PHYS 1102 EXAM - II. SECTION: (Circle one) 001 (TH 9:30 AM to 10:45AM) 002 (TH 3:30 PM to 4:45 PM) You have 1 hr 45 minutes to complete the test

Similar documents
P202 Practice Exam 2 Spring 2004 Instructor: Prof. Sinova

Physics 126 Fall 2004 Practice Exam 1. Answer will be posted about Oct. 5.

PRACTICE EXAM 2 for Midterm 2

PHYS 1444 Section 02 Review #2

Your name: Your TA: Your section Day/Time: PHY 101 Practice in-class exam III Wednesday, November 28, 3:15-3:35PM

Physics 2135 Exam 2 March 22, 2016

Louisiana State University Physics 2102, Exam 3, November 11, 2010.

Physics 2135 Exam 2 October 20, 2015

Physics 42 Exam 2 PRACTICE Name: Lab

The next two questions pertain to the situation described below. Consider a parallel plate capacitor with separation d:

PH2200 Practice Exam II Summer 2003

Physics 227 Final Exam December 18, 2007 Prof. Coleman and Prof. Rabe. Useful Information. Your name sticker. with exam code

PHYSICS 3204 PUBLIC EXAM QUESTIONS (Magnetism &Electromagnetism)

General Physics II (PHYS 104) Exam 2: March 21, 2002

AP Physics C. Electric Circuits III.C

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?

Chapter 12. Magnetism and Electromagnetism

1) Two lightbulbs, one rated 30 W at 120 V and another rated 40 W at 120 V, are arranged in two different circuits.

PHYS 2135 Exam II March 20, 2018

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

PRACTICE EXAM 1 for Midterm 2

On my honor, I have neither given nor received unauthorized aid on this examination.

(D) Blv/R Counterclockwise

Exam 2, Phy 2049, Spring Solutions:

Louisiana State University Physics 2102, Exam 2, March 5th, 2009.

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

A) I B) II C) III D) IV E) V

Physics 212 Midterm 2 Form A

AP Physics Electromagnetic Wrap Up

Physics 2135 Exam 2 October 18, 2016

PHY 101 Practice Exam III Monday, November 27, 2:15-3:35PM

Direct-Current Circuits. Physics 231 Lecture 6-1

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

General Physics (PHYC 252) Exam 4

Physics Grading Sheet.

Exam 3--PHYS 202--S15

Physics 2B Winter 2012 Final Exam Practice

P114 University of Rochester NAME S. Manly Spring 2010

= 8.89x10 9 N m 2 /C 2

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

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

Question 1. Question 2. Question 3

How many electrons are transferred to the negative plate of the capacitor during this charging process? D (Total 1 mark)

Exam 2 Solutions. = /10 = / = /m 3, where the factor of

Phys 2025, First Test. September 20, minutes Name:

Louisiana State University Physics 2102, Exam 3 April 2nd, 2009.

Physics 240 Fall 2003: Final Exam. Please print your name: Please list your discussion section number: Please list your discussion instructor:

PHYS 272 Fall 2010 Thursday, December 16, 2010

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.

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

Solution for Fq. A. up B. down C. east D. west E. south

PH2200 Practice Final Exam Summer 2003

Circuits Capacitance of a parallel-plate capacitor : C = κ ε o A / d. (ρ = resistivity, L = length, A = cross-sectional area) Resistance : R = ρ L / A

IMPORTANT Read these directions carefully:

PHYS102 Previous Exam Problems. Induction

Physics 6B. Practice Final Solutions

Calculus Relationships in AP Physics C: Electricity and Magnetism

4 pt. (in J) 3.A

Physics 2135 Exam 2 October 21, 2014

Physics 6B Summer 2007 Final

c k wt+cl I\i Physics 202 MWF1O:20 Spring 2007 (Ford) Name (printed) Name (signature as on ID) Lab Section Exam II Chapts in Young&Geller

Name (Print): 4 Digit ID: Section:

Physics 24 Exam 2 March 18, 2014

TIME OF COMPLETION NAME SOLUTION DEPARTMENT OF NATURAL SCIENCES. PHYS 1112, Exam 2 Section 1 Version 1 April 2, 2013 Total Weight: 100 points

21 MAGNETIC FORCES AND MAGNETIC FIELDS

De La Salle University Manila Physics Fundamentals for Engineering 2 Quiz No. 3 Reviewer

Physics 196 Final Test Point

Physics 42 Exam 3 Fall 2013 PRINT Name:

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.

Physics 2401 Summer 2, 2008 Exam II

Which of the following is the SI unit of gravitational field strength?

Physics 106 Sections 1 & 2 Midterm Exam #1 Fall 2011

Q1. Ans: (1.725) =5.0 = Q2.

Phys 2426: University Physics II

TIME OF COMPLETION NAME SOLUTION DEPARTMENT OF NATURAL SCIENCES. PHYS 1112, Exam 3 Section 1 Version 1 April 23, 2013 Total Weight: 100 points

Exam 2 Solutions. PHY2054 Spring Prof. Paul Avery Prof. Pradeep Kumar Mar. 18, 2014

Physics 202 Midterm Exam 2 Nov 2, 2011

Magnetism Chapter Questions

Practice Exam 1. Necessary Constants and Equations: Electric force (Coulomb s Law): Electric field due to a point charge:

EF 152 Exam 2 (E&M) - Spring, 2018 Page 1 Version: A Copy 480

Notes and Solved Problems for Common Exam 3 (Does not include Induction)

AP Physics C - E & M

Exam 2 Solutions. Answer: 3.0 W Solution: The total current is in the series circuit is 1 A, so the power dissipated in R 2 is i 2 R 2

Exam 2 Fall 2014

PS I AP Physics 2 Electromagnetic Induction Multiple Choice Questions

Multiple Choice Questions for Physics 1 BA113 Chapter 23 Electric Fields

Physics 102 Spring 2006: Final Exam Multiple-Choice Questions

= e = e 3 = = 4.98%

Solutions to PHY2049 Exam 2 (Nov. 3, 2017)

K2-04: FARADAY'S EXPERIMENT - EME K2-43: LENZ'S LAW - PERMANENT MAGNET AND COILS

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

Induction_P1. 1. [1 mark]

2006 #3 10. a. On the diagram of the loop below, indicate the directions of the magnetic forces, if any, that act on each side of the loop.

University of the Philippines College of Science PHYSICS 72. Summer Second Long Problem Set

Tactics Box 23.1 Using Kirchhoff's Loop Law

AP Physics 2 Electromagnetic Induction Multiple Choice

MasteringPhysics: Assignment Print View. Problem 30.50

Chapter 28. Direct Current Circuits

AP Physics C: Electricity and Magnetism

Physics 2220 Fall 2010 George Williams THIRD MIDTERM - REVIEW PROBLEMS

Transcription:

PHYS 1102 EXAM - II SECTION: (Circle one) 001 (TH 9:30 AM to 10:45AM) 002 (TH 3:30 PM to 4:45 PM) Your Name: Student ID: You have 1 hr 45 minutes to complete the test PLEASE DO NOT START TILL YOU ARE INSTRUCTED TO DO SO You must show all your work on the answer sheets provided to get full credit. NO OTHER SHEET IS TO BE ATTACHED TO YOUR ANSWERS. All multiple choice questions are 5 points each. For questions 15-17 Draw clear well labeled diagrams and show the chosen coordinate system, wherever applicable Write down known parameters Determine the physical principles that apply Work out the problem algebraically, showing all your steps neatly. (show all your steps to get full credit) Give reasons for your answers Put a Box around your final answers Points will be deducted for answers without units or with incorrect units. - 1 -

1. When a light bulb is connected to a 4.5 V battery, a current of 0.16 A passes through the bulb filament. What is the resistance of the filament? (a) 440 Ω (b) 9.3 Ω (c) 0.72 Ω (d) 28 Ω (e) 1.4 Ω 2. Which one of the following statements concerning the magnetic force on a charged particle in a magnetic field is true? (a) It is a maximum if the particle is stationary. (b) It is zero if the particle moves perpendicular to the field. (c) It is a maximum if the particle moves parallel to the field. (d) It acts in the direction of motion for a positively charged particle. (e) It depends on the component of the particle's velocity that is perpendicular to the field. 3. An electron traveling due south enters a region that contains a uniform magnetic field that points due east. In which direction will the electron be deflected? (a) east (b) west (c) up (d) down (e) south 4. A long, straight wire carries a 10.0-A current in the +y direction as shown in the figure. Next to the wire is a square copper loop that carries a 2.00-A current as shown. The length of each side of the square is 1.00 m. What is the direction of the net magnetic force that acts on the loop? 1.20 m y (a) +x direction (b) x direction (c) +y direction (d) y direction (e) 30 with respect to the +x direction 10.0 A 2.00 A x 1.00 m 5. Two loops carry equal currents I in the same direction. The loops are held in the positions shown in the figure and are then released. Which one of the following statements correctly describes the subsequent behavior of the loops? (a) Both loops move to the left. (b) The loops remain in the positions shown. (c) The top loop moves to the right; the bottom loop moves to the right. (d) The loops repel each other. (e) The loops attract each other. I I - 2 -

6. Two long, straight wires are perpendicular to the plane of the paper as shown in the drawing. Each wire carries a current of magnitude I. The currents are directed out of the paper toward you. Which one of the following expressions correctly gives the magnitude of the total magnetic field at the origin of the x, y coordinate system? μ I (a) B = 0 2 d y μ I (b) B = 0 2d μ0 I (c) B = d 2πd μ I (d) B = 0 O x π d d μ0 I (e) B = 2πd 7. The figure shows a uniform magnetic field that is normal to the plane of a conducting loop, which has a resistance R. Which one of the following changes will cause an induced current to flow through the resistor? (a) decreasing the area of the loop (b) decreasing the magnitude of the magnetic field (c) increasing the magnitude of the magnetic field (d) rotating the loop through 90 about an axis in the plane of the paper (e) all of the above x x x x x x x x x x x x x x x x x R x x x 8. In the figure the bar is in contact with a pair of rails and is in motion with velocity v. A uniform magnetic field (pointing downward) is present. The induced current through the resistor R is (a) From b to a (clockwise) (b) Zero (c) From a to b (counterclockwise) v B R - 3 -

The figure shows a simple RC circuit consisting of a 10.0-µF capacitor in series with a resistor. Initially, the switch is open as suggested in the figure. The capacitor has been charged so that the potential difference between its plates is 100.0 V. At t = 0 s, the switch is closed. The capacitor discharges exponentially so that 2.0 s after the switch is closed, the potential difference between the capacitor plates is 37 V. In other words, in 2.0 s the potential difference between the capacitor plates (hence its charge) is reduced to 37 % of its original value. 10 µf R Switch 9. Calculate the electric potential energy stored in the capacitor before the switch is closed. (a) 0.01 J (b) 0.02 J (c) 0.03 J (d) 0.04 J (e) 0.05 J 10. Determine the numerical value of the resistance R. (a) 1.0 10 5 Ω (b) 2.0 10 5 Ω (c) 5.0 10 5 Ω (d) 1.0 10 6 Ω (e) 2.5 10 6 Ω BONUS questions 11. Two electrons are located in a region of space where the magnetic field is zero. Electron A is at rest; and electron B is moving westward with a constant velocity. A non-zero magnetic field directed eastward is then applied to the region. In what direction, if any, will each electron be moving after the field is applied? electron A electron B (a) at rest westward (b) northward eastward (c) at rest eastward (d) southward downward, toward the earth (e) upward, away from earth westward The figure shows a uniform, 3.0-T magnetic field that is normal to the plane of a conducting, circular loop with a resistance of 1.5 Ω and a radius of 0.024 m. The magnetic field is directed out of the paper as shown. Note: The area of the non-circular portion of the wire is considered negligible compared to that of the circular loop. B R 12. What is the average current around the loop if the magnitude of the magnetic field is doubled in 0.4 s? (a) 2.8 x 10 3 A, clockwise (b) 4.5 x 10 3 A, clockwise (c) 4.5 x 10 3 A, counterclockwise (d) 9.0 x 10 3 A, clockwise (e) 9.0 x 10 3 A, counterclockwise - 4 -

13. If the magnetic field is held constant at 3.0 T and the loop is pulled out of the region that contains the field in 0.2 s, what is the magnitude of the average induced emf in the loop? (a) 8.6 x 10 3 V (b) 9.8 x 10 2 V (c) 2.7 x 10 2 V (d) 5.4 x 10 2 V (e) 6.4 x 10 2 V 14. If the magnetic field is held constant at 3.0 T and the loop is pulled out of the region that contains the field in 0.2 s, at what rate is energy dissipated in R? (a) 1.8 x 10 2 W (b) 3.6 x 10 2 W (c) 3.8 x 10 3 W (d) 2.7 x 10 4 W (e) 4.9 x 10 4 W - 5 -

15. For the circuit shown below (a) Write down three equations using Kirchoff s loop rule (for loop ABEF and loop BCDE) and junction rule (at junction B). (b) Solve the above equations to determine the magnitude of the potential difference across the 5.0 resistor in the drawing (V 1 = 7.0 V and V 2 = 16.0 V). (c) Which end of the resistor is at the higher potential (i.e. left end or right end)? (15 points) - 6 -

16. In the circuit below, all bulbs are identical (i.e. they have the same filament resistance, R) (a) Find the current through each of the bulbs in term of the battery voltage V and the resistance of each bulb R (or use V = 120Volts, R = 60Ω ). Label the currents I A, I B, I C, etc. (b) Rank the brightness of the bulbs in order, from most to least bright. Explain briefly the reason for your ranking. (c) If bulb C is removed from its socket what happens to the brightness of each of the remaining bulbs (A, B, D). Explain with reasons or show calculations in support of your answer. (20 points) A B C D - 7 -

17. A positively charged particle of mass 6.40 10-8 kg is traveling due east with a speed of 30 m/s and enters a 0.32 T uniform magnetic field (shaded square region). The particle moves through onequarter of a circle in a time of 5.80 10-3 s, at which time it leaves the field heading due south. All during the motion the particle moves perpendicular to the magnetic field. (a) Determine the direction of the magnetic field and show it on the diagram (i.e. is it pointing left, right, up, down, into or out of the page?) (out of page) (b) determine the radius of the particle s circular path. (0.111 m) (c) Calculate what must be the centripetal force required to keep this particle moving in its circular path? (d) What is the magnitude of the magnetic force acting on the particle? 0.00052 N (e) What is the magnitude of the charge on the particle? 5.42e-05 C (15 points) v - 8 -