate the overall efficiency of the energy transfer including losses from entropy and gain from magnetic field collapse.. It got up from 72% eff. to 88%..

      I'd like to try now and see if increasing the amount of copper coils would give a further gain from magnetic field collapse..

      Comment

      Working...
      X