Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
1st Edition
ISBN: 9781133939146
Author: Katz, Debora M.
Publisher: Cengage Learning
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Chapter 33, Problem 58PQ
To determine

The expression for average power supplied.

Expert Solution & Answer
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Answer to Problem 58PQ

The expression for average power supplied is Pavg=εrms×Irms×cosφ.

Explanation of Solution

Write the expression for average power.

    Pavg=0TdU0Tdt                                            (I)

Here, Pavg is the average power, U is the energy dissipated in time t and T is one complete time period.

Write the expression for current to the circuit connected to an alternating source of emf.

    I=Imaxsinωt                                (II)

Here, I is the current in the circuit, Imax is the peak value of the current and ω is the angular frequency.

Write the expression for emf in the circuit.

    ε=εmaxsin(ωt+φ)                       (III)

Here, εmax is the peak value of emf, ε is the induced emf, and φ is the phase difference.

Write the expression for energy dissipated in time t.

    dU=εIdt                      (IV)

Substitute εmaxsin(ωt+φ) for ε and Imaxsinωt for I in the equation (IV) to solve for expression for dU.

    dU=εmaxsin(ωt+φ)Imaxsinωtdt=εmaxImax(sin(ωt+φ)sinωtdt)=εmaxImax(cos(ωtωtφ)+cos(ωt+ωt+φ))dt=εmaxImax(cos(φ)+cos(2ωt+φ))dt

Substitute εmaxImax(cos(φ)+cos(2ωt+φ))dt for dU in equation (I) to calculate the expression for Pavg.

    Pavg=0TεmaxImax(cos(φ)+cos(2ωt+φ))dt0Tdt

Integrate the  expression between the limits 0 and T.

    Pavg=0TεmaxImax2(cos(φ)+cos(2ωt+φ))dt0Tdt=εmaxImax2[cos(φ)0Tdt+0Tcos(2ωt+φ)dt0Tdt]=εmaxImax2[cos(φ)[t]0T+12ω[sin(2ωt+φ)]0T[t]0T]=εmaxImax2[cos(φ)T+12ω[sin(2ωT+φ)sinφ]T]                     (V)

Now,

    ω=2πT

Substitute, 2πT for ω in the equation (V).

    Pavg=εmaxImax2[cos(φ)T+122πT[sin(22πTT+φ)sinφ]T]=εmaxImax2[cos(φ)T+T4π[sin(4π+φ)sinφ]T]=εmaxImax2TT(cos(φ)+14π[sin(φ)sinφ])=εmaxImax2cos(φ)                            (VI)

The above expression can be rewritten as.

    Pavg=εmax2×Imax2×cosφ                                                                                    (VII)

Also, rms value of current is given by.

    Irms=Imax2

Here, Irms is the rms value of current.

And,

The rms value of emf is given by.

    εrms=εmax2

Here, εrms is the rms value of induced emf.

Substitute εrms for εmax2 and Irms for Irms2 in equation (VII).

    Pavg=εrmsIrmscosφ

Therefore, the expression for average power supplied is Pavg=εrmsIrmscosφ.

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Chapter 33 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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