Solving Circuit Problems: R, E, and Current

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The discussion focuses on solving circuit problems involving current, resistance, and electromotive force (emf). The user calculates the emf (E) to be 42 volts and determines that the current through resistor R is 2 amperes. They also find the resistance R to be 26 ohms, although there is confusion regarding the signs in their calculations. A participant points out the importance of sign conventions when applying Kirchhoff's laws and clarifies that breaking the circuit at point x changes the analysis, as the emf no longer factors into the calculations. The conversation emphasizes the need for careful application of circuit analysis principles.
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Homework Statement


In the circuit shown in the figure, find (a) the current in resistor R; (b) the resistance R; (c) the unknown emf E. (d) If the circuit is broken at point x, what is the current in the 28v battery?

Homework Equations


KVL and KCL

The Attempt at a Solution


I don't know if these are correct :S
KVL:
3(6) + 6(4) - E = 0
E = 42v
So my E will be 42 volts?

And in question (a) since 6A will pass in node a and the current in I2 is 4A, then logically, the remaining 2A will flow through R. So the current in R will be 2 Amperes.

So now I can solve for the Resistance in R (question B)
4(6) - 48 - 28 + 2(R) = 0

24 - 48 - 28 = -2(R)

R = 26 ohms

Are my solutions correct? In question D, the current will be 2A if the circuit is broken at point x. Correct me if I'm wrong. Thanks in advance!
 

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daimlerpogi said:
3(6) + 6(4) - E = 0
E = 42v
So my E will be 42 volts?

And in question (a) since 6A will pass in node a and the current in I2 is 4A, then logically, the remaining 2A will flow through R. So the current in R will be 2 Amperes.
Correct so far.

So now I can solve for the Resistance in R (question B)
4(6) - 48 - 28 + 2(R) = 0

24 - 48 - 28 = -2(R)

R = 26 ohms
Where did -48 come from? Also check your sign convention for the 28V voltage source. If you're going in a clockwise loop, and you enter the 28V voltage source through the +ve terminal, then you add, not subtract the potential drop.

Are my solutions correct? In question D, the current will be 2A if the circuit is broken at point x. Correct me if I'm wrong. Thanks in advance!
Why would it be 2A? Remember that once x is cut, E doesn't factor into the calculations at all. You would then have a single loop consisting of currents through top and bottom wires.
 
Okay I already get it now. Thanks Defennder! :approve:
 

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