Introduction. Three-phase induction motors are the most common and frequently encountered machines in industry

Size: px
Start display at page:

Download "Introduction. Three-phase induction motors are the most common and frequently encountered machines in industry"

Transcription

1 Induction Motors

2 Introduction Three-phase induction motors are the most common and frequently encountered machines in industry - simple design, rugged, low-price, easy maintenance - wide range of power ratings: fractional horsepower to 10 MW - run essentially as constant speed from no-load to full load - Its speed depends on the frequency of the power source not easy to have variable speed control requires a variable-frequency power-electronic drive for optimal speed control

3 Construction An induction motor has two main parts - a stationary stator consisting of a steel frame that supports a hollow, cylindrical core core, constructed from stacked laminations (why?), having a number of evenly spaced slots, providing the space for the stator winding Stator of IM

4 Construction - a revolving rotor composed of punched laminations, stacked to create a series of rotor slots, providing space for the rotor winding one of two types of rotor windings conventional 3-phase windings made of insulated wire (wound-rotor)» similar to the winding on the stator aluminum bus bars shorted together at the ends by two aluminum rings, forming a squirrel-cage shaped circuit (squirrel-cage) Two basic design types depending on the rotor design - squirrel-cage: conducting bars laid into slots and shorted at both ends by shorting rings. - wound-rotor: complete set of three-phase windings exactly as the stator. Usually Y-connected, the ends of the three rotor wires are connected to 3 slip rings on the rotor shaft. In this way, the rotor circuit is accessible.

5 Construction Squirrel cage rotor Wound rotor Notice the slip rings

6 Construction Slip rings Cutaway in a typical woundrotor IM. Notice the brushes and the slip rings Brushes

7 Rotating Magnetic Field Balanced three phase windings, i.e. mechanically displaced 120 degrees form each other, fed by balanced three phase source A rotating magnetic field with constant magnitude is produced, rotating with a speed n sync 120 f e P rpm Where f e is the supply frequency and P is the no. of poles and n sync is called the synchronous speed in rpm (revolutions per minute)

8 Synchronous speed P 50 Hz 60 Hz

9 Rotating Magnetic Field

10 Rotating Magnetic Field

11 Rotating Magnetic Field B () t B () t + B () t + B () t net a b c B sin( ωt) 0 + B sin( ωt 120 ) B sin( ωt 240) 240 B M M M M sin( ωt)ˆ x 3 [0.5B sin( 120 )] ˆ M ωt x [ BM 2 sin( ωt 120 )] yˆ 3 [0.5B sin( 240 )] ˆ M ωt x+ [ BM 2 sin( ωt 240 )] yˆ

12 Rotating Magnetic Field Bnet ( t) [ BM sin( ωt) + BM sin( ωt) + BM cos( ωt) + BM sin( ωt) BM cos( ωt)]ˆ x [ BM sin( ωt) BM cos( ωt) + BM sin( ωt) BM cos( ωt)]ˆ y [1.5B sin( ωt)] xˆ [1.5B cos( ωt)] yˆ M M

13 Rotating Magnetic Field

14 Principle of operation This rotating magnetic field cuts the rotor windings and produces an induced voltage in the rotor windings Due to the fact that the rotor windings are short circuited, for both squirrel cage and wound-rotor, and induced current flows in the rotor windings The rotor current produces another magnetic field A torque is produced as a result of the interaction of those two magnetic fields τ kb B ind R s Where τ ind is the induced torque and B R and B S are the magnetic flux densities of the rotor and the stator respectively

15 Induction motor speed At what speed will the IM run? - Can the IM run at the synchronous speed, why? - If rotor runs at the synchronous speed, which is the same speed of the rotating magnetic field, then the rotor will appear stationary to the rotating magnetic field and the rotating magnetic field will not cut the rotor. So, no induced current will flow in the rotor and no rotor magnetic flux will be produced so no torque is generated and the rotor speed will fall below the synchronous speed - When the speed falls, the rotating magnetic field will cut the rotor windings and a torque is produced

16 Induction motor speed So, the IM will always run at a speed lower than the synchronous speed The difference between the motor speed and the synchronous speed is called the Slip Where n slip slip speed n sync speed of the magnetic field mechanical shaft speed of the motor n m n n n slip sync m

17 The Slip Where s is the slip s n sync n sync Notice that : if the rotor runs at synchronous speed s 0 if the rotor is stationary s 1 Slip may be expressed as a percentage by multiplying the above eq. by 100, notice that the slip is a ratio and doesn t have units n m

18 Induction Motors and Transformers Both IM and transformer works on the principle of induced voltage - Transformer: voltage applied to the primary windings produce an induced voltage in the secondary windings - Induction motor: voltage applied to the stator windings produce an induced voltage in the rotor windings - The difference is that, in the case of the induction motor, the secondary windings can move - Due to the rotation of the rotor (the secondary winding of the IM), the induced voltage in it does not have the same frequency of the stator (the primary) voltage

19 Frequency The frequency of the voltage induced in the rotor is given by P n fr 120 Where f r the rotor frequency (Hz) P number of stator poles n slip speed (rpm) f r P ( ns nm) 120 P sns sfe 120

20 Frequency What would be the frequency of the rotor s induced voltage at any speed n m? f r sf e When the rotor is blocked (s1), the frequency of the induced voltage is equal to the supply frequency On the other hand, if the rotor runs at synchronous speed (s 0), the frequency will be zero

21 Torque While the input to the induction motor is electrical power, its output is mechanical power and for that we should know some terms and quantities related to mechanical power Any mechanical load applied to the motor shaft will introduce a Torque on the motor shaft. This torque is related to the motor output power and the rotor speed τ load P ω out m Nm. and ω m 2π n 60 m rad / s

22 Horse power Another unit used to measure mechanical power is the horse power It is used to refer to the mechanical output power of the motor Since we, as an electrical engineers, deal with watts as a unit to measure electrical power, there is a relation between horse power and watts hp 746 watts

23 Example A 208-V, 10hp, four pole, 60 Hz, Y-connected induction motor has a full-load slip of 5 percent 1. What is the synchronous speed of this motor? 2. What is the rotor speed of this motor at rated load? 3. What is the rotor frequency of this motor at rated load? 4. What is the shaft torque of this motor at rated load?

24 Solution 1. n sync 120 fe 120(60) 1800 P 4 rpm 2. n m (1 sn ) s (1 0.05) rpm 3. f sf Hz r e 4. τ load P ω out m Pout nm 2π hp 746 watt / hp π (1/ 60) 41.7 Nm.

25 Equivalent Circuit The induction motor is similar to the transformer with the exception that its secondary windings are free to rotate As we noticed in the transformer, it is easier if we can combine these two circuits in one circuit but there are some difficulties

26 Equivalent Circuit When the rotor is locked (or blocked), i.e. s 1, the largest voltage and rotor frequency are induced in the rotor, Why? On the other side, if the rotor rotates at synchronous speed, i.e. s 0, the induced voltage and frequency in the rotor will be equal to zero, Why? E se R R0 Where E R0 is the largest value of the rotor s induced voltage obtained at s 1(loacked rotor)

27 Equivalent Circuit The same is true for the frequency, i.e. f sf It is known that So, as the frequency of the induced voltage in the rotor changes, the reactance of the rotor circuit also changes Where X r0 is the rotor reactance at the supply frequency (at blocked rotor) r X ωl 2π fl e X ω L 2π f L r r r r r 2π sf L sx r0 e r

28 Equivalent Circuit Then, we can draw the rotor equivalent circuit as follows Where E R is the induced voltage in the rotor and R R is the rotor resistance

29 Equivalent Circuit Now we can calculate the rotor current as I R ER ( RR + jx R) ser0 ( R + jsx ) R Dividing both the numerator and denominator by s so nothing changes we get I R Where E R0 is the induced voltage and X R0 is the rotor reactance at blocked rotor condition (s 1) R0 ER0 RR ( + jx R0) s

30 Equivalent Circuit Now we can have the rotor equivalent circuit

31 Equivalent Circuit Now as we managed to solve the induced voltage and different frequency problems, we can combine the stator and rotor circuits in one equivalent circuit Where X a X eff R0 R a R I 2 2 eff R eff E a E a R 1 eff R0 eff I a N N S R

32 Power losses in Induction machines Copper losses - Copper loss in the stator (P SCL ) I 12 R 1 - Copper loss in the rotor (P RCL ) I 22 R 2 Core loss (P core ) Mechanical power loss due to friction and windage How this power flow in the motor?

33 Power flow in induction motor

34 Power relations P 3 VI cosθ 3V I cosθ in L L ph ph PSCL 3 I R P P ( P + P ) AG in SCL core PRCL 3I R Pconv PAG PRCL P P ( P + P ) out conv f + w stray τ ind P conv ω m

35 Equivalent Circuit We can rearrange the equivalent circuit as follows Actual rotor resistance Resistance equivalent to mechanical load

36 Power relations P 3 VI cosθ 3V I cosθ in L L ph ph PSCL 3 I R P P ( P + P ) AG in SCL core PRCL 3I R Pconv PAG PRCL P conv (1 sp ) AG 3I P P ( P + P ) out conv f + w stray P + R conv (1 s) s τ ind P RCL P 3I R s P (1 ) RCL s s conv ω m (1 sp ) AG (1 s) ω s P RCL s

37 Power relations P AG 1 P conv 1-s P : P : P AG RCL conv 1 : s : 1-s P RCL s

38 Example A 480-V, 60 Hz, 50-hp, three phase induction motor is drawing 60A at 0.85 PF lagging. The stator copper losses are 2 kw, and the rotor copper losses are 700 W. The friction and windage losses are 600 W, the core losses are 1800 W, and the stray losses are negligible. Find the following quantities: 1. The air-gap power P AG. 2. The power converted P conv. 3. The output power P out. 4. The efficiency of the motor.

39 Solution 1. P 3VI cosθ in L L kw PAG Pin PSCL Pcore kw Pconv PAG PRCL kw 1000 P P P out conv F & W kw 1000

40 Solution 37.3 P out hp 4. Pout η 100% P in % 42.4

41 Example A 460-V, 25-hp, 60 Hz, four-pole, Y-connected induction motor has the following impedances in ohms per phase referred to the stator circuit: R Ω R Ω X Ω X Ω X M 26.3 Ω The total rotational losses are 1100 W and are assumed to be constant. The core loss is lumped in with the rotational losses. For a rotor slip of 2.2 percent at the rated voltage and rated frequency, find the motor s 1. Speed 2. Stator current 3. Power factor 4. P conv and P out 5. τ ind and τ load 6. Efficiency

42 Solution n n sync m 120 fe rpm P 4 (1 sn ) ( ) rpm sync R Z2 + jx 2 + j0.464 s j Ω 1 1 Z f 1/ jx + 1/ Z j M Ω

43 Solution Z Z + Z tot stat f j Ω j Ω Vφ I A Ztot PF cos lagging P 3VI cosθ W in L L PSCL 3I R 3(18.88) W PAG Pin PSCL W

44 Solution P conv (1 sp ) ( )(11845) W AG Pout Pconv PF & W W hp 746 PAG τ ind 62.8 N.m ω sync π 60 Pout τ load 56.9 N.m ω m π 60 Pout η 100% % P in

45 Torque, power and Thevenin s Theorem Thevenin s theorem can be used to transform the network to the left of points a and b into an equivalent voltage source V TH in series with equivalent impedance R TH +jx TH

46 Torque, power and Thevenin s Theorem jx M VTH Vφ R + jx ( + X ) 1 1 R + jx ( R + jx ) // jx TH TH 1 1 M M V V TH φ X M R + ( X + X ) M

47 Torque, power and Thevenin s Theorem Since X M >>X 1 and X M >>R 1 X M VTH Vφ X 1 + X M Because X M >>X 1 and X M +X 1 >>R 1 X X X M RTH R1 X 1 + X M TH 1 2

48 Torque, power and Thevenin s Theorem I 2 V Z TH T V TH 2 R2 RTH + + XTH + X2 s ( ) Then the power converted to mechanical (P conv ) P conv 3I R (1 s) s And the internal mechanical torque (T conv ) τ ind P conv ω m P conv (1 s) ω s 2 R2 3I2 s ω s P 2 ω AG s

49 Torque, power and Thevenin s Theorem τ ind 3 V R TH 2 ω 2 s s R2 2 RTH + + ( XTH + X2) s 2 τ ind 1 ω s 3V 2 2 TH 2 R2 RTH + + XTH + X2 s R s ( ) 2

50 Torque-speed characteristics Typical torque-speed characteristics of induction motor

51 Comments 1. The induced torque is zero at synchronous speed. Discussed earlier. 2. The curve is nearly linear between no-load and full load. In this range, the rotor resistance is much greater than the reactance, so the rotor current, torque increase linearly with the slip. 3. There is a maximum possible torque that can t be exceeded. This torque is called pullout torque and is 2 to 3 times the rated full-load torque.

52 Comments 4. The starting torque of the motor is slightly higher than its full-load torque, so the motor will start carrying any load it can supply at full load. 5. The torque of the motor for a given slip varies as the square of the applied voltage. 6. If the rotor is driven faster than synchronous speed it will run as a generator, converting mechanical power to electric power.

53 Complete Speed-torque c/c

54 Maximum torque Maximum torque occurs when the power transferred to R 2 /s is maximum. This condition occurs when R 2 /s equals the magnitude of the impedance R TH + j (X TH + X 2 ) R s T 2 max R + ( X + X ) 2 2 TH TH 2 s T max R R + ( X + X ) TH TH 2

55 Maximum torque The corresponding maximum torque of an induction motor equals τ max 2 1 3V TH 2 ω R + R + ( X + X ) 2 2 s TH TH TH 2 The slip at maximum torque is directly proportional to the rotor resistance R 2 The maximum torque is independent of R 2

56 Maximum torque Rotor resistance can be increased by inserting external resistance in the rotor of a wound-rotor induction motor. The value of the maximum torque remains unaffected but the speed at which it occurs can be controlled.

57 Maximum torque Effect of rotor resistance on torque-speed characteristic

58 Example A two-pole, 50-Hz induction motor supplies 15kW to a load at a speed of 2950 rpm. 1. What is the motor s slip? 2. What is the induced torque in the motor in N.m under these conditions? 3. What will be the operating speed of the motor if its torque is doubled? 4. How much power will be supplied by the motor when the torque is doubled?

59 Solution fe nsync 3000 rpm P 2 nsync nm s or 1.67% n 3000 no P sync f + W given assume P P and τ τ τ ind conv load ind load 3 Pconv N.m ω 2π m

60 Solution 3. In the low-slip region, the torque-speed curve is linear and the induced torque is direct proportional to slip. So, if the torque is doubled the new slip will be 3.33% and the motor speed will be n m (1 sn ) ( ) rpm sync 4. P τ ω conv ind m 2π (2 48.6) (2900 ) 29.5 kw 60

61 Example A 460-V, 25-hp, 60-Hz, four-pole, Y-connected woundrotor induction motor has the following impedances in ohms per phase referred to the stator circuit R Ω R Ω X Ω X Ω X M 26.3 Ω 1. What is the maximum torque of this motor? At what speed and slip does it occur? 2. What is the starting torque of this motor? 3. If the rotor resistance is doubled, what is the speed at which the maximum torque now occur? What is the new starting torque of the motor? 4. Calculate and plot the T-s c/c for both cases.

62 Solution V TH V φ X M R + ( X + X ) M V 2 2 (0.641) + ( ) X M RTH R1 X 1 + X M XTH (0.641) 0.590Ω X Ω 2

63 Solution 1. s T max R R + ( X + X ) TH TH (0.590) + ( ) The corresponding speed is n m (1 sn ) ( ) rpm sync

64 Solution The torque at this speed is τ max 2 1 3V TH 2 ω R + R + ( X + X ) 2 2 s TH TH TH (255.2) 2π N.m (1800 )[0.590 (0.590) ( ) ]

65 Solution 2. The starting torque can be found from the torque eqn. by substituting s 1 2 R2 3V TH 1 s τstart τind s 1 2 ωs R2 2 RTH + + ( XTH + X2) s 3V 2 TH s ( RTH + R2) + XTH + X2 ω [ ( )] 2 3 (255.2) (0.332) 2π s [( ) ( ) ] N.m R

66 Solution 3. If the rotor resistance is doubled, then the slip at maximum torque doubles too s T max R RTH + ( XTH + X2) The corresponding speed is n m (1 sn ) ( ) rpm sync The maximum torque is still τ max 229 N.m

67 Solution The starting torque is now τ start 2 3 (255.2) (0.664) 2π [( ) ( ) ] N.m

68 Determination of motor parameters Due to the similarity between the induction motor equivalent circuit and the transformer equivalent circuit, same tests are used to determine the values of the motor parameters. - DC test: determine the stator resistance R 1 - No-load test: determine the rotational losses and magnetization current (similar to no-load test in Transformers). - Locked-rotor test: determine the rotor and stator impedances (similar to short-circuit test in Transformers).

69 DC test - The purpose of the DC test is to determine R 1. A variable DC voltage source is connected between two stator terminals. - The DC source is adjusted to provide approximately rated stator current, and the resistance between the two stator leads is determined from the voltmeter and ammeter readings.

70 DC test - then R DC - If the stator is Y-connected, the per phase stator resistance is R R DC If the stator is delta-connected, the per phase stator resistance is 3 R R 1 V I DC DC 2 DC

71 No-load test 1. The motor is allowed to spin freely 2. The only load on the motor is the friction and windage losses, so all P conv is consumed by mechanical losses 3. The slip is very small

72 No-load test 4. At this small slip R (1 s) R (1 s) R & s s The equivalent circuit reduces to X

73 No-load test 5. Combining R c & R F+W we get

74 No-load test 6. At the no-load conditions, the input power measured by meters must equal the losses in the motor. 7. The P RCL is negligible because I 2 is extremely small because R 2 (1-s)/s is very large. 8. The input power equals Where P P + P + P in SCL core F & W 3I R + P rot P P + P rot core F & W

75 No-load test 9. The equivalent input impedance is thus approximately Vφ Zeq X1 + X I 1, nl M If X 1 can be found, in some other fashion, the magnetizing impedance X M will be known

76 Blocked-rotor test In this test, the rotor is locked or blocked so that it cannot move, a voltage is applied to the motor, and the resulting voltage, current and power are measured.

77 Blocked-rotor test The AC voltage applied to the stator is adjusted so that the current flow is approximately full-load value. The locked-rotor power factor can be found as PF cosθ Pin 3VI The magnitude of the total impedance l l Z LR V I φ

78 Blocked-rotor test Z R + jx ' LR LR LR Z cosθ + LR jz LR sinθ R R + R LR 1 2 ' ' ' LR 1+ 2 X X X Where X 1 and X 2 are the stator and rotor reactances at the test frequency respectively R R R 2 LR 1 f rated ' XLR XLR X1+ X2 ftest

79 Blocked-rotor test X 1 and X 2 as function of X LR Rotor Design X 1 X 2 Wound rotor 0.5 X LR 0.5 X LR Design A 0.5 X LR 0.5 X LR Design B 0.4 X LR 0.6 X LR Design C 0.3 X LR 0.7 X LR Design D 0.5 X LR 0.5 X LR

80 Midterm Exam No.2

81 Example The following test data were taken on a 7.5-hp, four-pole, 208-V, 60- Hz, design A, Y-connected IM having a rated current of 28 A. DC Test: V DC 13.6 V No-load Test: V l 208 V I 8.17 A Locked-rotor Test: V l 25 V I 27.9 A I DC 28.0 A f 60 Hz P in 420 W f 15 Hz P in 920 W (a) Sketch the per-phase equivalent circuit of this motor. (b) Find the slip at pull-out torque, and find the value of the pull-out torque.

IV. Three-Phase Induction Machines. Induction Machines

IV. Three-Phase Induction Machines. Induction Machines IV. Three-Phase Induction Machines Induction Machines 1 2 3 4 5 6 7 8 9 10 11 12 13 Example 1: A 480V, 60 Hz, 6-pole, three-phase, delta-connected induction motor has the following parameters: R 1 =0.461

More information

Equipment: Power Supply, DAI, Wound rotor induction motor (8231), Electrodynamometer (8960), timing belt.

Equipment: Power Supply, DAI, Wound rotor induction motor (8231), Electrodynamometer (8960), timing belt. Lab 13: Wound rotor induction motor. Objective: to examine the construction of a 3-phase wound rotor induction motor; to understand exciting current, synchronous speed and slip in this motor; to determine

More information

SYNCHRONOUS MACHINES

SYNCHRONOUS MACHINES SYNCHRONOUS MACHINES The geometry of a synchronous machine is quite similar to that of the induction machine. The stator core and windings of a three-phase synchronous machine are practically identical

More information

Lecture 6: AC machinery fundamentals

Lecture 6: AC machinery fundamentals Lecture 6: AC machinery fundamentals 1 Instructor: Dr. Gleb V. Tcheslavski Contact: gleb@ee.lamar.edu Office Hours: TBD; Room 030 Class web site: http://ee.lamar.edu/gleb/ind ex.htm Preliminary notes AC

More information

Induction Motor Theory

Induction Motor Theory PDHonline Course E176 (3 PDH) Induction Motor Theory Instructor: Jerry R. Bednarczyk, P.E. 2012 PDH Online PDH Center 5272 Meadow Estates Drive Fairfax, VA 22030-6658 Phone & Fax: 703-988-0088 www.pdhonline.org

More information

Control of Motor Characteristics by Squirrel-Cage Rotor Design

Control of Motor Characteristics by Squirrel-Cage Rotor Design 394 CHAPTER 7 INDUCTION MOTORS Control of Motor Characteristics by Squirrel-Cage Rotor Design The reactance X 2 in an induction motor equivalent circuit represents the referred form of the rotor s leakage

More information

8 Speed control of Induction Machines

8 Speed control of Induction Machines 8 Speed control of Induction Machines We have seen the speed torque characteristic of the machine. In the stable region of operation in the motoring mode, the curve is rather steep and goes from zero torque

More information

CHAPTER 5 SYNCHRONOUS GENERATOR

CHAPTER 5 SYNCHRONOUS GENERATOR CHPTER 5 SYNCHRONOUS GENERTOR Summary: 1. Synchronous Generator Construction 2. The Speed of Rotation of a Synchronous Generator 3. The Internal Generated Voltage of a Synchronous Generator 4. The Equivalent

More information

NO LOAD & BLOCK ROTOR TEST ON THREE PHASE INDUCTION MOTOR

NO LOAD & BLOCK ROTOR TEST ON THREE PHASE INDUCTION MOTOR INDEX NO. : M-142 TECHNICAL MANUAL FOR NO LOAD & BLOCK ROTOR TEST ON THREE PHASE INDUCTION MOTOR Manufactured by : PREMIER TRADING CORPORATION (An ISO 9001:2000 Certified Company) 212/1, Mansarover Civil

More information

DHANALAKSHMI COLLEGE OF ENGINEERING DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING EE2302 - ELECTRICAL MACHINES II UNIT-I SYNCHRONOUS GENERATOR

DHANALAKSHMI COLLEGE OF ENGINEERING DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING EE2302 - ELECTRICAL MACHINES II UNIT-I SYNCHRONOUS GENERATOR 1 DHANALAKSHMI COLLEGE OF ENGINEERING DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING Constructional details Types of rotors EE2302 - ELECTRICAL MACHINES II UNIT-I SYNCHRONOUS GENERATOR PART A 1.

More information

DIRECT CURRENT GENERATORS

DIRECT CURRENT GENERATORS DIRECT CURRENT GENERATORS Revision 12:50 14 Nov 05 INTRODUCTION A generator is a machine that converts mechanical energy into electrical energy by using the principle of magnetic induction. This principle

More information

Lab 14: 3-phase alternator.

Lab 14: 3-phase alternator. Lab 14: 3-phase alternator. Objective: to obtain the no-load saturation curve of the alternator; to determine the voltage regulation characteristic of the alternator with resistive, capacitive, and inductive

More information

Unit 33 Three-Phase Motors

Unit 33 Three-Phase Motors Unit 33 Three-Phase Motors Objectives: Discuss the operation of wound rotor motors. Discuss the operation of selsyn motors. Discuss the operation of synchronous motors. Determine the direction of rotation

More information

Prof. Krishna Vasudevan, Prof. G. Sridhara Rao, Prof. P. Sasidhara Rao

Prof. Krishna Vasudevan, Prof. G. Sridhara Rao, Prof. P. Sasidhara Rao 6 Synchronous motor 6.1 Principle of operation In order to understand the principle of operation of a synchronous motor, let us examine what happens if we connect the armature winding (laid out in the

More information

Equipment: Power Supply, DAI, Synchronous motor (8241), Electrodynamometer (8960), Tachometer, Timing belt.

Equipment: Power Supply, DAI, Synchronous motor (8241), Electrodynamometer (8960), Tachometer, Timing belt. Lab 9: Synchronous motor. Objective: to examine the design of a 3-phase synchronous motor; to learn how to connect it; to obtain its starting characteristic; to determine the full-load characteristic of

More information

2. A conductor of length 2m moves at 4m/s at 30 to a uniform magnetic field of 0.1T. Which one of the following gives the e.m.f. generated?

2. A conductor of length 2m moves at 4m/s at 30 to a uniform magnetic field of 0.1T. Which one of the following gives the e.m.f. generated? Extra Questions - 2 1. A straight length of wire moves through a uniform magnetic field. The e.m.f. produced across the ends of the wire will be maximum if it moves: a) along the lines of magnetic flux

More information

Introduction. Upon completion of Basics of AC Motors you should be able to:

Introduction. Upon completion of Basics of AC Motors you should be able to: Table of Contents Introduction...2 AC Motors...4 Force and Motion...6 AC Motor Construction... 12 Magnetism... 17 Electromagnetism... 19 Developing a Rotating Magnetic Field...24 Rotor Rotation...29 Motor

More information

Motor Fundamentals. DC Motor

Motor Fundamentals. DC Motor Motor Fundamentals Before we can examine the function of a drive, we must understand the basic operation of the motor. It is used to convert the electrical energy, supplied by the controller, to mechanical

More information

Equipment: Power Supply, DAI, Universal motor (8254), Electrodynamometer (8960), timing belt.

Equipment: Power Supply, DAI, Universal motor (8254), Electrodynamometer (8960), timing belt. Lab 12: The universal motor. Objective: to examine the construction of the universal motor; to determine its no-load and full-load characteristics while operating on AC; to determine its no-load and full-load

More information

AC Induction Motor Slip What It Is And How To Minimize It

AC Induction Motor Slip What It Is And How To Minimize It AC Induction Motor Slip What It Is And How To Minimize It Mauri Peltola, ABB Oy, Helsinki, Finland The alternating current (AC) induction motor is often referred to as the workhorse of the industry because

More information

13 ELECTRIC MOTORS. 13.1 Basic Relations

13 ELECTRIC MOTORS. 13.1 Basic Relations 13 ELECTRIC MOTORS Modern underwater vehicles and surface vessels are making increased use of electrical actuators, for all range of tasks including weaponry, control surfaces, and main propulsion. This

More information

Synchronous motor. Type. Non-excited motors

Synchronous motor. Type. Non-excited motors Synchronous motor A synchronous electric motor is an AC motor in which the rotation rate of the shaft is synchronized with the frequency of the AC supply current; the rotation period is exactly equal to

More information

Basics of Electricity

Basics of Electricity Basics of Electricity Generator Theory PJM State & Member Training Dept. PJM 2014 8/6/2013 Objectives The student will be able to: Describe the process of electromagnetic induction Identify the major components

More information

Three-Phase Induction Motor

Three-Phase Induction Motor EXPERIMENT Induction motor Three-Phase Induction Motors 208V LL OBJECTIVE This experiment demonstrates the performance of squirrel-cage induction motors and the method for deriving electrical equivalent

More information

How To Understand And Understand The Electrical Power System

How To Understand And Understand The Electrical Power System DOE-HDBK-1011/4-92 JUNE 1992 DOE FUNDAMENTALS HANDBOOK ELECTRICAL SCIENCE Volume 4 of 4 U.S. Department of Energy Washington, D.C. 20585 FSC-6910 Distribution Statement A. Approved for public release;

More information

Principles of Adjustable Frequency Drives

Principles of Adjustable Frequency Drives What is an Adjustable Frequency Drive? An adjustable frequency drive is a system for controlling the speed of an AC motor by controlling the frequency of the power supplied to the motor. A basic adjustable

More information

AC Motor Speed. n s = synchronous speed (in RPM), f = frequency (in Hz), and p = the number of poles

AC Motor Speed. n s = synchronous speed (in RPM), f = frequency (in Hz), and p = the number of poles AC Induction Motors Simplest and most rugged electric motor Consists of wound stator and rotor assembly AC in the primary member (stator) induces current in the secondary member (rotor) Combined electromagnetic

More information

SECTION 4 ELECTRIC MOTORS UNIT 17: TYPES OF ELECTRIC MOTORS

SECTION 4 ELECTRIC MOTORS UNIT 17: TYPES OF ELECTRIC MOTORS SECTION 4 ELECTRIC MOTORS UNIT 17: TYPES OF ELECTRIC MOTORS UNIT OBJECTIVES After studying this unit, the reader should be able to Describe the different types of open single-phase motors used to drive

More information

Lab 8: DC generators: shunt, series, and compounded.

Lab 8: DC generators: shunt, series, and compounded. Lab 8: DC generators: shunt, series, and compounded. Objective: to study the properties of DC generators under no-load and full-load conditions; to learn how to connect these generators; to obtain their

More information

THREE-PHASE INDUCTION MOTOR March 2007

THREE-PHASE INDUCTION MOTOR March 2007 THREE-PHASE INDUCTION MOTOR March 2007 A. PREPARATION 1. Introduction 2. The Rotating Field 3. Rotor Currents 4. Induction Motor Equivalent Circuit 5. Torque and Power Characteristics 6. Operation Beyond

More information

Direct Current Motors

Direct Current Motors Direct Current Motors DC MOTORS The DC machine can operate as a generator and as a motor. Chap 5. Electrical Machines by Wildi, 6 e Lecturer: R. Alba-Flores Alfred State College Spring 2008 When a DC machine

More information

How the efficiency of induction motor is measured?

How the efficiency of induction motor is measured? How the efficiency of induction motor is measured? S. Corino E. Romero L.F. Mantilla Department of Electrical Engineering and Energy E.T.S.I.I. y T. Universidad de Cantabria Avda de Los Castros, 395 Santander

More information

ELECTRICAL ENGINEERING Vol. III - Induction Motor and Self-Excited Induction Generator - Tze-Fun Chan

ELECTRICAL ENGINEERING Vol. III - Induction Motor and Self-Excited Induction Generator - Tze-Fun Chan INDUCTION MOTOR AND SELFEXCITED INDUCTION GENERATOR TzeFun Chan The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, China Keywords: threephase induction motor, singlephase induction motor,

More information

Application Information

Application Information Moog Components Group manufactures a comprehensive line of brush-type and brushless motors, as well as brushless controllers. The purpose of this document is to provide a guide for the selection and application

More information

Electric Motor Brake Horsepower Calculations

Electric Motor Brake Horsepower Calculations Electric Motor Brake Horsepower Calculations By Norm Christopherson These motor calculations are contained here as they apply to the changing conditions of the blower motor when pulley adjustments are

More information

Data Sheet. AC Industrial Electric Motors

Data Sheet. AC Industrial Electric Motors Data Pack B Issued ovember 2005 1502325812 Data Sheet AC Industrial Electric Motors Standards organisations The RS-ABB range of ac induction motors is produced to common European standards, these being

More information

USER MANUAL THE RESOLVER

USER MANUAL THE RESOLVER USR MANUAL TH RSOLVR ICP Department 4 has developed and produced a wide range of transmitter type resolvers for military and industrial applications. From a mechanical viewpoint, these products have been

More information

Synchronous generators are built in large units, their rating ranging from tens to hundreds of megawatts.

Synchronous generators are built in large units, their rating ranging from tens to hundreds of megawatts. II. Synchronous Generators Synchronous machines are principally used as alternating current (AC) generators. They supply the electric power used by all sectors of modern societies: industrial, commercial,

More information

Outline. Turbine Generators. Generator History 3/25/2014

Outline. Turbine Generators. Generator History 3/25/2014 Turbine Generators Andrew Kusiak 2139 Seamans Center Iowa City, Iowa 52242-1527 andrew-kusiak@uiowa.edu Tel: 319-335-5934 Fax: 319-335-5669 http://www.icaen.uiowa.edu/~ankusiak Outline Generators Synchronous

More information

FREQUENCY CONTROLLED AC MOTOR DRIVE

FREQUENCY CONTROLLED AC MOTOR DRIVE FREQUENCY CONTROLLED AC MOTOR DRIVE 1.0 Features of Standard AC Motors The squirrel cage induction motor is the electrical motor motor type most widely used in industry. This leading position results mainly

More information

Principles and Working of DC and AC machines

Principles and Working of DC and AC machines BITS Pilani Dubai Campus Principles and Working of DC and AC machines Dr Jagadish Nayak Constructional features BITS Pilani Dubai Campus DC Generator A generator consists of a stationary portion called

More information

AC generator theory. Resources and methods for learning about these subjects (list a few here, in preparation for your research):

AC generator theory. Resources and methods for learning about these subjects (list a few here, in preparation for your research): AC generator theory This worksheet and all related files are licensed under the Creative Commons Attribution License, version 1.0. To view a copy of this license, visit http://creativecommons.org/licenses/by/1.0/,

More information

EDEXCEL NATIONAL CERTIFICATE/DIPLOMA UNIT 5 - ELECTRICAL AND ELECTRONIC PRINCIPLES NQF LEVEL 3 OUTCOME 4 - ALTERNATING CURRENT

EDEXCEL NATIONAL CERTIFICATE/DIPLOMA UNIT 5 - ELECTRICAL AND ELECTRONIC PRINCIPLES NQF LEVEL 3 OUTCOME 4 - ALTERNATING CURRENT EDEXCEL NATIONAL CERTIFICATE/DIPLOMA UNIT 5 - ELECTRICAL AND ELECTRONIC PRINCIPLES NQF LEVEL 3 OUTCOME 4 - ALTERNATING CURRENT 4 Understand single-phase alternating current (ac) theory Single phase AC

More information

Motors and Generators

Motors and Generators Motors and Generators Electro-mechanical devices: convert electrical energy to mechanical motion/work and vice versa Operate on the coupling between currentcarrying conductors and magnetic fields Governed

More information

Chapter 6. Synchronous Machines

Chapter 6. Synchronous Machines 48550 Electrical Energy Technology Chapter 6. Synchronous Machines Topics to cover: 1) Introduction 2) Synchronous machine structures 3) Rotating magnetic field 4) Equivalent circuit model 5) Performance

More information

AC Generators and Motors

AC Generators and Motors AC Generators and Motors Course No: E03-008 Credit: 3 PDH A. Bhatia Continuing Education and Development, Inc. 9 Greyridge Farm Court Stony Point, NY 10980 P: (877) 322-5800 F: (877) 322-4774 info@cedengineering.com

More information

45. The peak value of an alternating current in a 1500-W device is 5.4 A. What is the rms voltage across?

45. The peak value of an alternating current in a 1500-W device is 5.4 A. What is the rms voltage across? PHYS Practice Problems hapters 8- hapter 8. 45. The peak value of an alternating current in a 5-W device is 5.4 A. What is the rms voltage across? The power and current can be used to find the peak voltage,

More information

SYNCHRONOUS MACHINE TESTING WITH MOTOR CIRCUIT ANALYSIS INSTRUMENTATION

SYNCHRONOUS MACHINE TESTING WITH MOTOR CIRCUIT ANALYSIS INSTRUMENTATION SYNCHRONOUS MACHINE TESTING WITH MOTOR CIRCUIT ANALYSIS INSTRUMENTATION Introduction Howard W. Penrose, Ph.D., CMRP Vice President, Engineering and Reliability Services Dreisilker Electric Motors, Inc.

More information

chapter6 Electrical machines and motors Unit 1 outcome 6

chapter6 Electrical machines and motors Unit 1 outcome 6 Electrical machines and motors chapter6 Unit 1 outcome 6 The principles of magnetism are central to many of the tasks you will carry out as an electrician. Magnetism, like gravity, is a fundamental force.

More information

INSTRUMENTATION AND CONTROL TUTORIAL 2 ELECTRIC ACTUATORS

INSTRUMENTATION AND CONTROL TUTORIAL 2 ELECTRIC ACTUATORS INSTRUMENTATION AND CONTROL TUTORIAL 2 ELECTRIC ACTUATORS This is a stand alone tutorial on electric motors and actuators. The tutorial is of interest to any student studying control systems and in particular

More information

The DC Motor/Generator Commutation Mystery. Commutation and Brushes. DC Machine Basics

The DC Motor/Generator Commutation Mystery. Commutation and Brushes. DC Machine Basics The DC Motor/Generator Commutation Mystery One small, yet vital piece of the DC electric motor puzzle is the carbon brush. Using the correct carbon brush is a key component for outstanding motor life,

More information

Keywords: synchronous generator, synchronous motor, automatic voltage regulator, V- curves, synchronizing power, hunting, excitation system

Keywords: synchronous generator, synchronous motor, automatic voltage regulator, V- curves, synchronizing power, hunting, excitation system SYNCHRONOUS MACHINES Tze-Fun Chan Hong Kong Polytechnic University, Hong Kong, China Keywords: synchronous generator, synchronous motor, automatic voltage regulator, V- curves, synchronizing power, hunting,

More information

DC GENERATOR THEORY. LIST the three conditions necessary to induce a voltage into a conductor.

DC GENERATOR THEORY. LIST the three conditions necessary to induce a voltage into a conductor. DC Generators DC generators are widely used to produce a DC voltage. The amount of voltage produced depends on a variety of factors. EO 1.5 LIST the three conditions necessary to induce a voltage into

More information

TERMINAL MARKINGS AND CONNECTIONS PART WINDING START

TERMINAL MARKINGS AND CONNECTIONS PART WINDING START TERMINAL MARKINGS AND CONNECTIONS PART WINDING START NEMA NOMENCLATURE 6 LEADS 7 7 3 9 8 Delta 3 9 8 Wye OPER. 9 MODE L L L3 OPEN 7 START 3 7,8,9 T T T3 T7 T8 T9 RUN,7,8 3,9 3 8 MOTOR LEADS 3 7 Double

More information

SIMULATION AND SPEED CONTROL OF INDUCTION MOTOR DRIVES

SIMULATION AND SPEED CONTROL OF INDUCTION MOTOR DRIVES SIMULATION AND SPEED CONTROL OF INDUCTION MOTOR DRIVES A THESIS SUBMITTED IN PARTIAL FULFILMENT OF THE REQUIREMENTS FOR THE DEGREE OF Bachelor of Technology In ELECTRICAL ENGINEERING By AMITPAL SINGH I.S.

More information

Technical Guide No. 100. High Performance Drives -- speed and torque regulation

Technical Guide No. 100. High Performance Drives -- speed and torque regulation Technical Guide No. 100 High Performance Drives -- speed and torque regulation Process Regulator Speed Regulator Torque Regulator Process Technical Guide: The illustrations, charts and examples given in

More information

How to Optimize Performance and Minimize Size in High Speed Applications High Performance Brushless DC Motors

How to Optimize Performance and Minimize Size in High Speed Applications High Performance Brushless DC Motors thinkmotion How to Optimize Performance and Minimize Size in High Speed Applications High Performance Brushless DC Motors I. Introduction II. III. IV. Optimization of a Brushless DC motor for high speed

More information

AC Generators. Basic Generator

AC Generators. Basic Generator AC Generators Basic Generator A basic generator consists of a magnetic field, an armature, slip rings, brushes and a resistive load. The magnetic field is usually an electromagnet. An armature is any number

More information

Module Title: Electrotechnology for Mech L7

Module Title: Electrotechnology for Mech L7 CORK INSTITUTE OF TECHNOLOGY INSTITIÚID TEICNEOLAÍOCHTA CHORCAÍ Autumn Examinations 2012 Module Title: Electrotechnology for Mech L7 Module Code: ELEC7007 School: School of Mechanical, Electrical and Process

More information

AND8008/D. Solid State Control Solutions for Three Phase 1 HP Motor APPLICATION NOTE

AND8008/D. Solid State Control Solutions for Three Phase 1 HP Motor APPLICATION NOTE Solid State Control Solutions for Three Phase 1 HP Motor APPLICATION NOTE INTRODUCTION In all kinds of manufacturing, it is very common to have equipment that has three phase motors for doing different

More information

Equipment: Power Supply, DAI, Variable resistance (8311), Variable inductance (8321)

Equipment: Power Supply, DAI, Variable resistance (8311), Variable inductance (8321) Lab 4: 3-phase circuits. Objective: to study voltage-current relationships in 3-phase circuits; to learn to make delta and Y connections; to calculate and measure real, apparent, and reactive powers. Equipment:

More information

C Standard AC Motors

C Standard AC Motors C Standard AC Standard AC C-1 Overview, Product Series... C-2 Constant... C-9 C-21 C-113 Reversible C-147 Overview, Product Series Constant Reversible Electromagnetic Brake C-155 Electromagnetic Brake

More information

WIND TURBINE TECHNOLOGY

WIND TURBINE TECHNOLOGY Module 2.2-2 WIND TURBINE TECHNOLOGY Electrical System Gerhard J. Gerdes Workshop on Renewable Energies November 14-25, 2005 Nadi, Republic of the Fiji Islands Contents Module 2.2 Types of generator systems

More information

SHIP SERVICE GENERATORS (AC)

SHIP SERVICE GENERATORS (AC) CHAPTER 14 SHIP SERVICE GENERATORS (AC) INTRODUCTION All generators change mechanical energy into electrical energy. This is the easiest way to transfer power over distances. Fuel is used to operate the

More information

DYNAMIC MODEL OF INDUCTION MOTORS FOR VECTOR CONTROL. Dal Y. Ohm Drivetech, Inc., Blacksburg, Virginia

DYNAMIC MODEL OF INDUCTION MOTORS FOR VECTOR CONTROL. Dal Y. Ohm Drivetech, Inc., Blacksburg, Virginia DYNAMIC MODEL OF INDUCTION MOTORS FOR VECTOR CONTROL Dal Y. Ohm Drivetech, Inc., Blacksburg, Virginia ABSTRACT: Although traditional perphase equivalent circuit has been widely used in steadystate analysis

More information

CHAPTER 4 DESIGN OF INTEGRAL SLOT AND FRACTIONAL SLOT BRUSHLESS DC MOTOR

CHAPTER 4 DESIGN OF INTEGRAL SLOT AND FRACTIONAL SLOT BRUSHLESS DC MOTOR 47 CHAPTER 4 DESIGN OF INTEGRAL SLOT AND FRACTIONAL SLOT BRUSHLESS DC MOTOR 4.1 INTRODUCTION This chapter deals with the design of 24 slots 8 poles, 48 slots 16 poles and 60 slots 16 poles brushless dc

More information

USE OF ARNO CONVERTER AND MOTOR-GENERATOR SET TO CONVERT A SINGLE-PHASE AC SUPPLY TO A THREE-PHASE AC FOR CONTROLLING THE SPEED OF A THREE-PHASE INDUCTION MOTOR BY USING A THREE-PHASE TO THREE-PHASE CYCLOCONVERTER

USE OF ARNO CONVERTER AND MOTOR-GENERATOR SET TO CONVERT A SINGLE-PHASE AC SUPPLY TO A THREE-PHASE AC FOR CONTROLLING THE SPEED OF A THREE-PHASE INDUCTION MOTOR BY USING A THREE-PHASE TO THREE-PHASE CYCLOCONVERTER International Journal of Electrical Engineering & Technology (IJEET) Volume 7, Issue 2, March-April, 2016, pp.19-28, Article ID: IJEET_07_02_003 Available online at http:// http://www.iaeme.com/ijeet/issues.asp?jtype=ijeet&vtype=7&itype=2

More information

ET 332b Ac Electric Machines and Power Systems

ET 332b Ac Electric Machines and Power Systems Instructor: Dr. Carl Spezia, PE Office: Engr. D110 Phone: 453-7839 E-mail: powerguy@siu.edu ET 332b Ac Electric Machines and Power Systems Office Hours: 9:00 am - 10:00 am M-W-F 2:00 pm - 3:00 pm M-W-F

More information

Traditional Design of Cage Rotor Induction Motors. Ronald G. Harley and Yao Duan Georgia Institute of Technology November, 2009

Traditional Design of Cage Rotor Induction Motors. Ronald G. Harley and Yao Duan Georgia Institute of Technology November, 2009 Traditional Design of Cage Rotor Induction Motors Ronald G. Harley and Yao Duan Georgia Institute of Technology November, 2009 Rating considerations Dimensions of a machine depend on Torque at a specific

More information

Chapter 4.5: Electric Motors, Variable Speed Drives

Chapter 4.5: Electric Motors, Variable Speed Drives Short type questions Chapter 4.5: Electric Motors, Variable Speed Drives 1. The resistance of a motor stator winding at 30 C is 0.264 ohms per phase. What will be the resistance of the stator winding per

More information

BRUSHLESS DC MOTORS. BLDC 22mm. BLDC Gearmotor Size 9. nuvodisc 32BF. BLDC Gearmotor Size 5

BRUSHLESS DC MOTORS. BLDC 22mm. BLDC Gearmotor Size 9. nuvodisc 32BF. BLDC Gearmotor Size 5 BRUSHLESS DC MOTORS BLDC Gearmotor Size 9 BLDC 22mm nuvodisc 32BF BLDC Gearmotor Size 5 Portescap Brushless DC motors are extremely reliable and built to deliver the best performances. Their high power

More information

Three phase circuits

Three phase circuits Three phase circuits THREE PHASE CIRCUITS THREE-PHASE ADVANTAGES 1. The horsepower rating of three-phase motors and the kva rating of three-phase transformers are 150% greater than single-phase motors

More information

On the Influence of Stator Slot shape on the Energy Conservation Associated with the Submersible Induction Motors

On the Influence of Stator Slot shape on the Energy Conservation Associated with the Submersible Induction Motors American Journal of Applied Sciences 8 (4): 393-399, 2011 ISSN 1546-9239 2010 Science Publications On the Influence of Stator Slot shape on the Energy Conservation Associated with the Submersible Induction

More information

NATIONAL CERTIFICATE (VOCATIONAL)

NATIONAL CERTIFICATE (VOCATIONAL) NATIONAL CERTIFICATE (VOCATIONAL) SUBJECT GUIDELINES ELECTRICAL PRINCIPLES AND PRACTICE NQF Level 4 September 2007 ELECTRICAL PRINCIPLES AND PRACTICE LEVEL 4 CONTENTS INTRODUCTION 1 DURATION AND TUITION

More information

Chapter 12: Three Phase Circuits

Chapter 12: Three Phase Circuits Chapter 12: Three Phase Circuits 12.1 What Is a Three Phase Circuit? 12.2 Balance Three Phase Voltages 12.3 Balance Three Phase Y to Y Connection 12.4 Other Balance Three Phase Connections 12.5 Power in

More information

INDUCTION REGULATOR. Objective:

INDUCTION REGULATOR. Objective: INDUCTION REGULATOR Objective: Using a wound rotor induction motor an Induction Regulator, study the effect of rotor position on the output voltage of the regulator. Also study its behaviour under load

More information

Inductance. Motors. Generators

Inductance. Motors. Generators Inductance Motors Generators Self-inductance Self-inductance occurs when the changing flux through a circuit arises from the circuit itself. As the current increases, the magnetic flux through a loop due

More information

Chapter 22: Electric motors and electromagnetic induction

Chapter 22: Electric motors and electromagnetic induction Chapter 22: Electric motors and electromagnetic induction The motor effect movement from electricity When a current is passed through a wire placed in a magnetic field a force is produced which acts on

More information

Section 10. Application Manual for NEMA Motors. Special Applications

Section 10. Application Manual for NEMA Motors. Special Applications Special Applications 1 Power Factor Correction 1 Methods of Starting 3AC Induction Motors 5 3 Duty Cycles and Inertia 3 4 Horsepower Determination 30 5 Formulas and General Data 34 Power Factor Correction

More information

THE PER-UNIT SYSTEM. (2) The per-unit values for various components lie within a narrow range regardless of the equipment rating.

THE PER-UNIT SYSTEM. (2) The per-unit values for various components lie within a narrow range regardless of the equipment rating. THE PER-UNIT SYSTEM An interconnected power system typically consists of many different voltage levels given a system containing several transformers and/or rotating machines. The per-unit system simplifies

More information

Direction of Induced Current

Direction of Induced Current Direction of Induced Current Bar magnet moves through coil Current induced in coil A S N v Reverse pole Induced current changes sign B N S v v Coil moves past fixed bar magnet Current induced in coil as

More information

AN887. AC Induction Motor Fundamentals INTRODUCTION BASIC CONSTRUCTION AND OPERATING PRINCIPLE. Stator

AN887. AC Induction Motor Fundamentals INTRODUCTION BASIC CONSTRUCTION AND OPERATING PRINCIPLE. Stator AC Induction Motor Fundamentals AN887 Author: INTRODUCTION Rakesh Parekh Microchip Technology Inc. AC induction motors are the most common motors used in industrial motion control systems, as well as in

More information

How to Turn an AC Induction Motor Into a DC Motor (A Matter of Perspective) Steve Bowling Application Segments Engineer Microchip Technology, Inc.

How to Turn an AC Induction Motor Into a DC Motor (A Matter of Perspective) Steve Bowling Application Segments Engineer Microchip Technology, Inc. 1 How to Turn an AC Induction Motor Into a DC Motor (A Matter of Perspective) Steve Bowling Application Segments Engineer Microchip Technology, Inc. The territory of high-performance motor control has

More information

Speed Control Methods of Various Types of Speed Control Motors. Kazuya SHIRAHATA

Speed Control Methods of Various Types of Speed Control Motors. Kazuya SHIRAHATA Speed Control Methods of Various Types of Speed Control Motors Kazuya SHIRAHATA Oriental Motor Co., Ltd. offers a wide variety of speed control motors. Our speed control motor packages include the motor,

More information

Equipment: Power Supply, DAI, Transformer (8341), Variable resistance (8311), Variable inductance (8321), Variable capacitance (8331)

Equipment: Power Supply, DAI, Transformer (8341), Variable resistance (8311), Variable inductance (8321), Variable capacitance (8331) Lab 5: Single-phase transformer operations. Objective: to examine the design of single-phase transformers; to study the voltage and current ratios of transformers; to study the voltage regulation of the

More information

Understanding the Alternator

Understanding the Alternator http://www.autoshop101.com THIS AUTOMOTIVE SERIES ON ALTERNATORS HAS BEEN DEVELOPED BY KEVIN R. SULLIVAN PROFESSOR OF AUTOMOTIVE TECHNOLOGY AT SKYLINE COLLEGE SAN BRUNO, CALIFORNIA ALL RIGHTS RESERVED

More information

We will discuss common industrial applications with guides for the proper use of electric motors on these.

We will discuss common industrial applications with guides for the proper use of electric motors on these. INTRODUCTION: Baldor Electric Company has prepared this Specifiers Guide to help you cover all the bases when you are specifying electric motors. It will cover in a generic way most of the subjects which

More information

5. Measurement of a magnetic field

5. Measurement of a magnetic field H 5. Measurement of a magnetic field 5.1 Introduction Magnetic fields play an important role in physics and engineering. In this experiment, three different methods are examined for the measurement of

More information

INDUCTION MOTOR PERFORMANCE TESTING WITH AN INVERTER POWER SUPPLY, PART 2

INDUCTION MOTOR PERFORMANCE TESTING WITH AN INVERTER POWER SUPPLY, PART 2 INDUCTION MOTOR PERFORMANCE TESTING WITH AN INVERTER POWER SUPPLY, PART 2 By: R.C. Zowarka T.J. Hotz J.R. Uglum H.E. Jordan 13th Electromagnetic Launch Technology Symposium, Potsdam (Berlin), Germany,

More information

Understanding Energy Efficient Motors

Understanding Energy Efficient Motors Understanding Energy Efficient Motors Reliable Solutions Today Introduction For anyone who specifies, buys, operates, or repairs electric motors today, the issue of motor efficiency is of growing concern

More information

THIS paper reports some results of a research, which aims to investigate the

THIS paper reports some results of a research, which aims to investigate the FACTA UNIVERSITATIS (NIŠ) SER.: ELEC. ENERG. vol. 22, no. 2, August 2009, 227-234 Determination of Rotor Slot Number of an Induction Motor Using an External Search Coil Ozan Keysan and H. Bülent Ertan

More information

Full representation of the real transformer

Full representation of the real transformer TRASFORMERS EQVALET CRCT OF TWO-WDG TRASFORMER TR- Dots show the points of higher potential. There are applied following conventions of arrow directions: -for primary circuit -the passive sign convention

More information

VARIABLE FREQUENCY DRIVES THEORY, APPLICATION, AND TROUBLESHOOTING

VARIABLE FREQUENCY DRIVES THEORY, APPLICATION, AND TROUBLESHOOTING VARIABLE FREQUENCY DRIVES THEORY, APPLICATION, AND TROUBLESHOOTING BY HOWARD W. PENROSE UNIVERSITY OF ILLINOIS AT CHICAGO ENERGY RESOURCES CENTER 851 SOUTH MORGAN STREET ROOM 1213, SEO, MC156 CHICAGO,

More information

Three-phase AC circuits

Three-phase AC circuits Three-phase AC circuits This worksheet and all related files are licensed under the Creative Commons Attribution License, version 1.0. To view a copy of this license, visit http://creativecommons.org/licenses/by/1.0/,

More information

Transformer circuit calculations

Transformer circuit calculations Transformer circuit calculations This worksheet and all related files are licensed under the Creative Commons Attribution License, version 1.0. To view a copy of this license, visit http://creativecommons.org/licenses/by/1.0/,

More information

PART I THEORY, CONSTRUCTION, AND OPERATION

PART I THEORY, CONSTRUCTION, AND OPERATION PART I THEORY, CONSTRUCTION, AND OPERATION 1 CHAPTER 1 PRINCIPLES OF OPERATION OF SYNCHRONOUS MACHINES The synchronous electrical generator (also called alternator) belongs to the family of electric rotating

More information

Physical Address: City: State: Zip Code:

Physical Address: City: State: Zip Code: Application for Small Generator Facility Interconnection Tier 2, Tier 3 or Tier 4 Interconnection (For Small Generator Facilities with Electric Nameplate Capacities of 10 MW and less) Applicant Contact

More information

Modelling, Simulation and Performance Analysis of A Variable Frequency Drive in Speed Control Of Induction Motor

Modelling, Simulation and Performance Analysis of A Variable Frequency Drive in Speed Control Of Induction Motor International Journal of Engineering Inventions e-issn: 78-7461, p-issn: 319-6491 Volume 3, Issue 5 (December 013) PP: 36-41 Modelling, Simulation and Performance Analysis of A Variable Frequency Drive

More information

ATTACHMENT F. Electric Utility Contact Information Utility Name. For Office Use Only

ATTACHMENT F. Electric Utility Contact Information Utility Name. For Office Use Only ATTACHMENT F CATEGORY 2 GENERATOR INTERCONNECTION APPLICATION FOR ALL PROJECTS WITH AGGREGATE GENERATOR OUTPUT OF MORE THAN 20 KW BUT LESS THAN OR EQUAL TO 150 KW Also Serves as Application for Category

More information