Solving Series Capacitors: C1 & C2 Charge & Voltage

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A battery with an emf of 60 V is connected to two series capacitors, with the charge on capacitor 2 measured at 540 μC. The discussion highlights the misunderstanding that both capacitors share the same charge, leading to confusion about calculating the voltage across each capacitor. The correct approach involves using the known charge and capacitance of C1 to determine the voltage drop across it, which can then be used to find the unknown capacitance C2. Participants emphasize the importance of applying the formula Q = CV to solve for the voltage and capacitance accurately. The conversation centers around clarifying the relationship between charge, voltage, and capacitance in series circuits.
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1. A battery with an emf of 60 V is connected to the two capacitors shown in the figure . Afterward, the charge on capacitor 2 is 540 uC.

The capacitors are in series, with C1 = 12microFarads and C2 = ?

Since series capacitors have the same charge Q, I used C1 and solved for Q in C = Q/V, obtaining Q = 720uC. I then solved C2 = 720/60 = 12microFarads, which is incorrect.
 
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The charge across each capacitor isn't 60 V because the 60V is divided across the two capacitors. However, you know what Q is across the first capacitor. It's 540 uC, because if you consider the two capacitors as one unit, it would have the same charge as the two individual capacitors.
 
So.. what is C2 then? I got 18 and that was incorrec
 
So.. what is C2 then? I got 18 and that was incorrect
 
Old post

Hey! The Original Post is over 11 months old!
 
I didn't realize that but this is a question I am currently working on
 
jadenjaden said:
So.. what is C2 then? I got 18 and that was incorrect
(What units?)

Show how you got that.
 
The capacitors are in series. If the charge on C2 = 540 μC, how much charge is on C1 ?

What's the voltage drop across C1 ?
 
I am also working on this question, and I don't know where to begin. i know that the charge on both capacitors is equal
 
  • #10
danielcheung1 said:
I am also working on this question, and I don't know where to begin. i know that the charge on both capacitors is equal

If the charges are equal, and you know the value of C1, what does that tell you about the voltage across C1?
 
  • #11
i am not sure,
but is it that Q = CV
and so i can say C1V1 = C2V2
and i think the voltage drop has to be different for the two capacitors..
 
  • #12
danielcheung1 said:
i am not sure,
but is it that Q = CV
and so i can say C1V1 = C2V2
and i think the voltage drop has to be different for the two capacitors..

Yes, but the problem statement gives you the charge on one of the capacitors, right? You've also determined that the charges must be equal for both capacitors. The problem statement also gives you the value of one of the capacitors. Apply your Q = CV to find the voltage on that capacitor.
 

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