EBK PHYSICS FOR SCIENTISTS AND ENGINEER
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
9th Edition
ISBN: 9780100461260
Author: SERWAY
Publisher: YUZU
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Chapter 29, Problem 29.50P

(a)

To determine

The maximum torque acting on the rotor.

(a)

Expert Solution
Check Mark

Answer to Problem 29.50P

The maximum torque acting on the rotor is 6.4×104Nm .

Explanation of Solution

Given info: The number of turns in the rectangular coil is 80 , magnetic field is 0.800T , electric current is 10.00mA , length of the coil is 2.50cm and breadth of the coil is 4.00cm .

The formula to calculate the area of the coil is,

A=ab

Here,

a is the length of the coil.

b is the breadth of the coil.

Substitute 2.50cm for a and 4.00cm for b in the above formula to find A .

A=ab=(2.50cm×102m1cm)(4.00cm×102m1cm)=10.0×104m2

Thus, the area of the coil is 10.0×104m2 .

The formula to calculate the torque is,

τ=nABI

Here,

n is the number of turns of the rectangular coil.

B is the magnetic field.

A is the area of the coil.

I is the electric current.

Substitute 10.00mA for I and 10.0×104m2 for A , 0.800T for B , 80 for n in the above formula to find μ .

τ=nABI=80(10.00mA×103A1mA)(10.0×104m2)(0.800T)=6.4×104Nm

Conclusion:

Therefore, the maximum torque acting on the rotor is 6.4×104Nm .

(b)

To determine

The peak power output of the motor.

(b)

Expert Solution
Check Mark

Answer to Problem 29.50P

The peak power output of the motor is 0.241W .

Explanation of Solution

Given info: The number of turns in the rectangular coil is 80 , magnetic field is 0.800T , electric current is 10.00mA , length of the coil is 2.50cm and breadth of the coil is 4.00cm .

The formula to calculate the peak power is,

P=τω

Here,

τ is the torque.

ω is the angular frequency.

Substitute 6.4×104Nm for τ and 3.60×103rev/min in the above formula to find P .

P=τω=(6.4×104Nm)(3.60×103rev/min)(2πrad/s60rev/min)=0.24115W=0.241W

Conclusion:

Therefore, the peak power output of the motor is 0.241W .

(c)

To determine

The amount of work performed by the magnetic field on the rotor in every full revolution.

(c)

Expert Solution
Check Mark

Answer to Problem 29.50P

The amount of work performed by the magnetic field on the rotor in every full revolution is 2.56mJ .

Explanation of Solution

Given info: The number of turns in the rectangular coil is 80 , magnetic field is 0.800T , electric current is 10.00mA , length of the coil is 2.50cm and breadth of the coil is 4.00cm .

The formula to calculate the work done in half a revolution is,

W=nμB(cosθ1cosθ2)

Here,

n is the number of turns in the coil.

μ is the magnetic moment.

B is the magnetic field.

θ1 is the initial angle between the magnetic field and magnetic moment.

θ2 is the final angle between the magnetic field and magnetic moment.

The formula to calculate the magnetic moment is,

μ=IA

Here,

I is the electric current.

A is the area of the coil.

Substitute 10.00mA for I and 10.0×104m2 for A in the above formula to find μ .

μ=IA=(10.00mA)(10.0×104m2)=0.01Am2

Thus, the magnetic moment is 0.01Am2 .

Substitute 0.01Am2 for μ , 80 for n , 10.00mA for I , 0.800T for B 0° for θ1 and 180° for θ2  in the above formula to find W .

W=nμB(cosθ1cosθ2)=80(0.01Am2)(0.800T)(cos0°cos180°)=80(0.01Am2)(0.800T)(1(1))=1.28mJ

Thus, the work done in half the revolution is 1.26mJ .

The formula to calculate the work done to complete a full revolution is,

W=2W

Here,

W is the work done to complete half a revolution.

Substitute 1.28mJ for W in the above formula to find W .

W=2W=2(1.28mJ)=2.56mJ

Conclusion:

Therefore, the amount of work performed by the magnetic field on the rotor in every full revolution is 2.56mJ .

(d)

To determine

The average power of the motor.

(d)

Expert Solution
Check Mark

Answer to Problem 29.50P

The average power of the motor is 0.154W .

Explanation of Solution

Given info: The number of turns in the rectangular coil is 80 , magnetic field is 0.800T , electric current is 10.00mA , length of the coil is 2.50cm and breadth of the coil is 4.00cm .

The formula to calculate the average output power is,

Pavg=Wt

Here,

W is the work done to perform one complete revolution.

t is the time taken to complete one revolution.

Substitute 2.56J for W and 1rev/min for t in the above formula to find Pavg .

Pavg=Wt=2.56mJ×103J1mJ1rev/min×160rev/s1rev/min=0.154W

Conclusion:

Therefore, the average power of the motor is 0.154W .

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Chapter 29 Solutions

EBK PHYSICS FOR SCIENTISTS AND ENGINEER

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