ECE470 EXAM #3 SOLUTIONS SPRING Work each problem on the exam booklet in the space provided.

Similar documents
2. Work each problem on the exam booklet in the space provided.

LECTURE 23 SYNCHRONOUS MACHINES (3)

Solution of Tutorial 5 Drive dynamics & control

Lecture (20) DC Machine Examples Start of Synchronous Machines

Position and Speed Control. Industrial Electrical Engineering and Automation Lund University, Sweden

60 p. 2. A 200hp 600V, 60 Hz 3-phase induction motor has start code F. What line current should be expected at starting? 4 marks.

University of Jordan Faculty of Engineering & Technology Electric Power Engineering Department

ELE B7 Power Systems Engineering. Power System Components Modeling

8. INVERSE Z-TRANSFORM

v v at 1 2 d vit at v v 2a d

Examination Electrical Machines and Drives Et4-117 Thursday, October 30, 2003 from 9.00 to 12.00

Overview: Induction Motors. Review Questions. Why the Rotor Moves: Motor Speed

In the diagram below, the rotation continues until N-S alignment, resulting in lock-up that is, if nothing is done to prevent it.

Chapter 4. Synchronous Generators. Basic Topology

Section 4.2 Analysis of synchronous machines Part II

Lec 3: Power System Components

UNIVERSITY OF IOANNINA DEPARTMENT OF ECONOMICS. M.Sc. in Economics MICROECONOMIC THEORY I. Problem Set II

PHYSICS 211 MIDTERM I 22 October 2003

Solution of Tutorial 2 Converter driven DC motor drive

Chapter 3. Generator and Transformer Models; The Per-Unit System

a = Acceleration Linear Motion Acceleration Changing Velocity All these Velocities? Acceleration and Freefall Physics 114

Chapter Newton-Raphson Method of Solving a Nonlinear Equation

n f(x i ) x. i=1 In section 4.2, we defined the definite integral of f from x = a to x = b as n f(x i ) x; f(x) dx = lim i=1

Note: Please use the actual date you accessed this material in your citation.

Electrical Machines. 1. Transformers 800 V. As the slope is uniform the induced voltage is a square wave. 01. Ans: (b) Sol: 400/200 V 50 Hz

Synchronous Machines - Structure

When current flows through the armature, the magnetic fields create a torque. Torque = T =. K T i a

CISE 301: Numerical Methods Lecture 5, Topic 4 Least Squares, Curve Fitting

DC Shunt Excited Motor

WELCOME TO THE LECTURE

a n = 1 58 a n+1 1 = 57a n + 1 a n = 56(a n 1) 57 so 0 a n+1 1, and the required result is true, by induction.

Lecture Set 8 Induction Machines

15 Problem 1. 3 a Draw the equivalent circuit diagram of the synchronous machine. 2 b What is the expected synchronous speed of the machine?

Chapter 6: Vector Analysis

Electric Machines I Three Phase Induction Motor. Dr. Firas Obeidat

Electromagnetic Energy Conversion Exam 98-Elec-A6 Spring 2002

Physics 4B. A positive value is obtained, so the current is counterclockwise around the circuit.

Cross-section section of DC motor. How does a DC Motor work? 2 Commutator Bars N X. DC Motors 26.1

BASIC INDUCTION MOTOR CONCEPTS

Dynamics of the synchronous machine

Physics Honors. Final Exam Review Free Response Problems

PHY2049 Exam 2 solutions Fall 2016 Solution:

CHAPTER 6 : LITERATURE REVIEW

P E R E N C O - C H R I S T M A S P A R T Y

ECSE Linearity Superposition Principle Superposition Example Dependent Sources. 10 kω. 30 V 5 ma. 6 kω. 2 kω

Solution of Tutorial 3 Synchronous Motor Drives

Lecture 4: Piecewise Cubic Interpolation

Lecture (5) Power Factor,threephase circuits, and Per Unit Calculations

Electric Machinery and Apparatus 1 AE1B14SP1. Miroslav Chomát room B3-248

DCDM BUSINESS SCHOOL NUMERICAL METHODS (COS 233-8) Solutions to Assignment 3. x f(x)

Selected Student Solutions for Chapter 2

POLYPHASE CIRCUITS. Introduction:

Kinematics Quantities. Linear Motion. Coordinate System. Kinematics Quantities. Velocity. Position. Don t Forget Units!

ENGG Fundamentals of Electrical Circuits and Machines Final Examination

APPM 1360 Exam 2 Spring 2016

3 d Calculate the product of the motor constant and the pole flux KΦ in this operating point. 2 e Calculate the torque.

Dennis Bricker, 2001 Dept of Industrial Engineering The University of Iowa. MDP: Taxi page 1

Torque generation with Electrical Machines. Industrial Electrical Engineering and Automation Lund University, Sweden

Phys 4321 Final Exam December 14, 2009

n α j x j = 0 j=1 has a nontrivial solution. Here A is the n k matrix whose jth column is the vector for all t j=0

Applied Statistics Qualifier Examination

HIGHER SCHOOL CERTIFICATE EXAMINATION MATHEMATICS 4 UNIT (ADDITIONAL) Time allowed Three hours (Plus 5 minutes reading time)

Physics 121 Sample Common Exam 2 Rev2 NOTE: ANSWERS ARE ON PAGE 7. Instructions:

Name: SID: Discussion Session:

Lecture 3: Electrical Power and Energy

ECE 325 Electric Energy System Components 6- Three-Phase Induction Motors. Instructor: Kai Sun Fall 2015

DC Machines. Introduction - commutation. Commutation. I. Introduction Electrical Energy Technology

IMPORTANT. Read these directions carefully:

The University of New South Wales FINAL EXAMINATION. Session ELEC4613 ELECTRIC DRIVE SYSTEMS. 1. Time allowed 3 hours

Please write neatly!

Control of Wind Turbine Generators. James Cale Guest Lecturer EE 566, Fall Semester 2014 Colorado State University

MAE140 - Linear Circuits - Winter 16 Midterm, February 5

Math 426: Probability Final Exam Practice

MAE140 - Linear Circuits - Fall 13 Midterm, October 31

Voltage Induced in a Rotating Loop

Mathematics Extension 1

x=0 x=0 Positive Negative Positions Positions x=0 Positive Negative Positions Positions

MAE140 - Linear Circuits - Winter 16 Final, March 16, 2016

SAINT IGNATIUS COLLEGE

Lesson 17: Synchronous Machines

IVE(TY) Department of Engineering E&T2520 Electrical Machines 1 Miscellaneous Exercises

Dynamics of the synchronous machine

Physics 24 Exam 1 February 18, 2014

Mathematics Extension 2

Candidates must show on each answer book the type of calculator used.

JEE(MAIN) 2015 TEST PAPER WITH SOLUTION (HELD ON SATURDAY 04 th APRIL, 2015) PART B MATHEMATICS

Year 12 Mathematics Extension 2 HSC Trial Examination 2014

LESSON 20 ALTERNATOR OPERATION OF SYNCHRONOUS MACHINES

Symmetrical Components Fall 2007

Problem Set 7: Monopoly and Game Theory

Lecture 36. Finite Element Methods

Chapter Newton-Raphson Method of Solving a Nonlinear Equation

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

Overview Electrical Machines and Drives

Chapter 6. Infinite series

Applied Physics Introduction to Vibrations and Waves (with a focus on elastic waves) Course Outline

2. The Laplace Transform

Problem Free Expansion of Ideal Gas

ECE 2210 Final given: Spring 15 p1

0.1 Properties of regulated functions and their Integrals.

Transcription:

C470 XAM # SOLUTIOS SPRIG 07 Intructon:. Cloed-book, cloed-note, open-mnd exm.. Work ech problem on the exm booklet n the pce provded.. Wrte netly nd clerly or prtl credt. Cro out ny mterl you do not wnt rded. me: Problem : /0 Problem : /0 Problem : /0 Problem 4: /40 Totl: /00 P I,ph Q I,ph I jx o V V 0 V δ K ω I Ueul quton P I,ph P I,ph V X n(δ) P e P m P out P rot Q I,ph Q I,ph V X V X co(δ)

Problem (0 Pont) 0 0 4 α 4 0 x 4 / π π 4 π π α 0 0 () Wrte our ndependent equton (three Ampere lw nd one Gu lw) n,,, nd 4. 4 4 ( ) ( ) ( ) ( ) π π π π 0 µ o RL µ o RL µ o RL µ o 4 RL ( 0 4 ) ( ) ( (b) Solve the bove equton or,,, nd 4, nd plot uncton o α n the r p. Alterntvely, ue uperpoton nd plot uncton o α n the r p nd clerly how the -eld o both ull-ptch col ech h / turn. 4 0 0 (c) Wrte down the undmentl component o the Fourer ere expnon o (α). (You do not need to mply th expreon.) (α) 4 [ ( co α π ) ( co α π )] 4 π 4 6 6 π co α )

Problem (0 Pont) bx x θ x b b A our-pole, two-phe ynchronou mchne h two ttor wndn (- nd b-b ) nd one rotor eld wndn (- ). () By npecton o the vrou mnetc xe o th mchne, ll n the mn nductnce below: λ λ b λ L l L m 0 M co θ 0 L l L m M n θ b M co θ M n θ L l L m (b) Fnd the mnetc coenery W m W m(, b,, θ). W m W m(, b,, θ) λ λ b b λ (L l L m ) ( b) (L l L m ) M co θ M b n θ (c) Fnd the electromnetc torque T e T e (, b,, θ) developed by th mchne. T e W m ( ) p W m M n θ M b co θ θ m θ

Problem (0 Pont) P I,ph Q I,ph I jx o V V 0 V δ K ω I Strtn wth how tht: S I,ph ṼĨ P I,ph V X Q I,ph V X n(δ) V X co(δ) S I,ph ṼĨ ) (Ṽ Ẽ Ṽ jx (Ṽ ) Ṽ Ẽ j jx j j ṼṼ X j V X j ṼẼ X j V e j(0o δ) X j V j V [co(δ) j n(δ)] X X V n(δ) j V V co(δ) X } X {{} X }{{ } P I,ph j Q I,ph 4

Problem 4 (40 Pont) A three-phe ynchronou motor wth nelble rmture retnce nd ynchronou rectnce X.44 Ω opertn t the ollown rted condton uppled by the mnucturer nmeplte dt: FRQ VOLTS AMP RATD RPM PF PAS XCITATIO XCITATIO P VOLTS AMP 60 6600 404,000 00.0 5 5. () Wht the number o pole p per phe? n 0 p p 0 n 0 60 00 6 pole/phe (b) Wht the ht peed ω m n mechncl rd/? ( ( ω m ω π60 40π p) 6) 5.7 mech. rd/ rev π rd or ω m n mn mn rev 60 ec 00 π 60 40π 5.7 mech. rd/ (c) Wht the rted mechncl power output P out (W) o the motor ( hp 746 W)? P out, 000 hp 746 W hp 5.666 MW (d) Wht the rted mechncl torque output T out (-m) o the motor? T out P out ω m 5.666 06 40π 4.666 k-m (e) Wht the three-phe rel power P I,ph (W) nto the motor under rted condton? P I,ph V L I L co ϕ V LL I L co ϕ 6600 404.0 6.050 MW () Wht the ecency η o th motor percent (%)? η P out P I,ph 5.666 06 6.05 0 6 97.6% () Wht re the mechncl power loe P rot (W) o the motor? P I,ph P e P m P out P rot P rot P I,ph P out 6.050 5.666 0.84 MW 84 kw (h) Wht the torque nle δ (de) o th motor under rted condton? P I,ph Ṽ Ẽ X Ẽ n δ X P I,ph Ṽ n(δ).44 6.05 06 6600/ 45.8 V 5

Q I,ph Ṽ X Ṽ Ẽ X co(δ) 0 Ẽ co δ Ṽ 6600 80.5 V tn δ Ẽ n δ Ẽ co δ 45.8 80.5 δ tn 0.899 4.0 o 0.899 () Wht the per-phe enerted volte Ẽ (V) under rted condton? Ẽ ( Ẽ n δ) ( Ẽ co δ) (45.8 80.5 54 V (j) Wht the bck em contnt K () o th motor? Ẽ K ω I K Ẽ ω I Alternte Soluton: 54 0π 5..64 Ĩ 404 0 o Ẽ jx Ĩ Ṽ j.44 404 6600 80.5 j45.76 54 4.0 o V Ẽ δ 6