Solve By Source Definitions, KCL and KVL

Find the voltage across the current source and the current passing through the voltage source.
Problem 1213
Assume that I_1=3A, R_1=2 \Omega, R_2=3 \Omega, R_3=2 \Omega,I_1=3A, V_1=15 V,

Solution
R_1 is in series with the current source; therefore, the same current passing through it as the current source:

I_{R_1}=I_1=3A
and the voltage across R_1 can be found by Ohm’s law:
V_{R_1}=R_1 \times I_{R_1} =2 \times 3 = 6V
To find the voltage across the current source, KVL can be applied around the left hand side loop:
Problem 1213 -5
The direction does not matter and would not change the result.
-V_{I_1}+V_{R_1}-V_1=0A
V_{I_1}=V_{R_1}-V_1=6-15=-9 V.

R_2 and R_3 are also in series and their equivalent is R_{23}=R_2+R_3=3 \Omega + 2 \Omega=5 \Omega
Problem 1213 - 3

R_{23} is parallel with the voltage source. This means that its voltage is equal to the voltage of the voltage source.
V_{R_{23}}=V_1=15 V
Now, using the Ohm’s law, the current passing through R_{23} can be calculated:
I_{R_{23}}=\frac{V_{R_{23}}}{R_{23}}=\frac{15}{5}=3 A
To find the current of the voltage source, we can apply KCL at one of the nodes:
Problem 1213 - 4

I_{R_{23}}+I_1+I_{V_1}=0

I_{V_1}=-I_{R_{23}}-I_1=-3-3=-6 A
Now, you tell me below what the power of each sources are?

Comments

5 responses to “Solve By Source Definitions, KCL and KVL”

  1. Girisha G.S Avatar

    plz solve exercise problems on Nortons theorem from BE 3 Sem na books

    1. Yaz Avatar

      Have you checked out ?
      And let me know which problem you would like me to solve.

  2. ramasubramanian Avatar
    ramasubramanian

    i will need some kvl&kcl simple problem

  3. selvasubramaniyan Avatar
    selvasubramaniyan

    super

  4. abu Avatar

    This site is really for us student….will like to keep in touch

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