Adding a wrench to a series circuit ?

AI Thread Summary
Adding a wrench to a series circuit effectively creates a parallel circuit with the wrench acting in parallel to one of the resistors. The initial voltage of the circuit is calculated as 30 V, and while the voltage remains the same, the currents through the resistors change. The current through the 4-ohm resistor is calculated to be 6 A, while the current through the wrench is determined to be 5 A due to Kirchhoff's current law. The discussion emphasizes the importance of understanding how adding components affects the overall circuit behavior. This clarification helps in grasping the relationship between voltage, current, and resistance in parallel circuits.
mirandab17
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If someone could also clarify how to go about this one.

Does the wrench added make it a parallel circuit?
I found the voltage of the initial circuit by simply doing V = IR = (3)(10) = 30 V.

The current flowing through the 4 ohm resistor must be the same as before... so the current for that is still 3.0 A?

Help please :s
 

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mirandab17 said:
If someone could also clarify how to go about this one.

Does the wrench added make it a parallel circuit?
I found the voltage of the initial circuit by simply doing V = IR = (3)(10) = 30 V.

The current flowing through the 4 ohm resistor must be the same as before... so the current for that is still 3.0 A?

Help please :s
attachment.php?attachmentid=44481&d=1330405295.png


Well, in a sense the wrench makes it a parallel circuit, with the wrench being in parallel with R2. But the resistance of the wrench is small. (I assume that it's much smaller than the resistance of either resistor.) The effective resistance of two resistors in parallel is less than the resistance of either one.
 
mirandab17 said:
If someone could also clarify how to go about this one.

Does the wrench added make it a parallel circuit?
the wrench is parallel with R2.
mirandab17 said:
I found the voltage of the initial circuit by simply doing V = IR = (3)(10) = 30 V.

Correct, for the emf of the battery.

mirandab17 said:
The current flowing through the 4 ohm resistor must be the same as before... so the current for that is still 3.0 A?

NO! It is the emf that is the same as before, 30 V. The currents will change. What is the voltage across R2 if 1 A current flows through it? What is then the voltage across R1? And what current flows through it? And then apply Kirchhoff's current Law.
 
I don't know how to go about finding the current through the wrench though... especially if it has negligible resistance.
 
oooh okay let me do that then...
 
Voltage across R2
V = IR = (1)(6) = 6 V

Is the voltage across R1 the EMF minus the voltage parallel?
So voltage across R1 = 30 - 6 = 24 V?
Current through R1 would be I=V/R = 24/4 = 6 A.

Oh! And then if there's only 1 A through R2 then there must be 5 A through the wrench due to Kirchoff's current law...
 
mirandab17 said:
Voltage across R2
V = IR = (1)(6) = 6 V

Is the voltage across R1 the EMF minus the voltage parallel?
So voltage across R1 = 30 - 6 = 24 V?
Current through R1 would be I=V/R = 24/4 = 6 A.

Oh! And then if there's only 1 A through R2 then there must be 5 A through the wrench due to Kirchoff's current law...

Excellent!:smile:

ehild
 
Thanks! Finally get it, awesome.
 
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