Electromagnetic Induction Practice Problems Homework PSI AP Physics B

Similar documents
PHYS102 Previous Exam Problems. Induction

AP Physics 2 Electromagnetic Induction Multiple Choice

Chapter 12. Magnetism and Electromagnetism

PS I AP Physics 2 Electromagnetic Induction Multiple Choice Questions

Chapter 27, 28 & 29: Magnetism & Electromagnetic Induction. Magnetic flux Faraday s and Lenz s law Electromagnetic Induction Ampere s law

AP Physics 2 - Ch 20 Practice

Version The diagram below represents lines of magnetic flux within a region of space.

Chapter 9 FARADAY'S LAW Recommended Problems:

AP* Magnetism Free Response Questions

Can a Magnetic Field Produce a Current?

AP Physics C - E & M


Faraday s Law of Electromagnetic Induction

Physics 54 Lecture March 1, Micro-quiz problems (magnetic fields and forces) Magnetic dipoles and their interaction with magnetic fields

LECTURE 23 INDUCED EMF. Instructor: Kazumi Tolich

C. Incorrect! Use the formula for magnetic flux. This is the product of magnetic field, times area, times the angle between them.

Demo: Solenoid and Magnet. Topics. Chapter 22 Electromagnetic Induction. EMF Induced in a Moving Conductor

PHYSICS Fall Lecture 15. Electromagnetic Induction and Faraday s Law

A) 0 V B) 0.4 V C) 2.5 V D) 10 V E) 40 V A) 0. B) vbl 2. C) vbl 2. D) vbl. E) vbl

Can a Magnetic Field Produce a Current?

Slide 1 / 50. Electromagnetic Induction and Faraday s Law

Slide 1 / 50. Slide 2 / 50. Slide 3 / 50. Electromagnetic Induction and Faraday s Law. Electromagnetic Induction and Faraday s Law.

SECTION B Induction. 1. The rate of change of flux has which of the following units A) farads B) joules C) volts D) m/s E) webers

Physics 106, Section 1

Chapter 23: Magnetic Flux and Faraday s Law of Induction

Faraday's Law ds B B G G ΦB B ds Φ ε = d B dt

Physics 201. Professor P. Q. Hung. 311B, Physics Building. Physics 201 p. 1/1

St. Vincent College PH : General Physics II. Exam 5 4/8/2016

(D) Blv/R Counterclockwise

Chapter 5: Electromagnetic Induction

Lecture 29: MON 03 NOV

Faraday s Law; Inductance

Physics 115. Induction Induced currents. General Physics II. Session 30

AP Physics Electromagnetic Wrap Up

Chapter 23 Magnetic Flux and Faraday s Law of Induction

DO PHYSICS ONLINE MOTORS AND GENERATORS FARADAY S LAW ELECTROMAGNETIC INDUCTION

P202 Practice Exam 2 Spring 2004 Instructor: Prof. Sinova

(a) zero. B 2 l 2. (c) (b)

Electromagnetic Induction

mag ( ) 1 ). Since I m interested in the magnitude of the flux, I ll avoid the minus sign by taking the normal to point upward.

Slide 1 / 24. Electromagnetic Induction 2011 by Bryan Pflueger

Lecture 29: MON 02 NOV

PHY101: Major Concepts in Physics I

PHYS 241 EXAM #2 November 9, 2006

Chapter 5. Electromagnetic Induction

Chapter 20: Electromagnetic Induction. PHY2054: Chapter 20 1

First Name: Last Name: Section: n 1. March 26, 2003 Physics 202 EXAM 2

Exam II. Solutions. Part A. Multiple choice questions. Check the best answer. Each question carries a value of 4 points. The wires repel each other.

MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question.

Induction_P1. 1. [1 mark]

ELECTRO MAGNETIC INDUCTION

Electromagnetic Induction and Faraday s Law

PRACTICE EXAM 2 for Midterm 2

PHYS 2326 University Physics II Class number

Physics 102, Learning Guide 4, Spring Learning Guide 4

1 Fig. 3.1 shows the variation of the magnetic flux linkage with time t for a small generator. magnetic. flux linkage / Wb-turns 1.

FARADAY S AND LENZ LAW B O O K P G

Electromagnetic Induction

PHYS 1442 Section 004 Lecture #14

Homework 6 solutions PHYS 212 Dr. Amir

REVIEW SESSION. Midterm 2

Chapter 30. Induction and Inductance

CHAPTER 5 ELECTROMAGNETIC INDUCTION

Induction and Inductance

Induction and Inductance

FXA 2008 Φ = BA. Candidates should be able to : Define magnetic flux. Define the weber (Wb). Select and use the equation for magnetic flux :

PHYSICS 1B. Today s lecture: Motional emf. and. Lenz s Law. Electricity & Magnetism

Physics 9 WS M5 (rev. 1.0) Page 1

Magnetism Practice Problems PSI AP Physics B

HW7: Ch. 26 P 34, 36 Ch.27 Q 2, 4, 8, 18 P 2, 8, 17, 19, 37

Chapter 30. Induction and Inductance

Agenda for Today. Elements of Physics II. Forces on currents

Physics 240 Fall 2005: Exam #3. Please print your name: Please list your discussion section number: Please list your discussion instructor:

Physics 2401 Summer 2, 2008 Exam III

CHAPTER 5: ELECTROMAGNETIC INDUCTION

21 MAGNETIC FORCES AND MAGNETIC FIELDS

Magnetic flux. where θ is the angle between the magnetic field and the area vector. The unit of magnetic flux is the weber. 1 Wb = 1 T m 2.

AP Physics C Unit 11: Electromagnetic Induction. Part 1 - Faraday s Law and Lenz s Law

Fig. 2.1 I =... A [2] Suggest why it would be impossible for overhead cables carrying an alternating current to float in the Earth s magnetic field.

ElectroMagnetic Induction

Faraday s Law. Underpinning of Much Technology

Ch 17 Problem Set 31. A toaster is rated at 600 W when connected to a 120-V source. What current does the toaster carry, and what is its resistance?

Physics 4. Magnetic Induction. Prepared by Vince Zaccone For Campus Learning Assistance Services at UCSB

Motional EMF. Toward Faraday's Law. Phys 122 Lecture 21

PHYSICS 30 ELECTROMAGNETISM ASSIGNMENT 3 VERSION:0

Physics 240 Fall 2005: Exam #3 Solutions. Please print your name: Please list your discussion section number: Please list your discussion instructor:

Physics 6B Summer 2007 Final

Chapter 21 Magnetic Induction Lecture 12

PHY 1214 General Physics II

Physics 180B Fall 2008 Test Points

Ch. 23 Electromagnetic Induction, AC Circuits, And Electrical Technologies

Faraday s Law. Lecture 17. Chapter 33. Physics II. Course website:

Our goal for today. 1. To go over the pictorial approach to Lenz s law.

PHYS 1444 Section 003 Lecture #18

DEVIL PHYSICS THE BADDEST CLASS ON CAMPUS IB PHYSICS

PHYSICS. Chapter 30 Lecture FOR SCIENTISTS AND ENGINEERS A STRATEGIC APPROACH 4/E RANDALL D. KNIGHT

Physics 9 Wednesday, April 2, 2014

a. Clockwise. b. Counterclockwise. c. Out of the board. d. Into the board. e. There will be no current induced in the wire

Chapters 34,36: Electromagnetic Induction. PHY2061: Chapter

ELECTROMAGNETIC INDUCTION AND FARADAY S LAW

Transcription:

Electromagnetic Induction Practice Problems Homework PSI AP Physics B Name Multiple Choice Questions 1. A square loop of wire is placed in a uniform magnetic field perpendicular to the magnetic lines. The strength of the magnetic field is 0.5 T and the side of the loop is 0.2 m. What is the magnetic flux in the loop? A) 0.02 Wb B) 0.04 Wb C) 0.06 Wb D) 0.08 Wb E) 0.10 Wb 2. A circular loop of wire is placed in a uniform magnetic field perpendicular to the magnetic lines. The strength of the magnetic field is B and the radius of the loop is R. What is the magnetic flux in the loop? A) π B/R 2 B) π BR 2 C) π B/R D) π BR E) B/R 2

3. A square loop of wire with one side of 0.4 m is placed in a uniform magnetic field B = 2 T. The normal line to the loop makes 60 with the magnetic field lines. What is the magnetic flux in the loop? A) 0.12 Wb B) 0.14 Wb C) 0.16 Wb D) 0.18 Wb E) 0.20 Wb 4. A circular loop is initially placed in a uniform magnetic field perpendicular to the field lines and then removed quickly from the field. The induced emf causes the electric charge flow in the loop. Which of the following explains the force on the induced current due to the original field? A) Force causes the loop to turn around its axis B) Force causes the loop to turn around its diameter C) Force causes the loop to accelerate in the field direction D) Force causes the loop to accelerate perpendicular to the field direction E) Force opposes to any motion of the loop 5. A magnet bar with the north pole down is held above a horizontal aluminum ring. Which of the following is true about the induced current in the ring? (View from above) A) There is no current in the ring B) There is a clockwise current in the ring C) There is a counterclockwise current in the ring D) There is an AC current in the ring E) More information is required

6. A magnet bar with the north pole down is held above a horizontal aluminum ring. Which of the following is true about the induced current in the ring? (View from above) A) There is no current in the ring B) There is a clockwise current in the ring C) There is a counterclockwise current in the ring D) There is an AC current in the ring E) More information is required 7. A circular loop of wire is placed in a uniform magnetic field directed out of the page. Suddenly the magnetic field disappears. What is the direction of the induced current in the loop? A) Clockwise B) Counterclockwise C) No current in the coil D) Into the page E) Out of the page 8. A square loop of wire is placed in a uniform magnetic field directed into the page. Suddenly the magnetic field grows stronger. What is the direction of the induced current in the loop? A) Clockwise B) Counterclockwise C) No current in the coil D) Into the page E) Out of the page

9. A copper rod ML moves at a constant speed in a uniform magnetic field perpendicular to the magnetic lines. Which statement is true about the electric potential in the rod? A) Point M is at higher potential B) Point L is at higher potential C) Potential is higher at the surface of the rod D) Potential is higher at the center of the rod E) More information is required 10. A copper rod ML moves at a constant speed in a uniform magnetic field perpendicular to the magnetic lines. Which statement is true about the electric potential in the rod? A) Point M is at higher potential B) Point L is at higher potential C) Potential is higher at the surface of the rod D) Potential is higher at the center of the rod E) More information is required

11. A square loop of wire with one side of a and resistance R is pulled out the field with a constant speed of v. The strength of the field is B. Which statement is true about the magnitude and direction of the induced current? Magnitude Direction A) Bav/R Counterclockwise B) Bav/R Clockwise C) BavR Counterclockwise D) BavR Clockwise E) Ba/vR Counterclockwise 12. A square loop of wire with one side of a and resistance R is pulled out the field with a constant speed of v. The strength of the field is B. Which statement is true about the magnitude and direction of the magnetic force on the loop? (A) Bav/R (B) Bav/R (C) B 2 a 2 v/r (D) B 2 a 2 v/r (E) B 2 a 2 vr In the direction of the loop s motion In opposite direction to the loop s motion In the direction of the loop s motion In opposite direction to the loop s motion In the direction of the loop s motion

13. A square loop of aluminum wire is initially placed perpendicular to the lines of a constant magnetic field of 0.5 T. The area enclosed by the loop is 0.2 m 2. The loop is then turned through an angle of 90 so that the plane of the loop is parallel to the field lines. The turn takes 0.1 s. What is the induced emf in the loop? (A) 0.5 V B) 1.0 V C) 1.5 V D) 1.2 V E) 0.8 V 14. A square loop of wire with one side of a and resistance R is placed in a uniform magnetic field of strength B. The field vanishes and results an induced current I in the loop. What is the rate of change of magnetic field? (A) IR/a B) IR/a 2 C) IRa 2 D) IRa E) Ia/R 15. A metallic bar with ends lying on two parallel conducting rails moves at a constant speed v in the direction of the uniform magnetic field B. The induced emf in the bar is: A) Directed to the left side of the page B) Directed to the right side of the page C) Directed to the top of the page D) Directed to the bottom of the page E) Zero

16. A loop of wire is pulled with constant velocity v to the right through a region of space where there is a uniform magnetic field B directed into the page, as shown above. The magnetic force on the loop is A) Directed to the left both as it enters and as it leaves the region B) Directed to the right both as it enters and as it leaves the region C) Directed to the left as it enters the region and to the right as it leaves D) Directed to the right as it enters the region and to the left as it leaves E) zero at all times 17. A vertical length of copper wire moves to the right with a constant speed v in the perpendicular direction of a constant horizontal magnetic field B. Which of the following describes the induced charges on the ends of the wire? Point M Point L A) Positive Negative B) Negative Positive C) Negative Zero D) Zero Negative E) Zero Zero

18. When the switch is closed the direction of the electric current is: Loop 1 Loop 2 (A) Clockwise (B) Counterclockwise (C) Clockwise (D) Counterclockwise (E) Zero Counterclockwise Clockwise Clockwise Counterclockwise Zero 19. Which of the following procedures will not produce an induced current in the loop 2: (A) Closing the switch (B) Opening the switch (C) Rotating loop 2 with respect to its axis when switch is close for a long time (D) Rotating loop 2 with respect to its diameter when switch is close for a long time (E) Removing loop 2 from loop 1 when the switch is closed for a long time

20. A magnet bar with a north pole down is dropped from a certain height and on the way down passes through a closed coil of wire. Which statement is true about the magnet s acceleration? (A) Greater than g B) Less than g C) g D) Zero acceleration E) More information is required

Free-Response Problems 1. A 0.2 Ω rectangular loop of wire has an area of 0.5 m 2 and placed in a region where magnetic field changes as shown on the diagram. a. What is the magnetic flux in the loop at 0.4 s? b. What is the induced emf for the following time? i. 0.1 s ii. 0.3 s iii. 0.5 s c. What is the induced current for the following time? i. 0.1 s ii. 0.3 s iii. 0.5 s d. On the diagram below graph the induced current as a function of time.

2. A rectangular loop of wire 0.5 m wide and 1.5 m long is moving out of a uniform magnetic field B = 2 T at a constant speed of 2m/s. The left side of the loop stays inside the field when the right side is out. The resistance of the loop is 0.5 Ω. a. What is the direction of the induced current in the loop? b. Calculate the induced emf in the loop. c. Calculate the induced current in the loop. d. Calculate the applied force required to move the loop at the constant speed. e. Calculate the power developed by the force.

3. A metallic rod has a length L and slides at a constant speed v on the top of two conducting parallel rails. The rails are connected to a resistor R. The apparatus is placed in a uniform magnetic field B which is perpendicular to the plane where rod is moving. a. What is the direction of the induced current? b. Determine the induced emf. c. Determine the induced current in the circuit. d. Determine the electric field E induced in the rod. e. Determine the force required to move the rod at the constant speed. f. Determine the power dissipated in the resistor when the rod crosses the magnetic field.

4. A coil 30 cm in diameter consist of 20 turns of circular copper wire 2 mm in diameter. The coil is connected to a low resistance galvanometer. Initially coil is placed in a uniform magnetic field perpendicular to its plane. During the experiment the magnetic field changes from 0.5 T to 2.5 T in 0.4 s. Ignore the resistance of the connecting wires.(copper resistivity 1.68 10-8 Ω m) a. Calculate the initial flux in the coil. b. Calculate the induced emf in the galvanometer. c. Calculate the induced current in the coil. d. Calculate the power dissipated in the coil as the field changes.

Multiple Choice Answers: 1. E 2. B 3. C 4. E 5. A 6. H 7. B 8. B 9. A 10. G 11. D 12. D 13. B 14. B 15. E 16. A 17. B 18. B 19. C 20. B Free Response Answers: 1. a. 0.2 Wb b. i. -1 V ii. 0 iii. 2v c. i. 5 A ii. 0 iii. 10 A d.

2. 3. 4. a. Counter clockwise b. 2 V c. 4 A d. 4 N e. 8 W a. Counter clockwise b. ξ = BLv c. I = BLv/R d. E = Bv e. F = B 2 L 2 v/r f. P = B 2 L 2 v 2 /R a. 0.71 W b. 0.9 V c. 0.0841 A d. 0.0757 W