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Question

Compare the power used in the 2Ω resistor in each of the following circuits:

(i) A 6V battery in series with 1Ω and 2Ω resistors.

(ii) A 4V battery in parallel with 12Ω and 2Ω resistors.


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Solution

Step 1: Given data

(i) Potential difference V1=6V, Resistance values R1=1Ω and R2=2Ω resistors

(ii) Potential difference V2=4V, Resistance values R3=12Ω and R4=2Ω resistors.

Step 2: Formula used

According to Ohm's law,

V=IR

P=I2R

Where,

V is the voltage.

I is the current.

R is the resistance.

P is power

Step 3: Calculating power when a 6V battery in series with 1Ω and 2Ω resistors

Potential differences (V1)=6V

1Ω and 2Ω resistors are connected in series.

The equivalent resistance of the circuit,

R=R1+R2R=1+2R=3Ω

According to Ohm’s law,

V=IR

V is the voltage.

I is the current.

R is the resistance.

I=V1RI=63I=2A

  1. Because there is no current division in series circuits, this current will pass through each component. As a result, the 2Ω resistor has a current of 2A flowing through it.
  2. Whenever the current across the circuit elements remains constant, the below formula is implemented.

By the given expression, power is

P1=I2RP1=22×2P1=8W

Hence, the power used in the 2Ω resistor a 6V battery in series with 1Ω and 2Ω resistors is 8W.

Step 4: Calculating power when a 4V battery in parallel with 12Ω and 2Ω resistors

Potential differences (V2)=4V

12Ω and 2Ω resistors are connected in parallel.

  1. In a parallel circuit, the voltage across each component remains constant. As a result, the voltage across a 2Ω resistor will be 4V.
  2. Whenever the voltage across the circuit components is constant, the below formula is utilized.

Power consumed by 2Ω the resistor is given by

P2=V22RP2=422P2=8W

Therefore, the power used by 2Ω resistor in both the circuits is 8W.


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