Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
15th Edition
ISBN: 9781305289963
Author: Debora M. Katz
Publisher: Cengage Custom Learning
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Chapter 32, Problem 13PQ

A square conducting loop with side length a = 1.25 cm is placed at the center of a solenoid 40.0 cm long with a current of 4.30 A flowing through its 420 turns, and it is aligned so that the plane of the loop is perpendicular to the long axis of the solenoid. The radius of the solenoid is 5.00 cm. a. What is the magnetic flux through the loop? b. What is the magnitude of the average emf induced in the loop if the current in the solenoid is increased from 4.30 A to 10.0 A in 1.75 s?

(a)

Expert Solution
Check Mark
To determine

The magnetic flux through the loop.

Answer to Problem 13PQ

The magnetic flux through the loop is 8.87×107Wb.

Explanation of Solution

Write the expression for the magnetic field of solenoid.

  B=μ0nI=μ0(Nl)I                                                                                                           (I)

Here, B is the magnetic field inside the solenoid, N is the total number of turns, l is the length of the solenoid, and I is current in the solenoid.

Write the expression for the magnetic flux through the loop.

  ϕB=BAcosφ=Ba2cosφ                                                                                                            (II)

Here, A(=a2) is area of the loop and φ is the angle between the magnetic field and area vector.

Conclusion:

Substitute 4π×107H/m for μ0, 420 for N, 40.0cm for l and 4.30A for I in equation (I) to find B.

  B=(4π×107H/m)×(42040.0cm×102m21cm)×(4.30A)=5.67mT

Thus, the magnetic field inside the solenoid is 5.67mT.

Substitute 5.67mT for B, 1.25cm for a and 0° for φ in equation (II) to find ϕB.

  ϕB=(5.67mT)×(1.25cm×102m1cm)2×cos0°=8.87×107Wb

Therefore, the magnetic flux through the loop is 8.87×107Wb.

(b)

Expert Solution
Check Mark
To determine

The magnitude of the average emf induced in the loop.

Answer to Problem 13PQ

The magnitude of the average emf induced in the loop is 6.72×107V

Explanation of Solution

Write the expression for Faraday’s law of induction.

  |ε|=|dϕBdt|

Here, ε is the emf induced in the loop and ϕB is the magnetic flux associated with the loop.

Substitute the value of equation (II) in the above equation to find |ε|.

  |ε|=|d(Ba2cosφ)dt|

Conclusion:

Substitute the value of equation (I) in the above equation to find |ε|.

  |ε|=|d(μ0(Nl)Ia2cosφ)dt|=μ0(Nl)a2cosφ|I2I1dt|

Substitute 4π×107H/m for μ0, 420 for N, 40.0cm for l, 1.25cm for a, 0° for φ, 10.0A for I2, 4.30A for I1 and 1.75s for Δt  in equation (V) to find ε.

  |ε|=(4π×107H/m)420(40.0cm×102m21cm)(1.25cm×102m1cm)2cos0°×|(10.0A4.30A1.75s)|=6.72×107V

Thus, the magnitude of the average emf induced in the loop is 6.72×107V

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Chapter 32 Solutions

Physics for Scientists and Engineers: Foundations and Connections

Ch. 32 - Prob. 2PQCh. 32 - Prob. 3PQCh. 32 - Prob. 4PQCh. 32 - Prob. 5PQCh. 32 - Figure P32.6 shows three situations involving a...Ch. 32 - A rectangular loop of length L and width W is...Ch. 32 - The magnetic field through a square loop of wire...Ch. 32 - Prob. 9PQCh. 32 - Prob. 10PQCh. 32 - Suppose a uniform magnetic field is perpendicular...Ch. 32 - Prob. 12PQCh. 32 - A square conducting loop with side length a = 1.25...Ch. 32 - A The magnetic field in a region of space is given...Ch. 32 - A The magnetic field in a region of space is given...Ch. 32 - Prob. 16PQCh. 32 - Prob. 17PQCh. 32 - Prob. 18PQCh. 32 - A square loop with side length 5.00 cm is on a...Ch. 32 - A thin copper rod of length L rotates with...Ch. 32 - Figure P32.21 shows a circular conducting loop...Ch. 32 - Prob. 22PQCh. 32 - A square loop with side length L, mass M, and...Ch. 32 - Prob. 24PQCh. 32 - Prob. 25PQCh. 32 - Prob. 26PQCh. 32 - Prob. 27PQCh. 32 - A solenoid of area Asol produces a uniform...Ch. 32 - Two circular conductors are perpendicular to each...Ch. 32 - Two circular conducting loops labeled A and B are...Ch. 32 - Prob. 31PQCh. 32 - Prob. 32PQCh. 32 - Prob. 33PQCh. 32 - Prob. 34PQCh. 32 - Prob. 35PQCh. 32 - Find an expression for the current in the slide...Ch. 32 - The slide generator in Figure 32.14 (page 1020) is...Ch. 32 - Prob. 38PQCh. 32 - A thin conducting bar (60.0 cm long) aligned in...Ch. 32 - A stiff spring with a spring constant of 1200.0...Ch. 32 - A generator spinning at a rate of 1.20 103...Ch. 32 - Suppose you have a simple homemade AC generator...Ch. 32 - Prob. 43PQCh. 32 - Prob. 44PQCh. 32 - Prob. 45PQCh. 32 - Prob. 46PQCh. 32 - A square coil with a side length of 12.0 cm and 34...Ch. 32 - Prob. 48PQCh. 32 - Prob. 49PQCh. 32 - Prob. 50PQCh. 32 - Prob. 51PQCh. 32 - Prob. 52PQCh. 32 - Prob. 53PQCh. 32 - Prob. 54PQCh. 32 - Prob. 55PQCh. 32 - Prob. 56PQCh. 32 - Prob. 57PQCh. 32 - A step-down transformer has 65 turns in its...Ch. 32 - Prob. 59PQCh. 32 - Prob. 60PQCh. 32 - Prob. 61PQCh. 32 - Prob. 62PQCh. 32 - Prob. 63PQCh. 32 - A bar magnet is dropped through a loop of wire as...Ch. 32 - Prob. 65PQCh. 32 - Prob. 66PQCh. 32 - A circular coil with 75 turns and radius 12.0 cm...Ch. 32 - Each of the three situations in Figure P32.68...Ch. 32 - A square loop with sides 1.0 m in length is placed...Ch. 32 - Prob. 70PQCh. 32 - Two frictionless conducting rails separated by l =...Ch. 32 - Imagine a glorious day after youve finished...Ch. 32 - Prob. 73PQCh. 32 - A Figure P32.74 shows an N-turn rectangular coil...Ch. 32 - A rectangular conducting loop with dimensions w =...Ch. 32 - Prob. 76PQCh. 32 - A conducting rod is pulled with constant speed v...Ch. 32 - Prob. 78PQCh. 32 - A conducting single-turn circular loop with a...Ch. 32 - A metal rod of mass M and length L is pivoted...
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