Problem 3.1 Magnetic Moments + - I

Similar documents
Faraday s Law of Induction I

AP Physics C Mechanics Objectives

LR Circuits. . The voltage drop through both resistors will equal. Hence 10 1 A

The initial magnetization curve shows the magnetic flux density that would result when an increasing magnetic field is applied to an initially

Electromagnetism. Topics Covered in Chapter 14:

Physics 1c Practical, Spring 2015 Hw 3 Solutions

Limits to Statics and Quasistatics

2005 AP PHYSICS C: ELECTRICITY AND MAGNETISM FREE-RESPONSE QUESTIONS

Magnetostatics III. P.Ravindran, PHY041: Electricity & Magnetism 1 January 2013: Magntostatics

Lecture 24. April 5 th, Magnetic Circuits & Inductance

E102. Study of the magnetic hysteresis

Chapter 5: Static Magnetic Fields

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.

Magnetic Force on a Moving Charge

2.004 Dynamics and Control II Spring 2008

-magnetic dipoles are largely analogous to electric dipole moments -both types of dipoles

MAGNETIC PROBLEMS. (d) Sketch B as a function of d clearly showing the value for maximum value of B.

Massachusetts Institute of Technology Department of Electrical Engineering and Computer Science Electric Machines

SYLLABUS(EE-205-F) SECTION-B

PHYS 1442 Section 004 Lecture #14

Lecture 10 Induction and Inductance Ch. 30

Lecture Notes ELEC A6

Definition Application of electrical machines Electromagnetism: review Analogies between electric and magnetic circuits Faraday s Law Electromagnetic

Physics 208, Spring 2016 Exam #3

Magnetic field creation (example of a problem)


PHY 131 Review Session Fall 2015 PART 1:

Reading Assignments Please see the handouts for each lesson for the reading assignments.

Magnetism. Ram Seshadri MRL 2031, x6129, Some basics:

Magnetism. a) Ferromagnetic materials are strongly attracted to magnets. b) Paramagnetic materials are weakly attracted to magnets

CHAPTER 2 MAGNETISM. 2.1 Magnetic materials

University of California, Berkeley Physics H7B Spring 1999 (Strovink) SOLUTION TO PROBLEM SET 11 Solutions by P. Pebler

Exam 2 Fall 2014

PHYS 2212 (Modern) Review. Electric Force and Fields

SCS 139 Applied Physic II Semester 2/2011

Physics 102 Spring 2006: Final Exam Multiple-Choice Questions

Magnetism & Electromagnetism

Electromagnetic Induction & Inductors

PRACTICE EXAM 1 for Midterm 2

Physics for Scientists & Engineers 2

Mass of neutron=1.675 X kg. SECTION-A

MAGNETIC FIELDS & UNIFORM PLANE WAVES

Physics 2220 Fall 2010 George Williams THIRD MIDTERM - REVIEW PROBLEMS

MASSACHUSETTS INSTITUTE OF TECHNOLOGY Department of Physics Spring 2014 Final Exam Equation Sheet. B( r) = µ o 4π

Outside the solenoid, the field lines are spread apart, and at any given distance from the axis, the field is weak.

Figure 1: Left: Image from A new era: Nanotube displays (Nature Photonics), Right: Our approximation of a single subpixel

Problem Solving: Faraday s Law & Inductance. Faraday s Law

AP Physics C. Magnetism - Term 4

Physics 2B Winter 2012 Final Exam Practice

Magnetic Quantities. Magnetic fields are described by drawing flux lines that represent the magnetic field.

MAGNETIC DIPOLES, HYSTERESIS AND CORE LOSES

Texas A & M University Department of Mechanical Engineering MEEN 364 Dynamic Systems and Controls Dr. Alexander G. Parlos

Warsaw University of Technology Electrical Department. Laboratory of Materials Technology KWNiAE

cancel each other out. Thus, we only need to consider magnetic field produced by wire carrying current 2.

IE1206 Embedded Electronics

Torque on a Current Loop

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

Electromagnetism - Lecture 10. Magnetic Materials

Faraday s Law. Underpinning of Much Technology

Version 001 HW 22 EM Induction C&J sizemore (21301jtsizemore) 1

ME1633: Integration of Physics, Motion and Metrology

Review of Basic Electrical and Magnetic Circuit Concepts EE

DEHRADUN PUBLIC SCHOOL I TERM ASSIGNMENT SUBJECT- PHYSICS (042) CLASS -XII

CBSE QUESTION PAPER. PHYSICS (Theory)

FB-DC6 Electric Circuits: Magnetism and Electromagnetism

MAGNETIC CIRCUITS. Magnetic Circuits

QUALIFYING EXAMINATION, Part 1. 2:00 PM 5:00 PM, Thursday September 3, 2009

Physics 1402: Lecture 18 Today s Agenda

Lecture 13: Magnetic Sensors & Actuators

Electromagnetic Induction Faraday s Law Lenz s Law Self-Inductance RL Circuits Energy in a Magnetic Field Mutual Inductance

PHYS 1444 Section 003 Lecture #18

Driven RLC Circuits Challenge Problem Solutions

IE1206 Embedded Electronics Le2

University of Maryland Department of Physics. Spring 2009 Final Exam 20. May (175 points) Post grades on web? (Initial, please) Yes No

FIRST TERM EXAMINATION (07 SEPT 2015) Paper - PHYSICS Class XII (SET B) Time: 3hrs. MM: 70

Magnetized Material (contd.) and Electromagnetic Induction

Introduction to AC Circuits (Capacitors and Inductors)

Physics 1302W.400 Lecture 33 Introductory Physics for Scientists and Engineering II

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.

Slide 1 / 26. Inductance by Bryan Pflueger

Chapter 23 Magnetic Flux and Faraday s Law of Induction

Physics 202, Lecture 14

Fachgebiet Leistungselektronik und Elektrische Antriebstechnik. Test Examination: Mechatronics and Electrical Drives

Problems in Magnetic Properties of Materials

Inductance, RL Circuits, LC Circuits, RLC Circuits

AP Physics C. Inductance. Free Response Problems

Student Exploration: Electromagnetic Induction

2.004 Dynamics and Control II Spring 2008

MAGNETIC EFFECTS OF CURRENT AND MAGNETISM

ε induced Review: Self-inductance 20.7 RL Circuits Review: Self-inductance B induced Announcements

Module M2-1 Electrical Engineering

ELECTROMAGNETIC OSCILLATIONS AND ALTERNATING CURRENT

Physics 9 Wednesday, April 2, 2014

Part 4: Electromagnetism. 4.1: Induction. A. Faraday's Law. The magnetic flux through a loop of wire is

EDEXCEL NATIONAL CERTIFICATE/DIPLOMA UNIT 5 - ELECTRICAL AND ELECTRONIC PRINCIPLES NQF LEVEL 3. OUTCOME 3 - MAGNETISM and INDUCTION

DO PHYSICS ONLINE MOTORS AND GENERATORS FARADAY S LAW ELECTROMAGNETIC INDUCTION

CHAPTER 7 ELECTRODYNAMICS

Chapter 30 Sources of the magnetic field

III.Sources of Magnetic Fields - Ampere s Law - solenoids

MASSACHUSETTS INSTITUTE OF TECHNOLOGY Department of Physics Spring Experiment 5: Faraday s Law

Transcription:

MASSACHUSETTS NSTTUTE OF TECHNOLOGY Department of Electrical Engineering and Computer Science 6.007 Electromagnetic Energy: From Motors to Lasers Spring 2011 Problem Set 3: Magnetic Materials and Magnetic Circuits Due Wednesday, February 23, 2011 The reading for this problem set is chapters 13, 14 and 16 from Shen and Kong. Problem 3.1 Magnetic Moments Magnetic materials have different values of magnetic permeability µ depending on their internal properties. nternal magnetic fields are produced by electrons orbiting the nuclei of the atoms. This can be modeled by a loop of current which produces a magnetic moment m. B Z Y X - f we define the area of the loop to be πa 2, the magnetic moment is represented as m = πa 2 ẑ (a) Miscroscopic regions where magnetic moments are alligned are called domains. The arrows in the figures below indicate domains. Assume there is some magnetic field oriented vertically as you look at the paper. Circle the materials which have an overal magnetic moment. (b) Which material is (i) a paramagnet? 1

6.007 Spring 2011 Problem Set 3: Magnetic Materials and Magnetic Circuits (ii) a ferromagnet? (iii) an antiferromagnet? Problem 3.2 Magnetic Materials This problem develops your understanding of the properties of magnetic materials. n this problem, we ll explore one of the most common uses of magnetic materials in engineering today: the data storage medium in hard disk drives. (a) Give the consitutive relation relating B, H, and M. Sketch B vs. H for a material with hysteresis. Label 1 and 0 on your sketch corresponding to digital storage states. (b) The sketches below represent the magnetization of the domains in a magnetic material corresponding to the four intercepts on the axes of your hysteresis curve. Label points (a), (b), (c), and (d) on your sketch. (a) (b) (c) (d) (c) As discussed in class, the points at which the hysteresis curve crosses the B and H axis are known respectively as the Remanence and Coercivity. The coercivity and remanence values are given below for two common magnetic materials: Coercivity, Hc (A/m) Remanence, Br (T) Permalloy 40 0.62 CoPtCr 140000 0.4398 Using the information above, on the same set of axes, sketch and label hysteresis curves corresponding to the two magnetic materials. Which material would you use for the hard drive platter? (d) For 1 mm3 of the material you have chosen, how much energy is lost per cycle? Problem 3.3 Design an nductor Figure 3.3.1 shows a toroidal core that we have pulled out of our parts bin and want to make an inductor from. The toroid has dimensions Ri = 13 cm, Ro = 15 cm and D = 2 cm. The permeability of the material is µ = 1400µ0 and the material saturates when the B field inside it reaches 1.8 T. (a) How many turns (N) should you wrap aroung the core to make an inductor with L = 2 mh? (b) How much current can your inductor carry before the core saturates? (c) How much magnetic energy is your inductor storing when the current is at the point of saturating the core material? Noting that it takes relatively little current to saturate this core, we might want to try to increase the capacity by gapping the core, as is shown in Figure 3.3.2 2

6.007 Spring 2011 Problem Set 3: Magnetic Materials and Magnetic Circuits Depth D λ N turns R o R i Figure 3.3.1: The basic inductor you are to design. Depth D λ N turns R i g R o Figure 3.3.2: The second inductor you are to design. meaning cutting an air-gap as shown in Figure 3.3.2. This gap is to have a dimension of 3 mm and will be filled with, of course, air. (d) Draw a magnetic circuit diagram for this situation. (e) How many turns must you now wind on the toroid to make the inductance be L = 2 mh? (f) How much current can this second inductor carry before the core saturates? (g) How much energy does it store at the point of saturation? 3

6.007 Spring 2011 Problem Set 3: Magnetic Materials and Magnetic Circuits Problem 3.4 EMF in a Generator A piece of wire is bent and rotated in a uniform and steady magnetic flux density, B, as shown in the figure above. The frequency of rotation is f rotations per second. The dashed line indicates the position the wire at time t = 0. (a) Plot the induced emf between terminals a and b as a function of t. Show the polarity of the induced voltage, and indicate all of the relevant quantities on the plot. (When indicating polarity of the induced voltage, assume terminal b is connected to ground.) (b) Start with the wire in the position corresponding to t = 0 (dashed line). Do not rotate the wire, but instead start decreasing the magnitude of the magnetic flux density B, so that B(t) = B o kt, where k is a constant. What is the voltage between terminals a and b? Will the wire experience a force and start to rotate? Problem 3.5 Short Problems on Magnetic Fields and Forces Content removed due to copyright restrictions. Shen, Liang, and Jin Au Kong. Please see problems 16.8 and 16.9 in Applied Electromagnetism. 3rd ed. Boston, MA: PWS Engineering, 1995. SBN: 9780534947224. 4

MT OpenCourseWare http://ocw.mit.edu 6.007 Electromagnetic Energy: From Motors to Lasers Spring 2011 For information about citing these materials or our Terms of Use, visit: http://ocw.mit.edu/terms.