For R1=115, R2=160, R3=248 and 13=5 A in the shown circuit, use KCL and KVL to find the following: R2 13 R1 {R3 Vo i1 (in Ampere) = O a. 5 O b. 3.9005736137667 O c. -1.0994263862333 O d. 1.9502868068834 12 (in Ampere) = O a. -1.0994263862333 O b. 1.0994263862333 O c. 6.0994263862333 O d. 3.0497131931166 Vo (in volts) = Power of current source (in watt) =

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Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
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For R1=115, R2=160, R3=248 and 13=5 A in the shown circuit, use KCL and KVL to find the following:
R2
13 1)vo
R1
R3
i1 (in Ampere) =
O a. 5
O b. 3.9005736137667
O C. -1.0994263862333
O d. 1.9502868068834
i2 (in Ampere) =
O a. -1.0994263862333
O b. 1.0994263862333
c. 6.0994263862333
O d. 3.0497131931166
Vo (in volts) =
Power of current source (in watt) =
Transcribed Image Text:For R1=115, R2=160, R3=248 and 13=5 A in the shown circuit, use KCL and KVL to find the following: R2 13 1)vo R1 R3 i1 (in Ampere) = O a. 5 O b. 3.9005736137667 O C. -1.0994263862333 O d. 1.9502868068834 i2 (in Ampere) = O a. -1.0994263862333 O b. 1.0994263862333 c. 6.0994263862333 O d. 3.0497131931166 Vo (in volts) = Power of current source (in watt) =
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