How Do Voltages Distribute in an RC Circuit with Equal Resistors?

AI Thread Summary
In an RC circuit with two equal resistors and a capacitor, the initial voltage across the battery is 4V, with all of it appearing across the first resistor (bulb A) while the second resistor (bulb B) and the capacitor have 0V. When the switch is closed, bulb B lights up initially, but as the capacitor charges, it eventually turns off while bulb A remains lit continuously. After a long time, the voltage across both bulbs equalizes to half the battery voltage (2V each), and both bulbs conduct the same current. The behavior of the circuit shows that the capacitor charges while affecting the current flow through the resistors, demonstrating the principles of voltage distribution in parallel circuits. Understanding these dynamics is crucial for analyzing RC circuits effectively.
rh23
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Homework Statement


In a problem I have a circuit that I have not set up to know what happens as far as voltages across my battery(4v), two equal resistors and a capacitor.


Homework Equations





The Attempt at a Solution


Because i have not seen a circuit like this I am thinking that this circuit is not ideal for a capacitor to collect charge. I am thinking that the current will only go through resistor A and not but b or the capacitor. So Voltage bat= 4v Voltage resistor A = 4v and resistor b and capacitor = 0V
 

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rh23 said:

Homework Statement


In a problem I have a circuit that I have not set up to know what happens as far as voltages across my battery(4v), two equal resistors and a capacitor.


Homework Equations





The Attempt at a Solution


Because i have not seen a circuit like this I am thinking that this circuit is not ideal for a capacitor to collect charge. I am thinking that the current will only go through resistor A and not but b or the capacitor. So Voltage bat= 4v Voltage resistor A = 4v and resistor b and capacitor = 0V

Suppose, just for argument's sake, that resistor A was not there. So there is just the battery, resistor B, and the capacitor. Can you describe how the circuit would behave when the battery is first connected?
 
well the resistor is actually a light bulb so when the circuit is first connected let's say with a switch the light bulb will light up but at time goes on the light bulb will go out. No more current will be flowing and the capacitor will be charged.
 
rh23 said:
well the resistor is actually a light bulb so when the circuit is first connected let's say with a switch the light bulb will light up but at time goes on the light bulb will go out. No more current will be flowing and the capacitor will be charged.

Right. So current initially flows until the capacitor is charged up. When the capacitor is charged up, what is the voltage across the capacitor? How about the resistor?
 
voltage across capacitor is 4v and resistor is 0v
 
rh23 said:
voltage across capacitor is 4v and resistor is 0v

Excellent. That is correct.

Now place resistor A back in the circuit. Note that it is a parallel branch -- it is in parallel with the capacitor branch, which we just looked at, and the battery. Being a branch that is across the voltage source, it will behave independently of the other branch; Nothing that resistor B or the capacitor do will effect the voltage that appears across resistor A.
 
So when are switch is closed bulb b will light but eventually turn off and the capacitor will then be charge and while this goes on bulb A will be lit continuously?
 
rh23 said:
So when are switch is closed bulb b will light but eventually turn off and the capacitor will then be charge and while this goes on bulb A will be lit continuously?

Yes, that's right.
 
when switch is closed and i wanted to rank my voltages immediately would they be Vbattery=Vbulb A=Vbulb B > V capacitor . V capacitor= 0

After switch is closed for a longtime current rankings
I battery = I bulb A > I bulb B . I bulb B = 0 Is this true?

If the switch is located next to the negative terminal of the battery and the switch was closed for a long time is the voltage across bulb A after the switch is opened again be 2v?
 
  • #10
rh23 said:
when switch is closed and i wanted to rank my voltages immediately would they be Vbattery=Vbulb A=Vbulb B > V capacitor . V capacitor= 0
Yes.
After switch is closed for a longtime current rankings
I battery = I bulb A > I bulb B . I bulb B = 0 Is this true?
Yes.
If the switch is located next to the negative terminal of the battery and the switch was closed for a long time is the voltage across bulb A after the switch is opened again be 2v?
Yes, if both bulbs have the same resistance.
 
  • #11
Wow thanks so much for taking the time to help me understand these circuits better gneil. I can't thank you enough, but if it makes you feel better i also help younger students with their work when asked :) its very rewarding.
 
  • #12
rh23 said:
Wow thanks so much for taking the time to help me understand these circuits better gneil. I can't thank you enough, but if it makes you feel better i also help younger students with their work when asked :) its very rewarding.

You're welcome :smile:
 
  • #13
If you don't mind me asking what would happen if bulb B was placed next to the negative terminal and the switch was closed for a long time? would the current through A be equal to the current through B
 
  • #14
rh23 said:
If you don't mind me asking what would happen if bulb B was placed next to the negative terminal and the switch was closed for a long time? would the current through A be equal to the current through B

I'm not sure that I can picture the circuit that you have in mind... what happens to the capacitor in this scenario? Can you draw the circuit?
 
  • #15
in this circuit when the switch is closed for a long time...
the capacitor will charge correct?
Bulb A will continuously be lit correct?
Im not sure what happens to bulb B, will it light then dim itself a little because of the capacitor or will it light as bright as A ( bulb A and B have the same current) ?
 

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  • #16
Sorry bulb A is the resistor parallel with the capacitor
 
  • #17
rh23 said:
in this circuit when the switch is closed for a long time...
the capacitor will charge correct?
Bulb A will continuously be lit correct?
Im not sure what happens to bulb B, will it light then dim itself a little because of the capacitor or will it light as bright as A ( bulb A and B have the same current) ?

After the switch is closed for a long time both bulbs conduct the same current. The capacitor is charged (to half the battery voltage --- the same voltage that appears across bulb A).

When the switch is first closed the capacitor is uncharged so there is 0V across it. Bulb B then gets the full benefit of the battery potential for that initial instant, while bulb A has zero voltage (and thus no current). As the capacitor charges and its voltage rises, bulb A conducts current. Bulb A brightens while bulb B dims, and they "meet in the middle" with both bulbs running at half brightness and half the battery voltage across each.
 
  • #18
Ok, That was my last question, thanks again!
 

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