UNIT I INTRODUCTION Part A- Two marks questions

Size: px
Start display at page:

Download "UNIT I INTRODUCTION Part A- Two marks questions"

Transcription

1 ROEVER COLLEGE OF ENGINEERING & TECHNOLOGY ELAMBALUR, PERAMBALUR DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING DESIGN OF ELECTRICAL MACHINES UNIT I INTRODUCTION 1. Define specific magnetic loading. 2. Define specific electric loading. 3. What is optimum design? 4. Define rating. 5. Mention the different types of duties. 6. State the properties of insulating materials. 7. What are the major considerations to evolve a good design of electrical machines? 8. What are the major limitations in machine design? 9. How materials are classified according to their degree of magnetism? 10. Classify the insulating materials. 11. Write the requirements of conducting materials. 12. Define duty factor. 13. List the types of magnetic materials. 14. Write down the insulating materials used for wires. 15. What do you mean by standard specifications 16. Discuss about the various types of thermal ratings of the electrical machines 17. Discuss about the various Insulating materials and their grades. 18. Discuss about major considerations and limitations in machine design. 19. What are the main groups of electrical conducting materials? Describe the properties and applications of those materials. 20. Derive the expression for heating and cooling co efficient. 21. A field coil has a heat dissipating surface of 0.15m2 and a length of mean turn of 1m. It dissipates loss of 150w, the emissivity of 34 W/m2.Esstimate the final steady state temperature rise of coil and its time constant if the area of coil is 100X50 m2, Specific heat of copper is 390 J/Kg-c.The space factor is 0.56.Copper wewighs 8900kg/m3 UNIT II DC MACHINES 1. What is real and apparent flux density? 2. Define field form factor. 3. Define i)gap contraction factor for slots. ii)gap contraction factor for ducts. 4. Define stacking factor. 5. Define leakage coefficient. 6. List the guiding factors for selection of number of poles. 7. Define commutator segment pitch. 8. Name any two methods to reduce armature reaction. 9. What is slot loading? 10. List the methods used for estimating the mmf for teeth. 11. What are the different types of leakage fluxes? 12. What is unbalanced magnetic pull? 1. Determine the air gap length of a D.C. machine from the following particulars: Gross length of core = 0.12 m; number of ducts = one and is 10mm wide. Slot pitch = 25 mm; slot width = 10mm; Carter s coefficient for slots and ducts = 0.32, gap density at pole

2 centre =0.7Wb/m2, mmf for the magnetic circuit = 3900A; mmf required for iron parts of magnetic circuit = 800A. 2. calculate the mmf required for the air gap length of a machine having core length of 0.32m including 4 ducts of 10mm each pole arc=0.19m, slot pitch=65.4mm,lg=5m, flux=52 mwb,kcs=0.18 for opening /gap=1 & duct is 0.28 opening/gap= A laminated tooth of armature steel in an electrical machine is 30 mm long and has a tapper B(wb/m^2) at (x10^3)a/m such that maximum width is 1.4 times of minimum width. Estimate the mmf required for a mean flux density of 1.9 wb/m 2 using Simpson's method. 4. Explain in detail about the selection of number of poles. 5. Derive an expression of output equation for dc machine. 6. Complete the following design for a 92 kw, 220 V, 1480 rpm, d.c shunt motor having full load efficiency of 89.76%. Assume a specific magnetic & electric loading (Bav) as 0.545T and ac/m. Given that the ratio pole arc/pole pitch = Select a design which gives a square pole face. i. Number of poles ii. Length of core iii. Diameter of armature core iv. Pole pitch v. Armature mmf per pole 7. Derive the relation between real and apparent flux densities (Breal & Bapp.). 8. Find the main dimension of 200 kw, 250 V, 6 pole, 1000 rpm generator. The maximum value of flux density in the gap is 0.87 Wb/m2 and the ampere conductors per meter of armature periphery are 31,000. The ratio of pole arc to pole pitch is 0.67 and the efficiency is 91%. Assume the ratio of length of core to pole pitch = Determine the diameter and length of armature core of a 55 kw, 110 V, 1000 rpm, 4 pole shunt generator, assuming the specific electric and magnetic loadings as amp.cond/m and 0.5Wb/m2 respectively. The pole arc should be about 70% of pole pitch and length of core about 1.1 times the pole arc. Allow 10 ampere for the field current and assume a voltage drop of 4 volt for the armature circuit. Specify the winding used and also determine suitable value for the number of armature conductors and the number of slots. 10. Compute apparent flux density Bapp in teeth of dc machine when the real flux density is 2.15 wb/m2,slot pitch is 28 mm, slot width is 10 mm and gross core length is 0.35m, the no. of ventilating ducts 4 each of 10 mm, mmf and a flux density is 2.15 wb/m2 & A/m, Ki= Design a suitable commutator for a 350kW, 600 rpm. 440V, 6 pole d.c. generator having an armature diameter of 0.75m, the number of coils = 288. Assume suitable values wherever necessary.

3 UNIT III TRANSFORMERS 1. Write down the output equations of single and thee phase transformer? 2. Define window space factor. 3. why stepped cores are used for transformer? 4. Distinguish between core and shell type transformer. 5. Give the relation between emf per turn and kva rating of machines 6. What are the factors affecting the choice of flux density of core in a transformer. 7. List the different methods of cooling of transformer. 8. How heat dissipates in transformer? 9. Define iron space factor. 10. Write down the equation for leakage reactance. 1. Deduce the expression for output equation of single phase and three phase transformer.(16) 2. Calculate the core and window areas required for a 1000 kva, 6600/400 V, 50Hz, single phase core type transformer. Assume a maximum flux density of 1.25 Wb/m2 and a current density of 2.5 A/mm2. Volt per turn = 30 V and window space factor = Determine the dimensions for core and yoke for a 5 kva, 50 Hz, single phase core type transformer. A rectangular core is used with long side twice as long as short side. The window height is 3 times the width, voltage per turn is 1.8 V, space factor 0.2; current density 1.8 A/mm2, flux density 1 Wb/m2. 4. Estimate the main dimension including winding conductor area of a 3 phase. /λ core type transformer rated at 300 kva, 6600/440 V, 50 Hz. A suitable core with three steps having a circumscribing circle of 0.25m diameter and a leg spacing of 0.4m is available. The emf per turn is 8.5 V. Assume a current density of 2.5 A/mm2, a window space factor of 0.28, and a stacking factor of Determine the main dimensions of the core, the number of turns, the cross sectional area of conductors in primary and secondary windings of a 100 kva, 2200 / 480 V, 1- phase, core type transformer, to operate at a frequency of 50 Hz, by assuming the following data. Approximate volt per turn = 7.5 volt. Maximum flux density = 1.2 Wb / m2. ratio of effective cross sectional area of core to square of diameter of circumscribing circle is 0.6. Ratio of height to width of window is 2. Window space factor = Current density = 2.5 A/mm2. 6. Calculate the dimensions of the core, the number of turns and the cross sections of the conductors for a 100 kva, 2300/400 V, 50 Hz, single phase Shell Type Transformer assuming: ratio of magnetic and electric loadings (i.e., flux and secondary mmf at full load), , maximum flux density 1.1 Wb/m2, current density A/m2. Window space factor, 0.3, ratio of depth of stacked core to width of central limb, 2.6, ratio of height to width of window, 2.5; stacking factor The tank of 1250 kva, natural oil cooled transformer has the dimensions length, width and height as 0.65 x 1.55 x 1.85 m respectively. The full load loss = 13.1 kw, loss dissipation due to radiations = 6 W / m2- C, loss dissipation due to convection = 6.5 W / m2 C, improvement in convection due to provision of tubes = 40%, temperature rise = 40 C, length of each tube = 1m, diameter of tube = 50mm. Find the number of tubes for this transformer.

4 Neglect the top and bottom surface of the tank as regards the cooling.(16) 8. Describe about the optimum design of transformer 9. Explain in detail about cooling methods or transformers UNIT IV INDUCTION MOTORS 1. Define dispersion coefficient. 2. What is crawling and cogging? 3. What is run away period? 4. List the main parts of an induction motor 5. Why length of airgap in an induction motor kept at minimum possible range? 6. What are the factors to be considered for estimating the length of aigap in an induction motor? 7. How crawling can be prevented by design in an induction motor? 8. Write-down the output equation of an induction motor? 9. Define stator slot pitch. 10. What are the factors to be considered for the choice of specific electric loading? 11. Why wound rotor construction is adopted? 12. How the induction motor can be designed for best power factor? 13. Where mush windings are used? 14. What are the methods adopted to reduce harmonic torques? 15. What happens if the air-gap of an induction motor is doubled? 1. 1.Deive the expression for output equation of three phase induction motor.(8) 2. Determine the approximate diameter and length of the stator core, the number of stator slots and the number of conductors for a 11 kw, 400 V, 3φ, 4 pole, 1425 rpm delta connected Induction motor. Adopt a specific magnetic loading of 0.45 Wb/m2 and a specific electric loading of 23,000 A/m. Assume full load efficiency and power factor as 0.85 and 0.88 respectively. The ratio of core length to pole pitch is 1. The stator employs a double layer winding. 3. Find the values of diameter and length of stator core of a 7.5 kw, 220V, 50 Hz,4 pole, 3 phase induction motor for best power factor. Given: Specific magnetic loading = 0.4 Wb/m2; specific electric loading = A/m; efficiency = 0.86 and power factor = Also find the main dimensions if the ratio of core length to pole pitch is unity. 4. Calculate the equivalent resistance of rotor per phase with respect to stator, the current in each bar and end ring and the total copper loss for a 415 V, 50 Hz, 4 pole, 3 phase induction motor having the following data: Stator: Slots = 48, conductors in each slot = 35, current in each conductor = 10 A Rotor: Slots = 57; length of each bar = 0.12m area of each bar = mm2 and mean diameter of end ring = 0.2 m area of each end ring = 175 mm2. Resistivity of copper is 0.02 /m and mm2.full load power factor is Design a cage rotor for a 18.8Hp, 3phase, 440V, 50Hz, 1000 rpm, induction motor,having full load efficiency of 0.86, P.F = D= 0.25m, L=0.14m, Zss/Ss = 54.Assume missing data if any.

5 6. A 15 kw, three phase, 6 pole, 50 Hz, squirrel cage induction motor has the following data, stator bore dia = 0.32m, axial length of stator core = m, number of stator slots = 54, number of conductor / stator slot = 24, current in each stator conductor = 17.5 A, full load P.F = 0.85 lag. Design a suitable cage rotor giving number of rotor slots section of each bar and section of each ring. The full speed is to be 950 rpm, use copper for rotor bar and end ring onductor. Resistivity of copper is 0.02ohm-m. 7. A 90 kw, 500V, 50 Hz, three phase, 8 pole induction motor has a star connected stator winding accommodated is 63 slots with a 6 conductors / slot. If slip ring voltage, an open circuit is to be about 400V at no load find suitable rotor winding. Calculate number of rotor slots, number conductors / slot, coil span, number of slots per pole. P.F = 0.9 and the efficiency is Determine the approximate diameter and length of stator core, the number of stator slots and the number of conductors for a 20 kw, 400V, 3 phase, 4pole, 1200rpm, delta connected induction motor. Bav =0.5T, = 0.82, ac = 26,000 amp.cond/m, power factor = 0.8, L/ = 1, double layer stator winding. UNIT V SYNCHRONOUS MACHINES 1. Define short circuit ratio? 2. What is run away speed? 3. Write down the factors to be considered for the selection of armature slots. 4. Give the need of damper winding in synchronous machine. 5. Write down the equation for no load field mmf per pole and also the length of air gap at the Centre of the pole. 6. Differentiate between salient pole and cylindrical pole alternators. 7. Mention the factors that govern the design of field system of the alternator. 8. What is skewing? 9. What are the different methods for the elimination of harmonics from the generated voltage? 10. What are the effects of SCR on machine performance? 11. What is approximately the runaway speed of Kaplan turbine? 12. What are the disadvantages of designing the alternators with higher gap flux density? 13. What is critical speed of alternator? 14. Why salient pole construction is rejected for high speed alternators. 15. What material user for the construction of turbo alternator rotor. 1. Determine suitable stator dimensions for a 500 kva, 50 Hz, 3 phase alternator to run at 375 rpm. Take mean gap density over the pole pitch as 0.55 Wb/m2, the specific electric loading as 25,000 A/m. The peripheral speed should not exceed 35 m/s. 2. Determine for a 250 kva, 1100V, 12 pole, 500 rpm, 3φ alternator (i) air gap diameter (ii) core length (iii) number of stator slots (iv) cross section of stator conductors assuming average gap density as 0.6 Wb/m2, ampere conductors per metre as 28,500; and the current density to be 3.5A/mm2. 3. A 3 phase, 6600 V, 50 Hz, star connected alternator is to run at 750 rpm. There are to be 36 conductors per slot, the flux per pole is Wb and the distribution factor is The winding is concentric with overhang arranged in two planes. Calculate the number of slots

6 required 4. A 500 MW, 3 phase, 2 pole, 50 Hz direct water cooled generator has a diameter of 1.3mand a core length of 5.9 m. The number of turns per phase is 11 and there are two parallel circuits per phase. The average gap density is Wb/m2 and the winding factor is0.92.determine the terminal voltage of the machine. Find also the specific electric loading if the power factor is 0.85.If the mmf required for air gap is 80% of no load mmf, short circuit ratio 0.55, air gap contraction factor 1.1, determine the length of air gap. 5. The field coils of salient pole alternator are wound with a single layer winding of bare copper strip 30mm deep, with separating insulation 0.15 mm thick. Determine a suitable winding length, number of turns and thickness of conductor to develop an mmf of 12000A with a potential difference of 5V per coil and with a loss of 1200 W/m2 of total coil surface. The mean length of turn is 1.2m. The resistivity of copper is 0.21 Ω/m and mm2 6. A 1250 kva, 3 phase, 6600 V, salient pole alternator has the following data and air gap diameter = 1.6 m; length of core = 0.45 m, number of poles = 20, armature ampere conductors per metre = 28000; ratio pole arc to pole pitch = 0.68; stator slot pitch = 28 mm; current density in damper bars = 3A/mm2. Design a suitable damper winding for the machine. 7..Find main dimension of 100 MVA, 11 kv, 50 Hz, 150 rpm, three phase water wheel generator. The average gap density = 0.65 wb/m2 and ampere conductors / m are The peripheral speed should not exceed 65 m/s at normal running speed in order to limit runaway peripheral speed. 8. Determine the main dimensions for a 1000 KVA, 50 Hz, 3 phase, 375 rpm alternator. The average gap density is 0.55 wb/m2, ac=28,000 AC/m, use regular poles and assume suitable values of ratio of core length to pole pitch in order to use bolted on pole construction for which the maximum permissible peripheral speed is 50 m/s. The runway speed is 1.8 times of synchronous speed.

DESIGN OF ELECTRICAL APPARATUS SOLVED PROBLEMS

DESIGN OF ELECTRICAL APPARATUS SOLVED PROBLEMS DESIGN OF ELECTRICAL APPARATUS SOLVED PROBLEMS 1. A 350 KW, 500V, 450rpm, 6-pole, dc generator is built with an armature diameter of 0.87m and core length of 0.32m. The lap wound armature has 660 conductors.

More information

ROEVER COLLEGE OF ENGINEERING & TECHNOLOGY ELAMBALUR, PERAMBALUR DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING ELECTRICAL MACHINES I

ROEVER COLLEGE OF ENGINEERING & TECHNOLOGY ELAMBALUR, PERAMBALUR DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING ELECTRICAL MACHINES I ROEVER COLLEGE OF ENGINEERING & TECHNOLOGY ELAMBALUR, PERAMBALUR-621220 DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING ELECTRICAL MACHINES I Unit I Introduction 1. What are the three basic types

More information

Design of Synchronous Machines

Design of Synchronous Machines Design of Synchronous Machines Introduction Synchronous machines are AC machines that have a field circuit supplied by an external DC source. Synchronous machines are having two major parts namely stationary

More information

D.C. Machine Design Problem (EE Electrical Machine Design I) By Pratik Mochi CSPIT, CHARUSAT

D.C. Machine Design Problem (EE Electrical Machine Design I) By Pratik Mochi CSPIT, CHARUSAT D.C. Machine Design Problem (EE401.01 Electrical Machine Design I) By Pratik Mochi CSPIT, CHARUSAT 1 2 Cross Section View of 4 pole DC Machine Design Problem Design a 250kW, 400V, 625A, 600 rpm, lap wound

More information

Prince Sattam bin Abdulaziz University College of Engineering. Electrical Engineering Department EE 3360 Electrical Machines (II)

Prince Sattam bin Abdulaziz University College of Engineering. Electrical Engineering Department EE 3360 Electrical Machines (II) Chapter # 4 Three-Phase Induction Machines 1- Introduction (General Principles) Generally, conversion of electrical power into mechanical power takes place in the rotating part of an electric motor. In

More information

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

Massachusetts Institute of Technology Department of Electrical Engineering and Computer Science Electric Machines Massachusetts Institute of Technology Department of Electrical Engineering and Computer Science 6.685 Electric Machines Problem Set 10 Issued November 11, 2013 Due November 20, 2013 Problem 1: Permanent

More information

An Introduction to Electrical Machines. P. Di Barba, University of Pavia, Italy

An Introduction to Electrical Machines. P. Di Barba, University of Pavia, Italy An Introduction to Electrical Machines P. Di Barba, University of Pavia, Italy Academic year 0-0 Contents Transformer. An overview of the device. Principle of operation of a single-phase transformer 3.

More information

CHAPTER 4 DESIGN OF GRID CONNECTED INDUCTION GENERATORS FOR CONSTANT SPEED WIND POWER GENERATION

CHAPTER 4 DESIGN OF GRID CONNECTED INDUCTION GENERATORS FOR CONSTANT SPEED WIND POWER GENERATION CHAPTER 4 DESIGN OF GRID CONNECTED INDUCTION GENERATORS FOR CONSTANT SPEED WIND POWER GENERATION 4.1 Introduction For constant shaft speed grid-connected wind energy conversion systems, the squirrel cage

More information

CHAPTER 3 ENERGY EFFICIENT DESIGN OF INDUCTION MOTOR USNG GA

CHAPTER 3 ENERGY EFFICIENT DESIGN OF INDUCTION MOTOR USNG GA 31 CHAPTER 3 ENERGY EFFICIENT DESIGN OF INDUCTION MOTOR USNG GA 3.1 INTRODUCTION Electric motors consume over half of the electrical energy produced by power stations, almost the three-quarters of the

More information

EEE3405 ELECTRICAL ENGINEERING PRINCIPLES 2 - TEST

EEE3405 ELECTRICAL ENGINEERING PRINCIPLES 2 - TEST ATTEMPT ALL QUESTIONS (EACH QUESTION 20 Marks, FULL MAKS = 60) Given v 1 = 100 sin(100πt+π/6) (i) Find the MS, period and the frequency of v 1 (ii) If v 2 =75sin(100πt-π/10) find V 1, V 2, 2V 1 -V 2 (phasor)

More information

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

Electric Machines I Three Phase Induction Motor. Dr. Firas Obeidat Electric Machines I Three Phase Induction Motor Dr. Firas Obeidat 1 Table of contents 1 General Principles 2 Construction 3 Production of Rotating Field 4 Why Does the Rotor Rotate 5 The Slip and Rotor

More information

CHAPTER 3 INFLUENCE OF STATOR SLOT-SHAPE ON THE ENERGY CONSERVATION ASSOCIATED WITH THE SUBMERSIBLE INDUCTION MOTORS

CHAPTER 3 INFLUENCE OF STATOR SLOT-SHAPE ON THE ENERGY CONSERVATION ASSOCIATED WITH THE SUBMERSIBLE INDUCTION MOTORS 38 CHAPTER 3 INFLUENCE OF STATOR SLOT-SHAPE ON THE ENERGY CONSERVATION ASSOCIATED WITH THE SUBMERSIBLE INDUCTION MOTORS 3.1 INTRODUCTION The electric submersible-pump unit consists of a pump, powered by

More information

CHAPTER 3 CONVENTIONAL DESIGN SOLUTIONS

CHAPTER 3 CONVENTIONAL DESIGN SOLUTIONS 31 CHAPTER 3 CONVENTIONAL DESIGN SOLUTIONS 3.1 CONVENTIONAL DESIGN Conventional design is a trial and error method. It makes use of empirical relations, approximations and assumptions. (Say 1958) A method

More information

Synchronous Machines

Synchronous Machines Synchronous Machines Synchronous generators or alternators are used to convert mechanical power derived from steam, gas, or hydraulic-turbine to ac electric power Synchronous generators are the primary

More information

Synchronous Machine Design ( Dr. R. C. Goel & Nafees Ahmed )

Synchronous Machine Design ( Dr. R. C. Goel & Nafees Ahmed ) Synchronous Machine Design ( Dr. R. C. Goel & Nafees Ahmed ) y Nafees Ahmed Asstt. rof. Department of Electrical Engineering DIT, University, Dehradun, Uttarakhand References:. Notes by Dr. R. C. Goel.

More information

Tutorial Sheet Fig. Q1

Tutorial Sheet Fig. Q1 Tutorial Sheet - 04 1. The magnetic circuit shown in Fig. Q1 has dimensions A c = A g = 9 cm 2, g = 0.050 cm, l c = 30 cm, and N = 500 turns. Assume the value of the relative permeability,µ r = 70,000

More information

Generators for wind power conversion

Generators for wind power conversion Generators for wind power conversion B. G. Fernandes Department of Electrical Engineering Indian Institute of Technology, Bombay Email : bgf@ee.iitb.ac.in Outline of The Talk Introduction Constant speed

More information

EE ELECTRICAL ENGINEERING DRAWING

EE ELECTRICAL ENGINEERING DRAWING EE09 605 ELECTRICAL ENGINEERING DRAWING Akhil A. Balakrishnan 1 1 Department of Electrical & Electronics Engineering Jyothi Engineering College, Cheruthuruthy As on February 24, 2014 Akhil A. Balakrishnan

More information

Induction Motors. The single-phase induction motor is the most frequently used motor in the world

Induction Motors. The single-phase induction motor is the most frequently used motor in the world Induction Motor The single-phase induction motor is the most frequently used motor in the world Most appliances, such as washing machines and refrigerators, use a single-phase induction machine Highly

More information

ELECTRICALMACHINES-I QUESTUION BANK

ELECTRICALMACHINES-I QUESTUION BANK ELECTRICALMACHINES-I QUESTUION BANK UNIT-I INTRODUCTION OF MAGNETIC MATERIAL PART A 1. What are the three basic rotating Electric machines? 2. Name the three materials used in machine manufacture. 3. What

More information

Power density improvement of three phase flux reversal machine with distributed winding

Power density improvement of three phase flux reversal machine with distributed winding Published in IET Electric Power Applications Received on 4th January 2009 Revised on 2nd April 2009 ISSN 1751-8660 Power density improvement of three phase flux reversal machine with distributed winding

More information

Module 3 : Sequence Components and Fault Analysis

Module 3 : Sequence Components and Fault Analysis Module 3 : Sequence Components and Fault Analysis Lecture 12 : Sequence Modeling of Power Apparatus Objectives In this lecture we will discuss Per unit calculation and its advantages. Modeling aspects

More information

MAHARASHTRA STATE BOARD OF TECHNICAL EDUCATION

MAHARASHTRA STATE BOARD OF TECHNICAL EDUCATION Important Instructions to examiners: 1) The answers should be examined by key words and not as word-to-word as given in the model answer scheme. 2) The model answer and the answer written by candidate

More information

EC T32 - ELECTRICAL ENGINEERING

EC T32 - ELECTRICAL ENGINEERING EC T32 - ELECTRICAL ENGINEERING UNIT-I - TRANSFORMER 1. What is a transformer? 2. Briefly explain the principle of operation of transformers. 3. What are the parts of a transformer? 4. What are the types

More information

Energy Converters. CAD and System Dynamics

Energy Converters. CAD and System Dynamics Institut für Elektrische Energiewandlung Energy Converters CAD and System Dynamics - Tutorials - Issue 2017/2018 M.Sc. Sascha Neusüs / M.Sc. Marcel Lehr Professor Dr.-Ing. habil. Dr. h.c. Andreas Binder

More information

PESIT Bangalore South Campus Hosur road, 1km before Electronic City, Bengaluru -100 Department of Electronics & Communication Engineering

PESIT Bangalore South Campus Hosur road, 1km before Electronic City, Bengaluru -100 Department of Electronics & Communication Engineering QUESTION PAPER INTERNAL ASSESSMENT TEST 2 Date : /10/2016 Marks: 0 Subject & Code: BASIC ELECTRICAL ENGINEERING -15ELE15 Sec : F,G,H,I,J,K Name of faculty : Dhanashree Bhate, Hema B, Prashanth V Time :

More information

Revision Guide for Chapter 15

Revision Guide for Chapter 15 Revision Guide for Chapter 15 Contents tudent s Checklist Revision otes Transformer... 4 Electromagnetic induction... 4 Generator... 5 Electric motor... 6 Magnetic field... 8 Magnetic flux... 9 Force on

More information

Revision Guide for Chapter 15

Revision Guide for Chapter 15 Revision Guide for Chapter 15 Contents Revision Checklist Revision otes Transformer...4 Electromagnetic induction...4 Lenz's law...5 Generator...6 Electric motor...7 Magnetic field...9 Magnetic flux...

More information

Eddy Current Heating in Large Salient Pole Generators

Eddy Current Heating in Large Salient Pole Generators Eddy Current Heating in Large Salient Pole Generators C.P.Riley and A.M. Michaelides Vector Fields Ltd., 24 Bankside, Kidlington, Oxford OX5 1JE, UK phone: (+44) 1865 370151, fax: (+44) 1865 370277 e-mail:

More information

Electrical Machines and Energy Systems: Operating Principles (Part 1) SYED A Rizvi

Electrical Machines and Energy Systems: Operating Principles (Part 1) SYED A Rizvi Electrical Machines and Energy Systems: Operating Principles (Part 1) SYED A Rizvi AC Machines Operating Principles: Rotating Magnetic Field The key to the functioning of AC machines is the rotating magnetic

More information

Lecture (20) DC Machine Examples Start of Synchronous Machines

Lecture (20) DC Machine Examples Start of Synchronous Machines Lecture (20) DC Machine Examples Start of Synchronous Machines Energy Systems Research Laboratory, FIU All rights reserved. 20-1 Energy Systems Research Laboratory, FIU All rights reserved. 20-2 Ra R f

More information

Lesson 17: Synchronous Machines

Lesson 17: Synchronous Machines Lesson 17: Synchronous Machines ET 332b Ac Motors, Generators and Power Systems Lesson 17_et332b.pptx 1 Learning Objectives After this presentation you will be able to: Explain how synchronous machines

More information

Tutorial 1 (EMD) Rotary field winding

Tutorial 1 (EMD) Rotary field winding Tutorial 1 (EMD) Rotary field winding The unchorded two-layer three-phase winding of a small synchronous fan drive for a computer has the following parameters: number of slots per pole and phase q = 1,

More information

Chapter 5 Three phase induction machine (1) Shengnan Li

Chapter 5 Three phase induction machine (1) Shengnan Li Chapter 5 Three phase induction machine (1) Shengnan Li Main content Structure of three phase induction motor Operating principle of three phase induction motor Rotating magnetic field Graphical representation

More information

EE ELECTRICAL ENGINEERING DRAWING

EE ELECTRICAL ENGINEERING DRAWING EE09 605 ELECTRICAL ENGINEERING DRAWING Akhil A. Balakrishnan 1 1 Department of Electrical & Electronics Engineering Jyothi Engineering College, Cheruthuruthy As on January 12, 2014 Akhil A. Balakrishnan

More information

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

3 d Calculate the product of the motor constant and the pole flux KΦ in this operating point. 2 e Calculate the torque. Exam Electrical Machines and Drives (ET4117) 11 November 011 from 14.00 to 17.00. This exam consists of 5 problems on 4 pages. Page 5 can be used to answer problem 4 question b. The number before a question

More information

Chapter # 1 Three-Phase Winding, EMF's and MMF's

Chapter # 1 Three-Phase Winding, EMF's and MMF's Chapter # 1 Three-Phase Winding, EMF's and MMF's 1. Introduction standard A.C. generators or alternators (as they are usually called) operate on the same fundamental principles of electromagnetic induction

More information

Introduction. Energy is needed in different forms: Light bulbs and heaters need electrical energy Fans and rolling miles need mechanical energy

Introduction. Energy is needed in different forms: Light bulbs and heaters need electrical energy Fans and rolling miles need mechanical energy Introduction Energy is needed in different forms: Light bulbs and heaters need electrical energy Fans and rolling miles need mechanical energy What does AC and DC stand for? Electrical machines Motors

More information

Tutorial Sheet IV. Fig. IV_2.

Tutorial Sheet IV. Fig. IV_2. Tutorial Sheet IV 1. Two identical inductors 1 H each are connected in series as shown. Deduce the combined inductance. If a third and then a fourth are similarly connected in series with this combined

More information

Synchronous Machines

Synchronous Machines Synchronous machine 1. Construction Generator Exciter View of a twopole round rotor generator and exciter. A Stator with laminated iron core C Slots with phase winding B A B Rotor with dc winding B N S

More information

Introduction to Synchronous. Machines. Kevin Gaughan

Introduction to Synchronous. Machines. Kevin Gaughan Introduction to Synchronous Machines Kevin Gaughan The Synchronous Machine An AC machine (generator or motor) with a stator winding (usually 3 phase) generating a rotating magnetic field and a rotor carrying

More information

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

University of Jordan Faculty of Engineering & Technology Electric Power Engineering Department University of Jordan Faculty of Engineering & Technology Electric Power Engineering Department EE471: Electrical Machines-II Tutorial # 2: 3-ph Induction Motor/Generator Question #1 A 100 hp, 60-Hz, three-phase

More information

Synchronous Machines

Synchronous Machines Synchronous Machines Synchronous Machines n 1 Φ f n 1 Φ f I f I f I f damper (run-up) winding Stator: similar to induction (asynchronous) machine ( 3 phase windings that forms a rotational circular magnetic

More information

Design, analysis and fabrication of linear permanent magnet synchronous machine

Design, analysis and fabrication of linear permanent magnet synchronous machine Design, analysis and fabrication of linear permanent magnet synchronous machine Monojit Seal Dept. of Electrical Engineering, IIEST, Shibpur, Howrah - 711103 W.B., India. email: seal.monojit@gmail.com

More information

JRE SCHOOL OF Engineering

JRE SCHOOL OF Engineering JRE SCHOOL OF Engineering Class Test-1 Examinations September 2014 Subject Name Electromechanical Energy Conversion-II Subject Code EEE -501 Roll No. of Student Max Marks 30 Marks Max Duration 1 hour Date

More information

KINGS COLLEGE OF ENGINEERING Punalkulam

KINGS COLLEGE OF ENGINEERING Punalkulam KINGS COLLEGE OF ENGINEERING Punalkulam 613 303 DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING POWER SYSTEM ANALYSIS QUESTION BANK UNIT I THE POWER SYSTEM AN OVERVIEW AND MODELLING PART A (TWO MARK

More information

Flux: Examples of Devices

Flux: Examples of Devices Flux: Examples of Devices xxx Philippe Wendling philippe.wendling@magsoft-flux.com Create, Design, Engineer! www.magsoft-flux.com www.cedrat.com Solenoid 2 1 The Domain Axisymmetry Open Boundary 3 Mesh

More information

Chapter 4. Synchronous Generators. Basic Topology

Chapter 4. Synchronous Generators. Basic Topology Basic Topology Chapter 4 ynchronous Generators In stator, a three-phase winding similar to the one described in chapter 4. ince the main voltage is induced in this winding, it is also called armature winding.

More information

ECE 325 Electric Energy System Components 7- Synchronous Machines. Instructor: Kai Sun Fall 2015

ECE 325 Electric Energy System Components 7- Synchronous Machines. Instructor: Kai Sun Fall 2015 ECE 325 Electric Energy System Components 7- Synchronous Machines Instructor: Kai Sun Fall 2015 1 Content (Materials are from Chapters 16-17) Synchronous Generators Synchronous Motors 2 Synchronous Generators

More information

Electromagnetic Energy Conversion Exam 98-Elec-A6 Spring 2002

Electromagnetic Energy Conversion Exam 98-Elec-A6 Spring 2002 Front Page Electromagnetic Energy Conversion Exam 98-Elec-A6 Spring 2002 Notes: Attempt question 1 and FOUR (4) other questions (FVE (5) questions in all). Unless you indicate otherwise, the first five

More information

MODELING AND HIGH-PERFORMANCE CONTROL OF ELECTRIC MACHINES

MODELING AND HIGH-PERFORMANCE CONTROL OF ELECTRIC MACHINES MODELING AND HIGH-PERFORMANCE CONTROL OF ELECTRIC MACHINES JOHN CHIASSON IEEE PRESS ü t SERIES ON POWER ENGINEERING IEEE Press Series on Power Engineering Mohamed E. El-Hawary, Series Editor The Institute

More information

Preliminary Sizing Design of a 1 MW Low Duty Cycle Switched Reluctance Generator for Aerospace Applications

Preliminary Sizing Design of a 1 MW Low Duty Cycle Switched Reluctance Generator for Aerospace Applications Preliminary Sizing Design of a 1 MW Low Duty Cycle Switched Reluctance Generator for Aerospace Applications Jin-Woo Jung, Ph. D. Student Advisors: Prof. Ali Keyhani Adjunct Prof. Tomy Sebastian Oct. 25,

More information

Optimization of 20kVA, 3-Phase Induction Motor using Genetic Algorithm

Optimization of 20kVA, 3-Phase Induction Motor using Genetic Algorithm 2017 IJSRSET Volume 3 Issue 1 Print ISSN: 2395-1990 Online ISSN : 2394-4099 Themed Section: Engineering and Technology Optimization of 20kVA, 3-Phase Induction Motor using Genetic Algorithm Abdulraheem

More information

INDUCTION MOTOR MODEL AND PARAMETERS

INDUCTION MOTOR MODEL AND PARAMETERS APPENDIX C INDUCTION MOTOR MODEL AND PARAMETERS C.1 Dynamic Model of the Induction Motor in Stationary Reference Frame A three phase induction machine can be represented by an equivalent two phase machine

More information

Generators. What its all about

Generators. What its all about Generators What its all about How do we make a generator? Synchronous Operation Rotor Magnetic Field Stator Magnetic Field Forces and Magnetic Fields Force Between Fields Motoring Generators & motors are

More information

Analytical and numerical computation of the no-load magnetic field in induction motors

Analytical and numerical computation of the no-load magnetic field in induction motors Analytical and numerical computation of the no-load induction motors Dan M. Ionel University of Glasgow, Glasgow, Scotland, UK and Mihai V. Cistelecan Research Institute for Electrical Machines, Bucharest

More information

Doubly salient reluctance machine or, as it is also called, switched reluctance machine. [Pyrhönen et al 2008]

Doubly salient reluctance machine or, as it is also called, switched reluctance machine. [Pyrhönen et al 2008] Doubly salient reluctance machine or, as it is also called, switched reluctance machine [Pyrhönen et al 2008] Pros and contras of a switched reluctance machine Advantages Simple robust rotor with a small

More information

Mutual Inductance. The field lines flow from a + charge to a - change

Mutual Inductance. The field lines flow from a + charge to a - change Capacitors Mutual Inductance Since electrical charges do exist, electric field lines have a starting point and an ending point. For example, if you have a + and a - change, the field lines would look something

More information

3 Chapter 3 Machine design

3 Chapter 3 Machine design 3 Chapter 3 Machine design This chapter is divided into three sections. In the first section the detailed design plan for the prototype is given. The second section contains the stator design as well as

More information

SSC-JE EE POWER SYSTEMS: GENERATION, TRANSMISSION & DISTRIBUTION SSC-JE STAFF SELECTION COMMISSION ELECTRICAL ENGINEERING STUDY MATERIAL

SSC-JE EE POWER SYSTEMS: GENERATION, TRANSMISSION & DISTRIBUTION SSC-JE STAFF SELECTION COMMISSION ELECTRICAL ENGINEERING STUDY MATERIAL 1 SSC-JE STAFF SELECTION COMMISSION ELECTRICAL ENGINEERING STUDY MATERIAL Power Systems: Generation, Transmission and Distribution Power Systems: Generation, Transmission and Distribution Power Systems:

More information

ELECTRICAL FUNDAMENTALS

ELECTRICAL FUNDAMENTALS Part 66 Cat. B1 / B2 Module 3 ELECTRICAL FUNDAMENTALS Vilnius-2017 Issue 1. Effective date 2017-02-28 FOR TRAINING PURPOSES ONLY Page 1 of 280 If we look at electronic configuration of a carbon C atom,

More information

Motor-CAD combined electromagnetic and thermal model (January 2015)

Motor-CAD combined electromagnetic and thermal model (January 2015) Motor-CAD combined electromagnetic and thermal model (January 2015) Description The Motor-CAD allows the machine performance, losses and temperatures to be calculated for a BPM machine. In this tutorial

More information

Chapter 6: Efficiency and Heating. 9/18/2003 Electromechanical Dynamics 1

Chapter 6: Efficiency and Heating. 9/18/2003 Electromechanical Dynamics 1 Chapter 6: Efficiency and Heating 9/18/2003 Electromechanical Dynamics 1 Losses As a machine transforms energy from one form to another there is always a certain power loss the loss is expressed as heat,

More information

Finite Element Analysis of Hybrid Excitation Axial Flux Machine for Electric Cars

Finite Element Analysis of Hybrid Excitation Axial Flux Machine for Electric Cars 223 Finite Element Analysis of Hybrid Excitation Axial Flux Machine for Electric Cars Pelizari, A. ademir.pelizari@usp.br- University of Sao Paulo Chabu, I.E. ichabu@pea.usp.br - University of Sao Paulo

More information

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

EDEXCEL NATIONAL CERTIFICATE/DIPLOMA UNIT 5 - ELECTRICAL AND ELECTRONIC PRINCIPLES NQF LEVEL 3. OUTCOME 3 - MAGNETISM and INDUCTION EDEXCEL NATIONAL CERTIFICATE/DIPLOMA UNIT 5 - ELECTRICAL AND ELECTRONIC PRINCIPLES NQF LEVEL 3 OUTCOME 3 - MAGNETISM and INDUCTION 3 Understand the principles and properties of magnetism Magnetic field:

More information

The synchronous machine (detailed model)

The synchronous machine (detailed model) ELEC0029 - Electric Power System Analysis The synchronous machine (detailed model) Thierry Van Cutsem t.vancutsem@ulg.ac.be www.montefiore.ulg.ac.be/~vct February 2018 1 / 6 Objectives The synchronous

More information

Title use of Bi-2223/Ag squirrel-cage rot IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY (2006), 16(2): 14.

Title use of Bi-2223/Ag squirrel-cage rot IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY (2006), 16(2): 14. Title Fabrication and characteristics of use of Bi-2223/Ag squirrel-cage rot Author(s) Nakamura, T; Miyake, H; Ogama, Y; M Hoshino, T Citation IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY (2006), 16(2):

More information

Water-Cooled Direct Drive Permanent Magnet Motor Design in Consideration of its Efficiency and Structural Strength

Water-Cooled Direct Drive Permanent Magnet Motor Design in Consideration of its Efficiency and Structural Strength Journal of Magnetics 18(2), 125-129 (2013) ISSN (Print) 1226-1750 ISSN (Online) 2233-6656 http://dx.doi.org/10.4283/jmag.2013.18.2.125 Water-Cooled Direct Drive Permanent Magnet Motor Design in Consideration

More information

Modelling and Simulating a Three-Phase Induction Motor

Modelling and Simulating a Three-Phase Induction Motor MURDOCH UNIVERSITY SCHOOL OF ENGINEERING AND INFORMATION TECHNOLOGY Modelling and Simulating a Three-Phase Induction Motor ENG460 Engineering Thesis Benjamin Willoughby 3/3/2014 Executive Summary This

More information

CHAPTER 5 SIMULATION AND TEST SETUP FOR FAULT ANALYSIS

CHAPTER 5 SIMULATION AND TEST SETUP FOR FAULT ANALYSIS 47 CHAPTER 5 SIMULATION AND TEST SETUP FOR FAULT ANALYSIS 5.1 INTRODUCTION This chapter describes the simulation model and experimental set up used for the fault analysis. For the simulation set up, the

More information

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

Definition Application of electrical machines Electromagnetism: review Analogies between electric and magnetic circuits Faraday s Law Electromagnetic Definition Application of electrical machines Electromagnetism: review Analogies between electric and magnetic circuits Faraday s Law Electromagnetic Force Motor action Generator action Types and parts

More information

Design of the Forced Water Cooling System for a Claw Pole Transverse Flux Permanent Magnet Synchronous Motor

Design of the Forced Water Cooling System for a Claw Pole Transverse Flux Permanent Magnet Synchronous Motor Design of the Forced Water Cooling System for a Claw Pole Transverse Flux Permanent Magnet Synchronous Motor Ahmad Darabi 1, Ali Sarreshtehdari 2, and Hamed Tahanian 1 1 Faculty of Electrical and Robotic

More information

STAR-CCM+ and SPEED for electric machine cooling analysis

STAR-CCM+ and SPEED for electric machine cooling analysis STAR-CCM+ and SPEED for electric machine cooling analysis Dr. Markus Anders, Dr. Stefan Holst, CD-adapco Abstract: This paper shows how two well established software programs can be used to determine the

More information

CHAPTER 8 DC MACHINERY FUNDAMENTALS

CHAPTER 8 DC MACHINERY FUNDAMENTALS CHAPTER 8 DC MACHINERY FUNDAMENTALS Summary: 1. A Simple Rotating Loop between Curved Pole Faces - The Voltage Induced in a Rotating Loop - Getting DC voltage out of the Rotating Loop - The Induced Torque

More information

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

The initial magnetization curve shows the magnetic flux density that would result when an increasing magnetic field is applied to an initially MAGNETIC CIRCUITS The study of magnetic circuits is important in the study of energy systems since the operation of key components such as transformers and rotating machines (DC machines, induction machines,

More information

Calculation and analysis of the loss and heat on damper bars in large tubular hydro-generator

Calculation and analysis of the loss and heat on damper bars in large tubular hydro-generator ARCHIVES OF ELECTRICAL ENGINEERING VOL. 62(1), pp. 43-54 (2013) DOI 10.2478/aee-2013-0004 Calculation and analysis of the loss and heat on damper bars in large tubular hydro-generator YONG LIAO 1, ZHEN-NAN

More information

EE 6501 POWER SYSTEMS UNIT I INTRODUCTION

EE 6501 POWER SYSTEMS UNIT I INTRODUCTION EE 6501 POWER SYSTEMS UNIT I INTRODUCTION PART A (2 MARKS) 1. What is single line diagram? A Single line diagram is diagrammatic representation of power system in which the components are represented by

More information

Equivalent Circuits with Multiple Damper Windings (e.g. Round rotor Machines)

Equivalent Circuits with Multiple Damper Windings (e.g. Round rotor Machines) Equivalent Circuits with Multiple Damper Windings (e.g. Round rotor Machines) d axis: L fd L F - M R fd F L 1d L D - M R 1d D R fd R F e fd e F R 1d R D Subscript Notations: ( ) fd ~ field winding quantities

More information

ELECTROMAGNETIC OSCILLATIONS AND ALTERNATING CURRENT

ELECTROMAGNETIC OSCILLATIONS AND ALTERNATING CURRENT Chapter 31: ELECTROMAGNETIC OSCILLATIONS AND ALTERNATING CURRENT 1 A charged capacitor and an inductor are connected in series At time t = 0 the current is zero, but the capacitor is charged If T is the

More information

Weight optimisation of a salient pole synchronous generator by a new genetic algorithm validated by finite element analysis

Weight optimisation of a salient pole synchronous generator by a new genetic algorithm validated by finite element analysis Published in IET Electric Power Applications Received on 5th June 008 Revised on 5th December 008 doi: 10.1049/iet-epa.008.016 ISSN 1751-8660 Weight optimisation of a salient pole synchronous generator

More information

EN Power Electronics and Machines

EN Power Electronics and Machines 1/19 - Power Electronics and Machines Transformers Suryanarayana Doolla Department of Energy Science and Engineering Indian Institute of Technology, Bombay suryad@iitb.ac.in Lecture Organization - Modules

More information

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

Control of Wind Turbine Generators. James Cale Guest Lecturer EE 566, Fall Semester 2014 Colorado State University Control of Wind Turbine Generators James Cale Guest Lecturer EE 566, Fall Semester 2014 Colorado State University Review from Day 1 Review Last time, we started with basic concepts from physics such as

More information

Equal Pitch and Unequal Pitch:

Equal Pitch and Unequal Pitch: Equal Pitch and Unequal Pitch: Equal-Pitch Multiple-Stack Stepper: For each rotor stack, there is a toothed stator segment around it, whose pitch angle is identical to that of the rotor (θs = θr). A stator

More information

EE Branch GATE Paper 2010

EE Branch GATE Paper 2010 Q.1 Q.25 carry one mark each 1. The value of the quantity P, where, is equal to 0 1 e 1/e 2. Divergence of the three-dimensional radial vector field is 3 1/r 3. The period of the signal x(t) = 8 is 0.4

More information

EE2351 POWER SYSTEM ANALYSIS UNIT I: INTRODUCTION

EE2351 POWER SYSTEM ANALYSIS UNIT I: INTRODUCTION EE2351 POWER SYSTEM ANALYSIS UNIT I: INTRODUCTION PART: A 1. Define per unit value of an electrical quantity. Write equation for base impedance with respect to 3-phase system. 2. What is bus admittance

More information

Keywords: Electric Machines, Rotating Machinery, Stator faults, Fault tolerant control, Field Weakening, Anisotropy, Dual rotor, 3D modeling

Keywords: Electric Machines, Rotating Machinery, Stator faults, Fault tolerant control, Field Weakening, Anisotropy, Dual rotor, 3D modeling Analysis of Electromagnetic Behavior of Permanent Magnetized Electrical Machines in Fault Modes M. U. Hassan 1, R. Nilssen 1, A. Røkke 2 1. Department of Electrical Power Engineering, Norwegian University

More information

EE 742 Chapter 3: Power System in the Steady State. Y. Baghzouz

EE 742 Chapter 3: Power System in the Steady State. Y. Baghzouz EE 742 Chapter 3: Power System in the Steady State Y. Baghzouz Transmission Line Model Distributed Parameter Model: Terminal Voltage/Current Relations: Characteristic impedance: Propagation constant: π

More information

6 Chapter 6 Testing and Evaluation

6 Chapter 6 Testing and Evaluation 6 Chapter 6 Testing and Evaluation n this chapter the results obtained during the testing of the LS PMSM prototype are provided. The test results are compared with Weg s LS PMSM machine, WQuattro. The

More information

Electrical Machines and Energy Systems: Operating Principles (Part 2) SYED A Rizvi

Electrical Machines and Energy Systems: Operating Principles (Part 2) SYED A Rizvi Electrical Machines and Energy Systems: Operating Principles (Part 2) SYED A Rizvi AC Machines Operating Principles: Synchronous Motor In synchronous motors, the stator of the motor has a rotating magnetic

More information

Scilab Textbook Companion for Electrical Machine Design by A. K. Sawhney 1

Scilab Textbook Companion for Electrical Machine Design by A. K. Sawhney 1 Scilab Textbook Companion for Electrical Machine Design by A. K. Sawhney 1 Created by Shiv Singh Meena B.Tech Electrical Engineering National Institute of Technology,Kurukshetra College Teacher None Cross-Checked

More information

TRACING OF MAXIMUM POWER DENSITY POINT FOR AXIAL FLUX TORUS TYPE MACHINES USING GENERAL PURPOSE SIZING EQUATIONS

TRACING OF MAXIMUM POWER DENSITY POINT FOR AXIAL FLUX TORUS TYPE MACHINES USING GENERAL PURPOSE SIZING EQUATIONS TRACING OF MAXIMUM POWER DENSITY POINT FOR AXIAL FLUX TORUS TYPE MACHINES USING GENERAL PURPOSE SIZING EQUATIONS M. Ramanjaneyulu Chowdary Dr.G.S Raju Mr.V.Rameshbabu M.Tech power electronics Former BHU

More information

The Nottingham eprints service makes this work by researchers of the University of Nottingham available open access under the following conditions.

The Nottingham eprints service makes this work by researchers of the University of Nottingham available open access under the following conditions. Arumugam, Puvaneswaran and Dusek, Jiri and Mezani, Smail and Hamiti, Tahar and Gerada, C. (2015) Modeling and analysis of eddy current losses in permanent magnet machines with multi-stranded bundle conductors.

More information

Applied Electronics and Electrical Machines

Applied Electronics and Electrical Machines School of Electrical and Computer Engineering Applied Electronics and Electrical Machines (ELEC 365) Fall 2015 DC Machines 1 DC Machines Key educational goals: Develop the basic principle of operation

More information

Study and Characterization of the Limiting Thermal Phenomena in Low-Speed Permanent Magnet Synchronous Generators for Wind Energy

Study and Characterization of the Limiting Thermal Phenomena in Low-Speed Permanent Magnet Synchronous Generators for Wind Energy 1 Study and Characterization of the Limiting Thermal Phenomena in Low-Speed Permanent Magnet Synchronous Generators for Wind Energy Mariana Cavique, Student, DEEC/AC Energia, João F.P. Fernandes, LAETA/IDMEC,

More information

R13 SET Derive the expression for the maximum bending stress developed in the leaf spring and also the central deflection of a leaf spring.

R13 SET Derive the expression for the maximum bending stress developed in the leaf spring and also the central deflection of a leaf spring. Code No: RT22013 R13 SET - 41 STRENGTH OF MATERIALS - II (Civil Engineering) Time: 3 hours Max. Marks: 70 Note: 1. Question Paper consists of two parts (Part-A and Part-B) 2. Answer ALL the question in

More information

Proposal of short armature core double-sided transverse flux type linear synchronous motor

Proposal of short armature core double-sided transverse flux type linear synchronous motor Proposal of short armature core double-sided transverse flux type linear synchronous motor Shin Jung-Seob a, Takafumi Koseki a and Kim Houng-Joong b a The University of Tokyo, Engineering Building #2 12F,7-3-1

More information

Measurements of a 37 kw induction motor. Rated values Voltage 400 V Current 72 A Frequency 50 Hz Power 37 kw Connection Star

Measurements of a 37 kw induction motor. Rated values Voltage 400 V Current 72 A Frequency 50 Hz Power 37 kw Connection Star Measurements of a 37 kw induction motor Rated values Voltage 4 V Current 72 A Frequency 5 Hz Power 37 kw Connection Star Losses of a loaded machine Voltage, current and power P = P -w T loss in Torque

More information

SECOND ENGINEER REG III/2 MARINE ELECTRO-TECHNOLOGY. 1. Understands the physical construction and characteristics of basic components.

SECOND ENGINEER REG III/2 MARINE ELECTRO-TECHNOLOGY. 1. Understands the physical construction and characteristics of basic components. SECOND ENGINEER REG III/ MARINE ELECTRO-TECHNOLOGY LIST OF TOPICS A B C D Electric and Electronic Components Electric Circuit Principles Electromagnetism Electrical Machines The expected learning outcome

More information

NEPTUNE -code: KAUVG11ONC Prerequisites:... Knowledge description:

NEPTUNE -code: KAUVG11ONC Prerequisites:... Knowledge description: Subject name: Electrical Machines Credits: 9 Requirement : Course director: Dr. Vajda István Position: Assessment and verification procedures: NEPTUNE -code: KAUVG11ONC Prerequisites:... Number of hours:

More information

Chapter 6. Induction Motors. Copyright The McGraw-Hill Companies, Inc. Permission required for reproduction or display.

Chapter 6. Induction Motors. Copyright The McGraw-Hill Companies, Inc. Permission required for reproduction or display. Chapter 6 Induction Motors 1 The Development of Induced Torque in an Induction Motor Figure 6-6 The development of induced torque in an induction motor. (a) The rotating stator field B S induces a voltage

More information