EBK PHYSICS FOR SCIENTISTS AND ENGINEER
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
1st Edition
ISBN: 9780100546714
Author: Katz
Publisher: YUZU
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Chapter 29, Problem 44PQ

(a)

To determine

The power absorbed by each resistor when switch is open.

(a)

Expert Solution
Check Mark

Answer to Problem 44PQ

The power absorbed by resistor R1 is 0.265W_, R2 is 0.531W_, R3 is 0.796W_, and R4 is 0W_.

Explanation of Solution

When switch is open, battery ε1 does not supply voltage to the circuit. Only battery ε2 will supply power to the resistors R1, R2 and R3.

Write the expression for total current passes through the loop 2 as.

    I=ε2Req                                                                                                          (I)

Here, I is the current through loop 2, ε2 is Emf of the device in loop 2 and Req is the equivalent resistance of the loop 2.

Write the expression for equivalent resistance of the loop 2 as.

    Req=R1+R2+R3                                                                                         (II)

Here, R1, R2 and R3 are the resistance of the three elements.

Write the expression for the power-absorbed in resistor as.

  P=I2R                                                                                                      (III)

Here, P is the power absorbed by each resistor and R is the circuit element.

Substitute P1 for P and R1 for R in equation (III)

    P1=I2R1                                                                                                     (IV)

Here, P1 is power absorbed by resistor R1.

Substitute P2 for P and R2 for R in equation (III)

    P2=I2R2                                                                                                      (V)

Here, P2 is power absorbed by resistor R2.

Substitute P3 for P and R3 for R in equation (III)

    P3=I2R3                                                                                                     (VI)

Here, P3 is power absorbed by resistor R3.

Substitute P4 for P and R4 for R in equation (III)

    P4=I2R4                                                                                                  (VII)

Here, P2 is power absorbed by resistor R2.

Conclusion:

Substitute 15.0 Ω for R1, 30.0 Ω for R2 and 45.0 Ω for R3 in equation (II).

  Req=15.0 Ω+30.0 Ω+45.0 Ω=90.0 Ω

Substitute 90.0 Ω for Req and 12.0 V for ε2 in equation (I).

    I=12.0 V90.0 Ω=0.133 A

Substitute 0.133 A for I and 15.0 Ω for R1 in equation (IV).

    P1=(0.133 A)2×15.0 Ω=0.265 W

Substitute 0.133 A for I and 30.0 Ω for R2 in equation (V).

    P2=(0.133 A)2×30.0 Ω=0.5306 W0.531W

Substitute 0.133 A for I and 45.0 Ω for R3 in equation (VI).

    P3=(0.133 A)2×45.0 Ω=0.7960 W0.796W

Substitute 0 A for I and 60.0 Ω for R4 in equation (VII).

    P4=(0A)2×60.0 Ω=0W

Thus, the power absorbed by resistor R1 is 0.265 W_, R2 is 0.5306 W_, R3 is 0.7960 W_ and R4 is 0W_.

(b)

To determine

The power absorbed by each resistor when switch is closed.

(b)

Expert Solution
Check Mark

Answer to Problem 44PQ

When switch is closed, the power absorbed by resistor R1 is 0.0710 W_, R2 is 0.461 W_, R3 is 0.692 W_ and R4 is 0.183 W_.

Explanation of Solution

When switch is closed, battery ε1 and ε2 start to supply voltage to the circuit, resistor R2 and R3 are in series. So, equivalent circuit can be redrawn as.

EBK PHYSICS FOR SCIENTISTS AND ENGINEER, Chapter 29, Problem 44PQ

Refer to above figure, apply Kirchhoff’s voltage law in the first loop.

Write the expression for current as.

    ε1+R1(I1+I2)+R4I1=0

Simplify the above equation as.

  I1(R1+R4)+I2R1=ε1                                                                                (VII)

Here, I1 is current flowing in loop 1, ε1 is device emf of battery in the loop 1, and I2 is current flowing in loop 2.

Refer to above figure, apply Kirchhoff’s voltage law in the loop 2.

Write the expression for current as.

    ε2+R3I2+R1(I1+I2)+R2I2=0

Simplify the above equation as.

  I2(R1+R2+R3)+I1R1=ε2                                                                      (VIII)

Here, ε2 is device emf of battery in the loop 2.

Write the expression for power absorbed by resistor R4 as.

    P4=I42R4                                                                                                    (IX)

Here, P4 is power absorbed in resistor R4.

Write the expression for power absorbed in resistor R1 as.

    P1'=(I1I2)2R1                                                                                         (X)

Here, P1' is power absorbed by resistor R1 when switch is closed.

Write the expression for power absorbed by resistor R2 as.

    P2'=I22R2                                                                                                     (XI)

Here, P2' is power absorbed by resistor R2 when switch is closed.

Write the expression for power absorbed by resistor R3 as.

    P3'=I32R3                                                                                                    (XII)

Here, P3' is power absorbed by resistor R3 when switch is closed.

Conclusion:

Substitute 15.0 Ω for R1, 60.0 Ω for R4 and 6.00 V for ε1 in equation (VII).

    I1(15.0 Ω+60.0 Ω)+I2×15.0 Ω=6.00 VI1×75.0 Ω+I215.0 Ω=6.00 V

Rearrange the above equation as.

    75I1+15I2=6 V                                                                                     (XIII)

Substitute 15.0 Ω for R1, 30.0 Ω for R2, 45.0 Ω for R3 and 12.0 V in equation (VIII)

    I2(15.0Ω+30.0Ω+45.0Ω)+I1×15.0Ω=12.0VI2×90 Ω+I1×15.0Ω=12.0 V

Rearrange the above equation as.

    15I1+90I2=12                                                                                        (XIV)

Simplify and solve equation (XIII) and equation (XIV) as.

    I4=0.0552 A

The current in the loop 2 is given as.

  I2=I3=0.124 A

Substitute 60.0 Ω for R4 and 0.0552 A for I2 in equation (IX).

    P4=(0.0552A)2×60.0 Ω=0.183W

Substitute 15.0 Ω for R1, 0.0552 A for I1 and 0.1241 A for I2 in equation (X)

    P1'=(0.1241 A0.0552 A)2×15.0 Ω=(0.0688 A)2×15.0 Ω=0.0710 W

Substitute 0.1241 A for I2 and 30.0 Ω for R2 in equation (XI)

    P2'=(0.1241 A)2×30.0 Ω=0.461W

Substitute 0.1241 A for I2 and 45.0 Ω for R3 in equation (XII)

    P3'=(0.1241 A)2×45.0 Ω=0.692 W

Thus, when switch is closed, the power absorbed by resistor R1 is 0.0710 W_, R2 is 0.461 W_, R3 is 0.692 W_ and R4 is 0.183 W_.

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Chapter 29 Solutions

EBK PHYSICS FOR SCIENTISTS AND ENGINEER

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