College Physics
College Physics
11th Edition
ISBN: 9781305952300
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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Chapter 21, Problem 32P

(a)

To determine

The impedance of the circuit.

(a)

Expert Solution
Check Mark

Answer to Problem 32P

The impedance of the circuit is 66.8Ω .

Explanation of Solution

Given info: The AC voltage has a form Δv=(90.0V)sin(350t) . The resistance is 50.0Ω . The capacitance is 25.0μF . The inductance is 0.200H .

The expression of AC voltage at any instant is given by,

v=ΔVmsin(ωt) (1)

  • ΔVm is the maximum voltage supplied by the AC generator
  • ω is the angular frequency
  • t is the time

The given expression of AC voltage is,

Δv=(90.0V)sin(350t) (2)

Comparing (1) and (2), the maximum voltage supplied by the AC source is 90.0V . The angular frequency is 350rads-1 .

Formula to calculate the inductive reactance is,

XL=ωL

  • ω is the angular frequency of the ac source
  • L is the inductance of the inductor

Formula to calculate the capacitive reactance is,

XC=1ωC

  • C is the capacitance of the capacitor
  • ω is the angular frequency of the ac source

The formula to calculate the impedance of the circuit where the components are in series is given by,

Z=R2+(XLXC)2

  • R is the resistance of the resistor

Substituting the expressions for the capacitive and inductive reactance, the impedance of the circuit will be,

Z=R2+(ωL1ωC)2

Substitute 50.0Ω for R , 25.0μF for C , 2.50H for L , 350rads-1 for ω to determine the impedance of the circuit,

Z=(50.0Ω)2+((350rads-1)(2.50H)1(350rads-1)(25.0μF))2=66.8Ω

Conclusion: The impedance of the circuit is 66.8Ω .

b)

To determine

The rms current in the circuit.

b)

Expert Solution
Check Mark

Answer to Problem 32P

The rms current if the circuit is 0.953A .

Explanation of Solution

Given info: The AC voltage has a form Δv=(90.0V)sin(350t) . The resistance is 50.0Ω . The capacitance is 25.0μF . The inductance is 0.200H .

Explanation:

The expression of AC voltage at any instant is given by,

v=ΔVmsin(ωt) (1)

  • ΔVm is the maximum voltage supplied by the AC generator
  • ω is the angular frequency
  • t is the time

The given expression of AC voltage is,

Δv=(90.0V)sin(350t) (2)

Comparing (1) and (2), the maximum voltage supplied by the AC source is 90.0V . The angular frequency is 350rads-1 .

The rms current in the circuit is given by,

Irms=ΔVrmsZ

  • ΔVrms is the rms voltage of the source
  • Z is the impedance

The rms voltage of the source is,

ΔVrms=ΔVm2

  • ΔVm is the maximum voltage supplied by the source

Substituting the expression for the rms voltage, the rms current will be,

Irms=ΔVmZ2

Substitute 90.0V for ΔVm and 66.8Ω for Z to determine the rms current in the circuit,

Irms=90.0V(66.8Ω)2=0.953A

Conclusion: The rms current if the circuit is 0.953A .

c)

To determine

The average power delivered to the circuit.

c)

Expert Solution
Check Mark

Answer to Problem 32P

The average power delivered to the circuit is 45.4W .

Explanation of Solution

Given info: The AC voltage has a form Δv=(90.0V)sin(350t) . The resistance is 50.0Ω . The capacitance is 25.0μF . The inductance is 0.200H .

The average power delivered to a resistor is given by,

Pa=IrmsΔVrmscosϕ

  • ϕ is the phase angle
  • Irms is the rms current flowing in the circuit
  • ΔVrms is the rms voltage

The rms voltage of the source is,

ΔVrms=ΔVm2

  • ΔVm is the maximum voltage supplied by the source

Substituting the expression for the rms voltage, the average power can be rewritten as,

Pa=IrmsΔVmcosϕ2

Formula to calculate the inductive reactance is,

XL=ωL

  • ω is the angular frequency of the ac source
  • L is the inductance of the inductor

Formula to calculate the capacitive reactance is,

XC=1ωC

  • C is the capacitance of the capacitor
  • ω is the angular frequency of the ac source

The phase angle of the circuit is given by,

ϕ=tan1(XLXCR)

Substituting the expression for inductive reactance and capacitive reactance the expression for the phase angle of the circuit can be rewritten as,

ϕ=tan1(ωL1ωCR)

Substituting the expression for the phase angle, the expression for the average power delivered can be rewritten as,

Pa=IrmsΔVm2cos(tan1(ωL1ωCR))

Substitute 0.953A for Irms , 90.0V for ΔVm , 50.0Ω for R , 25.0μF for C , 2.50H for L , 350rads-1 for ω to determine the average power,

Pa=(0.953A)90.0V2cos(tan1((350rads-1)(2.50H)1(350rads-1)(25.0μF)50.0Ω))=45.4W

Conclusion: The average power delivered to the circuit is 45.4W .

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