COLLEGE PHYSICS,V.2
COLLEGE PHYSICS,V.2
11th Edition
ISBN: 9781305965522
Author: SERWAY
Publisher: CENGAGE L
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Question
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Chapter 20, Problem 52P

(a)

To determine

The resistance of the wire.

(a)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The resistance of the wire is 1.3Ω .

Explanation of Solution

Given Info: The length of insulated copper wire is 60.0m and radius of the copper wire is 0.50mm .

Use the table 17.1 to obtain the resistivity of the copper wire is 1.7×108Ωm .

Formula to calculate the resistance of the wire is,

Rwire=ρCuLAwire

  • Awire is the cross sectional area of the wire,
  • Rwire is the resistance of the wire,
  • ρCu is the resistivity of the copper wire,
  • L is the length of the wire,

Use πr2 for Awire in the above relation.

Rwire=ρCuLπr2

  • r is the radius of the copper wire,

Substitute 1.7×108Ωm for ρCu , 60.0m for L, and 0.50mm for r .

Rwire=(1.7×108Ωm)(60.0m)(3.14)[(0.50mm)(103m1mm)]2=1.3Ω

Conclusion:

Therefore, the resistance of the wire is 1.3Ω .

(b)

To determine

The number of turns will be made in the wire.

(b)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The number of turn can be made with the wire is 4.8×102turns .

Explanation of Solution

Given Info: The length of insulated copper wire is 60.0m and radius of the solenoid is 2.0cm .

Formula to calculate the number of turns in the wire is,

N=LC

  • N is the number of turns in the wire,
  • C is the circumference of the loop,
  • L is the length of insulated copper wire,

Use 2πrs for C in the above relation,

N=L2πrs

  • rs is the radius of the solenoid,

Substitute 60.0m for L and 2.0cm for rs .

N=(60.0m)2(3.14)(2.0cm)(102m1cm)=4.8×102turns

Conclusion:

Therefore, the number of turn can be made with the wire is 4.8×102turns .

(c)

To determine

The length of the resulting solenoid.

(c)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The length of the resulting solenoid is 0.48m .

Explanation of Solution

Given Info: The number of turn in the wire is 4.8×102turns and radius of the copper wire is 0.50mm .

Formula to calculate the length of the resulting solenoid is,

l=ND

  • N is the number of turns in the wire,
  • D is the diameter of the wire,
  • l is the length of the solenoid,

Use 2r for D in the above relation,

l=N(2r)

  • r is the radius of the copper wire,

Substitute 4.8×102turns for N and 0.50mm for r .

l=(4.8×102turns)2(0.50mm)(103m1mm)=0.48m

Conclusion:

Therefore, the length of the resulting solenoid is 0.48m .

(d)

To determine

The self inductance of the solenoid.

(d)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The self inductance of the solenoid is 0.76mH .

Explanation of Solution

Given Info: The permeability of free space is 4π×107Tm/A , number of turn in the wire is 4.8×102turns , radius of the solenoid is 2.0cm .and length of the resulting solenoid is 0.48 m.

Formula to calculate the self inductance of the solenoid is,

L=μ0N2Asl

  • N is the number of turns in the wire,
  • μ0 is the permeability of free space,
  • L is the inductance of the solenoid,

Use πrs2 for As in the above relation,

L=μ0N2(πrs2)l

  • rs is the radius of the solenoid,

Substitute 4.8×102turns for N, 2.0cm for rs , 0.48 m for l and 4π×107Tm/A for μ0 .

L=(4π×107Tm/A)(4.8×102turns)2π[(2.0cm)(102m1cm)]2(0.48m)=7.6×104H=0.76mH

Conclusion:

Therefore, the self inductance of the solenoid is 0.76mH .

(e)

To determine

The time constant of the circuit.

(e)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The time constant of the circuit is 0.46ms .

Explanation of Solution

Given Info: The inductance of the solenoid is 0.76×103H , resistance of the wire is 1.3Ω and internal resistance is 350mΩ .

Formula to calculate the time constant of the RL circuit is,

τ=LRtotal

  • τ is the time constant,
  • Rtotal is the total resistance,
  • L is the inductance of the solenoid,

Use Rw+rin for Rtotal in the above relation,

τ=LRw+rin

  • Rw is the resistance of the wire,
  • rin is the internal resistance

Substitute 0.76×103H for L, 1.3Ω for Rw and 350mΩ for rin .

τ=(0.76×103H)(1.3Ω+350mΩ)=(0.76×103H)(1.3Ω+0.350Ω)=0.46ms

Conclusion:

Therefore, the time constant of the circuit is 0.46ms .

(f)

To determine

The maximum current attained in the circuit.

(f)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The maximum current attained in the circuit is 3.6A .

Explanation of Solution

Given Info: The emf of the battery is 6.0V and total resistance is 1.65Ω .

Formula to calculate the maximum current is,

Imax=εRtotal

  • Imax is the maximum current,
  • Rtotal is the total resistance,
  • ε is the emf,

Substitute 6.0V for ε and 1.65Ω for Rtotal .

Imax=(6.0V)(1.65Ω)=3.6A

Conclusion:

Therefore, the maximum current attained in the circuit is 3.6A .

(g)

To determine

The time taken to reach 99.9% of maximum current.

(g)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The time taken to reach 99.9% of maximum current is 3.2ms .

Explanation of Solution

Given Info: The time constant of the circuit is 0.46ms .

Formula to calculate the current is,

I=Imax(1et/τ) (1)

  • Imax is the maximum current,
  • I is the current
  • τ is the time constant,
  • t is the time,

Since the time taken to reach 99.9% of maximum current is,

I=0.999Imax (2)

Compare equation (1) and (2).

1et/τ=0.999et/τ=10.999et/τ=0.001

Rewrite the above relation in terms of t.

et/τ=0.001tτ=ln(0.001)t=τln(0.001)

Substitute 0.46ms for τ to find t.

t=(0.46ms)ln(0.001)=3.2ms

Conclusion:

Therefore, the time taken to reach 99.9% of maximum current is 3.2ms .

(h)

To determine

The maximum energy stored in the inductor.

(h)

Expert Solution
Check Mark

Answer to Problem 52P

Solution: The maximum energy stored in the inductor is 4.9mJ .

Explanation of Solution

Given Info: The inductance of the solenoid is 0.76×103H and the maximum current attained in the circuit is 3.6A .

Formula to calculate the maximum energy stored in the inductor is,

EL=12LImax2

  • Imax is the maximum current,
  • EL is the energy stored in the inductor,
  • L is the inductance,

Substitute 0.76×103H for L and 3.6A for Imax .

EL=12(0.76×103H)(3.6A)2=4.9mJ

Conclusion:

Therefore, the maximum energy stored in the inductor is 4.9mJ .

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Chapter 20 Solutions

COLLEGE PHYSICS,V.2

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