COLLEGE PHYSICS LL W/ 6 MONTH ACCESS
COLLEGE PHYSICS LL W/ 6 MONTH ACCESS
2nd Edition
ISBN: 9781319414597
Author: Freedman
Publisher: MAC HIGHER
bartleby

Videos

Question
Book Icon
Chapter 20, Problem 20QAP
To determine

(a)

Induced emf at t < 0 s

Expert Solution
Check Mark

Answer to Problem 20QAP

Induced emf at t < 0 s= 0 T

Explanation of Solution

Given info:

  Number of turns =30diameter of the coil =0.6 mmagnetic field = 1.0 T

Formula used:

  A=πr2A=arear=radiusΦ=NBAΦ=magnetic fluxN=number of turnsε=dΦdtε= emft= time

Calculation:

  radius=0.6 m2=0.3 m

  By substituting,ε=dΦdtε=ddt(NBπr2)ε=Nπr2dBdtε=-Nπr2(B2B1)dtMagnetic field is constant when t < 0 sdB = 0,ε=0

Conclusion:

Induced emf at t < 0 s= 0 T

To determine

(b)

Induced emf at t =5.0 s

Expert Solution
Check Mark

Answer to Problem 20QAP

Induced emf at t =5.0 s= 2.54 mV

Explanation of Solution

Given info:

  Number of turns =30diameter of the coil =0.06 mmagnetic field = 1.0 Tmagnetic field is increased to 1.3 T in 10 s

Formula used:

  A=πr2A=arear=radiusΦ=NBAN=number of turnsε=dΦdtε= emft= time

Calculation:

  radius=0.06 m2=0.03 mMagnetic field at 5 s = 1.3 T - 1.0 T10 s*5 s+1.0 T=1.15 T

  By substituting,ε=dΦdtε=ddt(NBπr2)ε=Nπr2dBdtε=-Nπr2(1.15 T1.00 T)dtε=-30*3.14*(0.03 m)2(1.15 T1.00 T)1 sε=2.54 mV

Conclusion:

Induced emf at t =5.0 s= 2.54 mV

To determine

(c)

Induced emf at t < 10 s

Expert Solution
Check Mark

Answer to Problem 20QAP

Induced emf at t < 10 s= 0 T

Explanation of Solution

Given info:

  Number of turns =30diameter of the coil =0.6 mmagnetic field = 1.0 T

Formula used:

  A=πr2A=arear=radiusΦ=NBAN=number of turnsε=dΦdtε= emft= time

Calculation:

  radius=0.6 m2=0.3 m

  By substituting,ε=dΦdtε=ddt(NBπr2)ε=Nπr2dBdtε=-Nπr2(B2B1)dtMagnetic field is constant after 10 sdB = 0,ε=0

Conclusion:

Induced emf at t < 10 s= 0 T

To determine

(d)

Plot the magnetic field and induced emf as functions of time

Expert Solution
Check Mark

Answer to Problem 20QAP

  COLLEGE PHYSICS LL W/ 6 MONTH ACCESS, Chapter 20, Problem 20QAP , additional homework tip  1

  COLLEGE PHYSICS LL W/ 6 MONTH ACCESS, Chapter 20, Problem 20QAP , additional homework tip  2

Explanation of Solution

Given info:

    Time (s)Magnetic field (T)induced emf (V)
    -1010
    -510
    010
    11.030.0025434
    21.060.0025434
    31.090.0025434
    41.120.0025434
    51.150.0025434
    61.180.0025434
    71.210.0025434
    81.240.0025434
    91.270.0025434
    101.30.0025434
    151.30
    201.30

Formula used:

  A=πr2A=arear=radiusΦ=NBAN=number of turnsε=dΦdtε= emft= time

Calculation:

emf at 1 s as shown below, all the emf values were calculated like that by substituting the magnetic field at particular time.

  B at 1 s =1.03 TBy substituting,ε=dΦdtε=ddt(NBπr2)ε=Nπr2dBdtε=-30*3.14*(0.03 m)2(1.03 T1.00 T)1 sε=2.54 mV

Conclusion:

Graphs were drawn in the answer section.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
A rectangle measuring 30.0 cm by 40.0 cm is located inside a region of a spatially uniform magnetic field of 1.70 T , with the field perpendicular to the plane of the coil (the figure (Figure 1)). The coil is pulled out at a steady rate of 2.00 cm/s traveling perpendicular to the field lines. The region of the field ends abruptly as shown. Find the emf induced in this coil when it is all inside the field, when it is partly in the field, and when it is fully outside. Please show all steps.
A rectangular circuit is moved at a constant velocity of 3.00 m/s into, through, and then out of a uniform 1.25 T magnetic field, as shown in the figure (Figure 1). The magnetic field region is considerably wider than 50.0 cm . Find the direction (clockwise or counterclockwise) of the current induced in the circuit as it is going into the magnetic field (the first case), totally within the magnetic field but still moving (the second case), and moving out of the field (the third case).  Find the magnitude of the current induced in the circuit as it is going into the magnetic field . Find the magnitude of the current induced in the circuit as it is totally within the magnetic field but still moving. Find the magnitude of the current induced in the circuit as it is moving out of the field. Please show all steps
Shrinking Loop. A circular loop of flexible iron wire has an initial circumference of 161 cm , but its circumference is decreasing at a constant rate of 15.0 cm/s due to a tangential pull on the wire. The loop is in a constant uniform magnetic field of magnitude 1.00 T , which is oriented perpendicular to the plane of the loop. Assume that you are facing the loop and that the magnetic field points into the loop. Find the magnitude of the emf E induced in the loop after exactly time 9.00 s has passed since the circumference of the loop started to decrease. Find the direction of the induced current in the loop as viewed looking along the direction of the magnetic field. Please explain all steps
Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Principles of Physics: A Calculus-Based Text
Physics
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
University Physics Volume 2
Physics
ISBN:9781938168161
Author:OpenStax
Publisher:OpenStax
Text book image
Physics for Scientists and Engineers: Foundations...
Physics
ISBN:9781133939146
Author:Katz, Debora M.
Publisher:Cengage Learning
Text book image
Physics for Scientists and Engineers, Technology ...
Physics
ISBN:9781305116399
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Glencoe Physics: Principles and Problems, Student...
Physics
ISBN:9780078807213
Author:Paul W. Zitzewitz
Publisher:Glencoe/McGraw-Hill
Text book image
Physics for Scientists and Engineers with Modern ...
Physics
ISBN:9781337553292
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
What is Electromagnetic Induction? | Faraday's Laws and Lenz Law | iKen | iKen Edu | iKen App; Author: Iken Edu;https://www.youtube.com/watch?v=3HyORmBip-w;License: Standard YouTube License, CC-BY