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A series circuit has a voltage supply of 12 V and a resistor of 2.4 kΩ. How much power is dissipated by the resistor? A. 0.005 W B. 0.06 W C. 2.4 kW D. 345.6 kW
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A series circuit has a voltage supply of 12 V and a resistor of 2.4 kΩ. How much power is dissipated by the resistor?

A. 0.005 W
B. 0.06 W
C. 2.4 kW
D. 345.6 kW

User Tadmas
by
6.3k points

1 Answer

0 votes

Answer:

(B) 0.06W

Step-by-step explanation:

power absorbed by the resistor is given by
(V^2)/(R)=I^2R

Where V = voltage

R= resistance

I = current through the circuit

we have given V =12 Volt and resistance =2.4 K
\Omega

current
I=(V)/(R)=(12)/(2.4* 1000)=5* 10^(-3)A=5mA

power using voltage and resistance equation


p=(12^2)/(2.4* 1000)=60mW =0.06W

using current equation
P=I^2R=5^2* 12=60mW= 0.06W

User SonOfPirate
by
7.0k points
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