SlideShare a Scribd company logo
1 of 24
CONTENTS
EMF EQUATION OF AN ALTERNATOR
 For full pitched concentric winding
 For short pitched distributed winding
EMF EQUATION OF AN
ALTERNATOR
Consider the following
= flux per pole in wb
p = Number of poles
Ns = Synchronous speed in rpm
f = frequency of induced emf in Hz
Z = total number of stator conductors
Zph = conductors per phase connected in series
Tph = Number of turns per phase
• Assuming concentrated winding, considering one conductor
placed in a slot
• According to Faradays Law electromagnetic
induction,
• The average value of emf induced per conductor in
one revolution eavg = d /dt
• eavg = Change of Flux in one revolution/ Time taken
for one revolution
• Change of Flux in one revolution = p ×
• Time taken for one revolution = 60/Ns seconds
• Hence eavg = (p × ) / ( 60/Ns) = p × × Ns / 60
• We know f = pNs /120
• Hence pNs /60 = 2f
• Hence eavg = 2 f volts
• If there are Z conductors connected in series/phase,
• Hence average emf = 2 × f Z volts
since Z = 2 Tph
• Hence average emf per turn = 4 × f volts
• i.e. If there are Tph, number of turns per phase
connected in series,
• Then average emf induced in Tph turns is
Eph, avg = Tph x eavg = 4 f Tph volts
• Form factor = R.M.S. value/Average value = 1.11
………….. (if e.m.f. is assumed sinusoidal)
R.M.S. value = 1.11 × Average value
• Hence RMS value of emf induced/phase
E = 1.11 × Eph, avg
= 1.11 × 4 f Tph volts
• This is the general emf equation for the machine
having concentrated and full pitched winding.
• In practice, alternators will have short pitched
winding and hence coil span will not be 180o, but
on or two slots short than the full pitch.
• PITCH FACTOR:
• As shown in the above figure, consider the coil short pitched by
an angle , called chording angle .
• When the coils are full pitched the emf induced in each coil side
will be equal in magnitude and in phase with each other.
• Hence the resultant emf induced in the coil will be sum of the
emf induced.
• Hence Ec = E1 + E2 = 2E for full pitched coils,
• Hence total emf = algebraic sum of the emfs = vector
sum of emfs as shown in figure below,
• When the coils are shot pitched by an angle , the emf
induced in each coil side will be equal in magnitude
but will be out of phase by an angle equal to
chording angle.
• Hence the resultant emf is equal to the vector sum of
the emfs as shown in figure below.
• Hence the resultant coil emf is given by Ec=2E1cos
/2 = 2E cos /2 volts.
• Hence the resultant emf in the short pitched coils is
dependant on chording angle .
• Now the factor by which the emf induced in a short
pitched coil gets reduced is called PITCH FACTOR and
DEFINITION:
• It is defined as the ratio of emf induced in a short
pitched coil to emf induced in a full pitched coil.
• Pitch factor Kp= emf induced in a short pitched
coil/ emf induced in a full pitched coil
Kp = (2E cos /2 ) / 2E
• Kp = cos /2
• where is called chording angle.
Distribution Factor:
• Even though we assumed concentrated winding in
deriving emf equation, in practice an attempt is
made to distribute the winding in all the slots
coming under a pole.
• Such a winding is called distributed winding
• In concentrated winding the emf induced in all the
coil sides will be same in magnitude and in phase
with each other.
• In case of distributed winding the magnitude of emf
will be same but the emfs induced in each coil side
will not be in phase with each other as they are
distributed in the slots under a pole.
• The total emf will not be same as that in concentrated
winding but will be equal to the vector sum of the
emfs induced.
• Hence it will be less than that in the concentrated
winding
• The factor by which the emf induced in a distributed
winding gets reduced is called distribution factor
DEFINITION:
It is defined as defined as the ratio of emf induced in a
distributed winding to emf induced in a concentrated winding.
Distribution factor Kd = emf induced in a distributed winding/emf
induced in a concentrated winding
= vector sum of the emf / arithmetic sum of
the emf
Let
E = emf induced per coil side
m = number of slots per pole per phase,
n = number of slots per pole
 = slot angle = 180/n
• The emf induced in concentrated winding with m
slots per pole per phase = mE volts.
• Fig below shows the method of calculating the vector
sum of the voltages in a distributed winding having a
mutual phase difference of .
• When m is large curve ACEN will form the arc of a
circle of radius r.
• From the figure below AC = 2 × r × sin /2
• Hence arithmetic sum = m × 2r sin /2
• Now the vector sum of the emfs is AN as shown in
figure below = 2 × r × sin m /2
• The distribution factor Kd = vector sum of the emf /
arithmetic sum of the emf
= (2r sin m /2) / (m × 2r sin /2)
Kd = (sin m /2) / (m sin /2)
• In practical machines the windings will be generally
short pitched and distributed over the periphery of the
machine
• Hence in deducing the emf equation both pitch factor
and distribution factor has to be considered.
• Hence the general emf equation including pitch factor
and distribution factor can be given as
• EMF induced per phase = 4.44 f Tph × KpKd volts
• Eph = 4.44 KpKd f Tph volts
• Hence the line Voltage EL = × phase voltage
= Eph.
Effect of harmonics on Pitch and Distribution
factor
(a) If short – pitch angle or chording angle is for the
fundamental flux wave then its values for different
harmonics are
• For 3rd harmonics = 3
• For 5th harmonics = 5 and so on
• Pitch factor Kp = cos /2 ………for fundamental
= cos 3 /2 ………for 3rd harmonics
= cos 5 /2 ………..for 5th harmonics
• Distribution factor Kc = (sin nm /2) /(m sin n /2)
Where n = order of the harmonics
For n = 1 Kc = (sin m /2) /(m sin /2)
….. For fundamental
• For n = 3 Kc = (sin 3m /2) /(msin3 /2)
…………For 3rd harmonics
• For n = 5 Kc = (sin 5m /2) /(msin5 /2)
……......For 5th harmonics
• (b) Frequency also changes if the fundamental
frequency is 50Hz i.e. f1 = 50Hz
– For 3rd harmonics f3 = 3 ×50 = 150Hz
– For 5th harmonics f5 = 5 ×50 = 250Hz
SOLVED PROBLEMS
1. A 3 , 50 Hz, star connected salient pole
alternator has 216 slots with 5 conductors per
slot. All the conductors of each phase are
connected in series; the winding is distributed
and full pitched. The flux per pole is 30 mW
and the alternator runs at 250 rpm. Determinbe
the phase and line voltages of emf induced.
Given Data:
Ns = 250 rpm, f = 50 Hz,
m = 3, Ss = 216, Zs = 5, = 30 mWb
To Find:
Eph, Eline
Solution:
Step 1:
P = 120 × f/Ns = 120 × 50/250 = 24 poles
= 180o
/ number of slots/pole = 180o
/ (216/24)
= 20
Step 2:
Kd = ( sin m /2) / (m sin /2)
= ( sin 3 × 20 / 2) / (3 sin 20/2)
= 0.9597
Pitch factor Kp = 1 for full pitched winding
Step 3:
Tph= Zph/2 ; Zph= Z/m = Z/3
Z = conductor/ slot x number of slots
Tph= Z/6 = 216 x 5 /6 = 180
Step 4:
Eph = 4.44 Kp Kd f Tph vlolts
= 4.44 × 1 × 0.9597 × 50 × 30 × 10-3 × 180
= 1150.488 volts
Step 5:
Line Voltage ELine = × phase voltage = Eph
= × 1150.488
= 1992.65 volts
SOLVED PROBLEM
2. A 3 , 16 pole, star connected salient pole
alternator has 144 slots with 10 conductors per
slot. The alternator is run at 375 rpm.The
terminal voltage of the generator found to be
2.657kV. Determine the frequency of the
induced emf and the flux per pole.
GIVEN DATA:
Ns = 375 rpm, p =16,EL = 2.657 kV, Zss = 10, Ss = 144, phase = 3
TO FIND:
1. f, 2. Φ
FORMULA USED:
a) Eph = 4.44 KpKd f Φ Tph vlolts
b) f = P Ns /120
SOLUTION:
Step : 1
f = 16 × 375/120 = 50 Hz
Step : 2
Assuming full pitched winding Kp = 1
Number of slots per pole per phase m = (Ss)/ (p ×phase) = 144/(16 x 3) = 3
Step :3
Slot angle = 1800 / number of slots/pole = 1800/9 = 200
Step :4
Distribution factor Kd = ( sin m /2) / (m sin /2)
= ( sin 3 x 20 / 2) / (3 sin 20/2)
= 0.9597
Step:5
Turns per phase Tph = 144 × 10/ 6 = 240
Step:6
Eph = EL/3 = 2.657/3 = 1.534 kV
Step:7
Eph = 4.44 KpKd f ΦTph vlolts
1534.0 = 4.44 × 1 × 0.9597 × 50 × Φ × 240
Φ = 0.03 wb = 30 mwb
Unsolved problems
1. A 4 pole, 3 phase, 50 Hz, star connected
alternator has 60 slots with 4 conductors per
slot. The coils are short pitched by 3 slots. If
the phase spread is 600, find the line voltage
induced for a flux per pole of 0.943 wb.
Solution hint’s
• Slot angle = phase spread/ number of slots per pole/phase
= 60/5 = 12
• Distribution factor Kd = (sin m /2) / (m sin /2)
• Pitch factor = cos /2
• Coils are short chorded by 3 slots
• Slot angle = 180/number of slots/pole
= 180/15 = 12
• Therefore coil is short pitched by = 3 x slot angle
= 3 x 12 = 360

More Related Content

What's hot

What's hot (20)

Power Electronics lab manual BE EEE
Power Electronics lab manual BE EEEPower Electronics lab manual BE EEE
Power Electronics lab manual BE EEE
 
Drives lec 13_14_Speed Control of DC Motors
Drives lec 13_14_Speed Control of DC MotorsDrives lec 13_14_Speed Control of DC Motors
Drives lec 13_14_Speed Control of DC Motors
 
Power mosfet characteristics
Power mosfet characteristicsPower mosfet characteristics
Power mosfet characteristics
 
single phase energy meter.pptx
single phase energy meter.pptxsingle phase energy meter.pptx
single phase energy meter.pptx
 
Swing equation
Swing equationSwing equation
Swing equation
 
A presentation on inverter by manoj
A presentation on inverter by manojA presentation on inverter by manoj
A presentation on inverter by manoj
 
single-phase-induction-motor.ppt
single-phase-induction-motor.pptsingle-phase-induction-motor.ppt
single-phase-induction-motor.ppt
 
Single phase transformer
Single phase transformerSingle phase transformer
Single phase transformer
 
Armature reaction
Armature reactionArmature reaction
Armature reaction
 
Synchronous motor
Synchronous motorSynchronous motor
Synchronous motor
 
Sinusoidal pwm
Sinusoidal pwmSinusoidal pwm
Sinusoidal pwm
 
Torque - Slip Characteristic of a three phase induction motor
Torque - Slip Characteristic of a three   phase induction motorTorque - Slip Characteristic of a three   phase induction motor
Torque - Slip Characteristic of a three phase induction motor
 
DETERMINATION OF VOLTAGE REGULATION METHOD OF SYNCHRONOUS MACHINE
DETERMINATION OF VOLTAGE REGULATION METHOD OF SYNCHRONOUS MACHINEDETERMINATION OF VOLTAGE REGULATION METHOD OF SYNCHRONOUS MACHINE
DETERMINATION OF VOLTAGE REGULATION METHOD OF SYNCHRONOUS MACHINE
 
3 phase Induction Motor frequency of induced emf current and power factor -...
3 phase Induction Motor   frequency of induced emf current and power factor -...3 phase Induction Motor   frequency of induced emf current and power factor -...
3 phase Induction Motor frequency of induced emf current and power factor -...
 
Power system stability
Power system stabilityPower system stability
Power system stability
 
Synchronous machines
Synchronous machinesSynchronous machines
Synchronous machines
 
Three phase semi converter
Three phase semi converterThree phase semi converter
Three phase semi converter
 
Oscillators
OscillatorsOscillators
Oscillators
 
Electric machine
Electric machineElectric machine
Electric machine
 
Dc motor
Dc motorDc motor
Dc motor
 

Similar to EMF EQUATION.ppt

Electrical System Design transformer 4.pptx
Electrical System Design transformer 4.pptxElectrical System Design transformer 4.pptx
Electrical System Design transformer 4.pptx
GulAhmad16
 
4.alternating_currents.ppt
4.alternating_currents.ppt4.alternating_currents.ppt
4.alternating_currents.ppt
Ganeshsaini17
 
4.alternating_currents (1).ppt
4.alternating_currents (1).ppt4.alternating_currents (1).ppt
4.alternating_currents (1).ppt
Ganeshsaini17
 

Similar to EMF EQUATION.ppt (20)

emf equation of alternator, pitch factor & coil span factor
emf equation of alternator, pitch factor & coil span factoremf equation of alternator, pitch factor & coil span factor
emf equation of alternator, pitch factor & coil span factor
 
L16 1 ph-ac
L16 1 ph-acL16 1 ph-ac
L16 1 ph-ac
 
Electrical System Design transformer 4.pptx
Electrical System Design transformer 4.pptxElectrical System Design transformer 4.pptx
Electrical System Design transformer 4.pptx
 
Eet3082 binod kumar sahu lecturer_05 & 6 new
Eet3082 binod kumar sahu lecturer_05 & 6 newEet3082 binod kumar sahu lecturer_05 & 6 new
Eet3082 binod kumar sahu lecturer_05 & 6 new
 
Eet3082 binod kumar sahu lecturer_05 & 6 new
Eet3082 binod kumar sahu lecturer_05 & 6 newEet3082 binod kumar sahu lecturer_05 & 6 new
Eet3082 binod kumar sahu lecturer_05 & 6 new
 
Alternator
AlternatorAlternator
Alternator
 
Single phase AC circuit
Single phase AC  circuit  Single phase AC  circuit
Single phase AC circuit
 
Ac circuits notes
Ac circuits   notesAc circuits   notes
Ac circuits notes
 
4.alternating_currents.ppt
4.alternating_currents.ppt4.alternating_currents.ppt
4.alternating_currents.ppt
 
2_ALTERNATING_CURRENTS.ppt
2_ALTERNATING_CURRENTS.ppt2_ALTERNATING_CURRENTS.ppt
2_ALTERNATING_CURRENTS.ppt
 
4.alternating_currents (1).ppt
4.alternating_currents (1).ppt4.alternating_currents (1).ppt
4.alternating_currents (1).ppt
 
2_alternating_currents (2).pptx
2_alternating_currents (2).pptx2_alternating_currents (2).pptx
2_alternating_currents (2).pptx
 
2_alternating_currents.ppt
2_alternating_currents.ppt2_alternating_currents.ppt
2_alternating_currents.ppt
 
Eet3082 binod kumar sahu lecturer_07
Eet3082 binod kumar sahu lecturer_07Eet3082 binod kumar sahu lecturer_07
Eet3082 binod kumar sahu lecturer_07
 
2_alternating_currents.ppt
2_alternating_currents.ppt2_alternating_currents.ppt
2_alternating_currents.ppt
 
Design of transformer and chock coil
Design of transformer and chock coilDesign of transformer and chock coil
Design of transformer and chock coil
 
Incomplete PPT on first topic.pptx [Autosaved] [Autosaved].ppt
Incomplete PPT on first topic.pptx [Autosaved] [Autosaved].pptIncomplete PPT on first topic.pptx [Autosaved] [Autosaved].ppt
Incomplete PPT on first topic.pptx [Autosaved] [Autosaved].ppt
 
Concept of general terms pertaining to rotating machines
Concept of general terms pertaining to rotating machinesConcept of general terms pertaining to rotating machines
Concept of general terms pertaining to rotating machines
 
12330707_8b8f4641-a72a-483b-b1f7-22903571db2a.pdf
12330707_8b8f4641-a72a-483b-b1f7-22903571db2a.pdf12330707_8b8f4641-a72a-483b-b1f7-22903571db2a.pdf
12330707_8b8f4641-a72a-483b-b1f7-22903571db2a.pdf
 
class 12th physics (AC) alternating currents ppt
class 12th physics (AC) alternating currents pptclass 12th physics (AC) alternating currents ppt
class 12th physics (AC) alternating currents ppt
 

More from NANDHAKUMARA10

Earthing grounding protection Difference between earthing and grounding.pptx
Earthing  grounding protection Difference between earthing and grounding.pptxEarthing  grounding protection Difference between earthing and grounding.pptx
Earthing grounding protection Difference between earthing and grounding.pptx
NANDHAKUMARA10
 

More from NANDHAKUMARA10 (20)

the-solar-angle in a solar radaition.pptx
the-solar-angle in a solar radaition.pptxthe-solar-angle in a solar radaition.pptx
the-solar-angle in a solar radaition.pptx
 
Electromagnetic relays used for power system .pptx
Electromagnetic relays used for power system .pptxElectromagnetic relays used for power system .pptx
Electromagnetic relays used for power system .pptx
 
Block diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.pptBlock diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.ppt
 
Speed Control of three phase Induction motor.pptx
Speed Control of three phase Induction motor.pptxSpeed Control of three phase Induction motor.pptx
Speed Control of three phase Induction motor.pptx
 
Over load tap changer of Transformer.pptx
Over load tap changer of Transformer.pptxOver load tap changer of Transformer.pptx
Over load tap changer of Transformer.pptx
 
Starter for IM (DOL) for Three phase IM.pptx
Starter for IM (DOL) for Three phase IM.pptxStarter for IM (DOL) for Three phase IM.pptx
Starter for IM (DOL) for Three phase IM.pptx
 
Autotransformer starter for three phase IM.pptx
Autotransformer starter for three phase IM.pptxAutotransformer starter for three phase IM.pptx
Autotransformer starter for three phase IM.pptx
 
Transformer is a single phase device.pptx
Transformer is a single phase device.pptxTransformer is a single phase device.pptx
Transformer is a single phase device.pptx
 
Testing of DC machines using direct and indirect test.pptx
Testing of DC machines using direct and indirect test.pptxTesting of DC machines using direct and indirect test.pptx
Testing of DC machines using direct and indirect test.pptx
 
MONTHLY ELECTRICITY BILLING WITH BILL SMS USING PIC.pptx
MONTHLY ELECTRICITY BILLING WITH BILL SMS USING PIC.pptxMONTHLY ELECTRICITY BILLING WITH BILL SMS USING PIC.pptx
MONTHLY ELECTRICITY BILLING WITH BILL SMS USING PIC.pptx
 
phishing website detector. (user's identity)pptx
phishing website detector. (user's identity)pptxphishing website detector. (user's identity)pptx
phishing website detector. (user's identity)pptx
 
Air pollution and water monitoring system.pptx
Air pollution and water monitoring system.pptxAir pollution and water monitoring system.pptx
Air pollution and water monitoring system.pptx
 
Library Management System for book sorting-1.pptx
Library Management System for book sorting-1.pptxLibrary Management System for book sorting-1.pptx
Library Management System for book sorting-1.pptx
 
SMART INCUBATOR FOR INFANT MONITORING.pptx
SMART INCUBATOR FOR INFANT MONITORING.pptxSMART INCUBATOR FOR INFANT MONITORING.pptx
SMART INCUBATOR FOR INFANT MONITORING.pptx
 
PPT Format for Second Review is required for good Eunturpriner(2).pptx
PPT Format for Second Review is required for good Eunturpriner(2).pptxPPT Format for Second Review is required for good Eunturpriner(2).pptx
PPT Format for Second Review is required for good Eunturpriner(2).pptx
 
Earthing grounding protection Difference between earthing and grounding.pptx
Earthing  grounding protection Difference between earthing and grounding.pptxEarthing  grounding protection Difference between earthing and grounding.pptx
Earthing grounding protection Difference between earthing and grounding.pptx
 
Solar Module and solar part I solar energy resources.pptx
Solar Module and solar part I solar energy resources.pptxSolar Module and solar part I solar energy resources.pptx
Solar Module and solar part I solar energy resources.pptx
 
Time response of first order systems and second order systems
Time response of first order systems and second order systemsTime response of first order systems and second order systems
Time response of first order systems and second order systems
 
Switched reluctance motor used in automation systemptx
Switched reluctance motor used in automation systemptxSwitched reluctance motor used in automation systemptx
Switched reluctance motor used in automation systemptx
 
Solar Cells.pptx
Solar Cells.pptxSolar Cells.pptx
Solar Cells.pptx
 

Recently uploaded

Standard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayStandard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power Play
Epec Engineered Technologies
 
"Lesotho Leaps Forward: A Chronicle of Transformative Developments"
"Lesotho Leaps Forward: A Chronicle of Transformative Developments""Lesotho Leaps Forward: A Chronicle of Transformative Developments"
"Lesotho Leaps Forward: A Chronicle of Transformative Developments"
mphochane1998
 
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
ssuser89054b
 
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
9953056974 Low Rate Call Girls In Saket, Delhi NCR
 

Recently uploaded (20)

Standard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayStandard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power Play
 
Thermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - VThermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - V
 
Work-Permit-Receiver-in-Saudi-Aramco.pptx
Work-Permit-Receiver-in-Saudi-Aramco.pptxWork-Permit-Receiver-in-Saudi-Aramco.pptx
Work-Permit-Receiver-in-Saudi-Aramco.pptx
 
Introduction to Serverless with AWS Lambda
Introduction to Serverless with AWS LambdaIntroduction to Serverless with AWS Lambda
Introduction to Serverless with AWS Lambda
 
Design For Accessibility: Getting it right from the start
Design For Accessibility: Getting it right from the startDesign For Accessibility: Getting it right from the start
Design For Accessibility: Getting it right from the start
 
Unit 4_Part 1 CSE2001 Exception Handling and Function Template and Class Temp...
Unit 4_Part 1 CSE2001 Exception Handling and Function Template and Class Temp...Unit 4_Part 1 CSE2001 Exception Handling and Function Template and Class Temp...
Unit 4_Part 1 CSE2001 Exception Handling and Function Template and Class Temp...
 
"Lesotho Leaps Forward: A Chronicle of Transformative Developments"
"Lesotho Leaps Forward: A Chronicle of Transformative Developments""Lesotho Leaps Forward: A Chronicle of Transformative Developments"
"Lesotho Leaps Forward: A Chronicle of Transformative Developments"
 
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
 
Orlando’s Arnold Palmer Hospital Layout Strategy-1.pptx
Orlando’s Arnold Palmer Hospital Layout Strategy-1.pptxOrlando’s Arnold Palmer Hospital Layout Strategy-1.pptx
Orlando’s Arnold Palmer Hospital Layout Strategy-1.pptx
 
DC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationDC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equation
 
Computer Lecture 01.pptxIntroduction to Computers
Computer Lecture 01.pptxIntroduction to ComputersComputer Lecture 01.pptxIntroduction to Computers
Computer Lecture 01.pptxIntroduction to Computers
 
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
 
Navigating Complexity: The Role of Trusted Partners and VIAS3D in Dassault Sy...
Navigating Complexity: The Role of Trusted Partners and VIAS3D in Dassault Sy...Navigating Complexity: The Role of Trusted Partners and VIAS3D in Dassault Sy...
Navigating Complexity: The Role of Trusted Partners and VIAS3D in Dassault Sy...
 
HOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptx
HOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptxHOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptx
HOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptx
 
NO1 Top No1 Amil Baba In Azad Kashmir, Kashmir Black Magic Specialist Expert ...
NO1 Top No1 Amil Baba In Azad Kashmir, Kashmir Black Magic Specialist Expert ...NO1 Top No1 Amil Baba In Azad Kashmir, Kashmir Black Magic Specialist Expert ...
NO1 Top No1 Amil Baba In Azad Kashmir, Kashmir Black Magic Specialist Expert ...
 
S1S2 B.Arch MGU - HOA1&2 Module 3 -Temple Architecture of Kerala.pptx
S1S2 B.Arch MGU - HOA1&2 Module 3 -Temple Architecture of Kerala.pptxS1S2 B.Arch MGU - HOA1&2 Module 3 -Temple Architecture of Kerala.pptx
S1S2 B.Arch MGU - HOA1&2 Module 3 -Temple Architecture of Kerala.pptx
 
A Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna MunicipalityA Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna Municipality
 
kiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal loadkiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal load
 
GEAR TRAIN- BASIC CONCEPTS AND WORKING PRINCIPLE
GEAR TRAIN- BASIC CONCEPTS AND WORKING PRINCIPLEGEAR TRAIN- BASIC CONCEPTS AND WORKING PRINCIPLE
GEAR TRAIN- BASIC CONCEPTS AND WORKING PRINCIPLE
 
Online electricity billing project report..pdf
Online electricity billing project report..pdfOnline electricity billing project report..pdf
Online electricity billing project report..pdf
 

EMF EQUATION.ppt

  • 1. CONTENTS EMF EQUATION OF AN ALTERNATOR  For full pitched concentric winding  For short pitched distributed winding
  • 2. EMF EQUATION OF AN ALTERNATOR Consider the following = flux per pole in wb p = Number of poles Ns = Synchronous speed in rpm f = frequency of induced emf in Hz Z = total number of stator conductors Zph = conductors per phase connected in series Tph = Number of turns per phase • Assuming concentrated winding, considering one conductor placed in a slot
  • 3. • According to Faradays Law electromagnetic induction, • The average value of emf induced per conductor in one revolution eavg = d /dt • eavg = Change of Flux in one revolution/ Time taken for one revolution • Change of Flux in one revolution = p × • Time taken for one revolution = 60/Ns seconds • Hence eavg = (p × ) / ( 60/Ns) = p × × Ns / 60 • We know f = pNs /120 • Hence pNs /60 = 2f • Hence eavg = 2 f volts
  • 4. • If there are Z conductors connected in series/phase, • Hence average emf = 2 × f Z volts since Z = 2 Tph • Hence average emf per turn = 4 × f volts • i.e. If there are Tph, number of turns per phase connected in series, • Then average emf induced in Tph turns is Eph, avg = Tph x eavg = 4 f Tph volts • Form factor = R.M.S. value/Average value = 1.11 ………….. (if e.m.f. is assumed sinusoidal) R.M.S. value = 1.11 × Average value
  • 5. • Hence RMS value of emf induced/phase E = 1.11 × Eph, avg = 1.11 × 4 f Tph volts • This is the general emf equation for the machine having concentrated and full pitched winding. • In practice, alternators will have short pitched winding and hence coil span will not be 180o, but on or two slots short than the full pitch.
  • 6. • PITCH FACTOR: • As shown in the above figure, consider the coil short pitched by an angle , called chording angle . • When the coils are full pitched the emf induced in each coil side will be equal in magnitude and in phase with each other. • Hence the resultant emf induced in the coil will be sum of the emf induced.
  • 7. • Hence Ec = E1 + E2 = 2E for full pitched coils, • Hence total emf = algebraic sum of the emfs = vector sum of emfs as shown in figure below, • When the coils are shot pitched by an angle , the emf induced in each coil side will be equal in magnitude but will be out of phase by an angle equal to chording angle. • Hence the resultant emf is equal to the vector sum of the emfs as shown in figure below.
  • 8. • Hence the resultant coil emf is given by Ec=2E1cos /2 = 2E cos /2 volts. • Hence the resultant emf in the short pitched coils is dependant on chording angle . • Now the factor by which the emf induced in a short pitched coil gets reduced is called PITCH FACTOR and DEFINITION: • It is defined as the ratio of emf induced in a short pitched coil to emf induced in a full pitched coil.
  • 9. • Pitch factor Kp= emf induced in a short pitched coil/ emf induced in a full pitched coil Kp = (2E cos /2 ) / 2E • Kp = cos /2 • where is called chording angle. Distribution Factor: • Even though we assumed concentrated winding in deriving emf equation, in practice an attempt is made to distribute the winding in all the slots coming under a pole. • Such a winding is called distributed winding
  • 10. • In concentrated winding the emf induced in all the coil sides will be same in magnitude and in phase with each other. • In case of distributed winding the magnitude of emf will be same but the emfs induced in each coil side will not be in phase with each other as they are distributed in the slots under a pole. • The total emf will not be same as that in concentrated winding but will be equal to the vector sum of the emfs induced. • Hence it will be less than that in the concentrated winding • The factor by which the emf induced in a distributed winding gets reduced is called distribution factor
  • 11. DEFINITION: It is defined as defined as the ratio of emf induced in a distributed winding to emf induced in a concentrated winding. Distribution factor Kd = emf induced in a distributed winding/emf induced in a concentrated winding = vector sum of the emf / arithmetic sum of the emf Let E = emf induced per coil side m = number of slots per pole per phase, n = number of slots per pole  = slot angle = 180/n
  • 12. • The emf induced in concentrated winding with m slots per pole per phase = mE volts. • Fig below shows the method of calculating the vector sum of the voltages in a distributed winding having a mutual phase difference of .
  • 13. • When m is large curve ACEN will form the arc of a circle of radius r. • From the figure below AC = 2 × r × sin /2 • Hence arithmetic sum = m × 2r sin /2 • Now the vector sum of the emfs is AN as shown in figure below = 2 × r × sin m /2 • The distribution factor Kd = vector sum of the emf / arithmetic sum of the emf = (2r sin m /2) / (m × 2r sin /2) Kd = (sin m /2) / (m sin /2) • In practical machines the windings will be generally short pitched and distributed over the periphery of the machine
  • 14. • Hence in deducing the emf equation both pitch factor and distribution factor has to be considered. • Hence the general emf equation including pitch factor and distribution factor can be given as • EMF induced per phase = 4.44 f Tph × KpKd volts • Eph = 4.44 KpKd f Tph volts • Hence the line Voltage EL = × phase voltage = Eph.
  • 15. Effect of harmonics on Pitch and Distribution factor (a) If short – pitch angle or chording angle is for the fundamental flux wave then its values for different harmonics are • For 3rd harmonics = 3 • For 5th harmonics = 5 and so on • Pitch factor Kp = cos /2 ………for fundamental = cos 3 /2 ………for 3rd harmonics = cos 5 /2 ………..for 5th harmonics • Distribution factor Kc = (sin nm /2) /(m sin n /2) Where n = order of the harmonics For n = 1 Kc = (sin m /2) /(m sin /2) ….. For fundamental
  • 16. • For n = 3 Kc = (sin 3m /2) /(msin3 /2) …………For 3rd harmonics • For n = 5 Kc = (sin 5m /2) /(msin5 /2) ……......For 5th harmonics • (b) Frequency also changes if the fundamental frequency is 50Hz i.e. f1 = 50Hz – For 3rd harmonics f3 = 3 ×50 = 150Hz – For 5th harmonics f5 = 5 ×50 = 250Hz
  • 17. SOLVED PROBLEMS 1. A 3 , 50 Hz, star connected salient pole alternator has 216 slots with 5 conductors per slot. All the conductors of each phase are connected in series; the winding is distributed and full pitched. The flux per pole is 30 mW and the alternator runs at 250 rpm. Determinbe the phase and line voltages of emf induced.
  • 18. Given Data: Ns = 250 rpm, f = 50 Hz, m = 3, Ss = 216, Zs = 5, = 30 mWb To Find: Eph, Eline Solution: Step 1: P = 120 × f/Ns = 120 × 50/250 = 24 poles = 180o / number of slots/pole = 180o / (216/24) = 20 Step 2: Kd = ( sin m /2) / (m sin /2) = ( sin 3 × 20 / 2) / (3 sin 20/2) = 0.9597 Pitch factor Kp = 1 for full pitched winding
  • 19. Step 3: Tph= Zph/2 ; Zph= Z/m = Z/3 Z = conductor/ slot x number of slots Tph= Z/6 = 216 x 5 /6 = 180 Step 4: Eph = 4.44 Kp Kd f Tph vlolts = 4.44 × 1 × 0.9597 × 50 × 30 × 10-3 × 180 = 1150.488 volts Step 5: Line Voltage ELine = × phase voltage = Eph = × 1150.488 = 1992.65 volts
  • 20. SOLVED PROBLEM 2. A 3 , 16 pole, star connected salient pole alternator has 144 slots with 10 conductors per slot. The alternator is run at 375 rpm.The terminal voltage of the generator found to be 2.657kV. Determine the frequency of the induced emf and the flux per pole.
  • 21. GIVEN DATA: Ns = 375 rpm, p =16,EL = 2.657 kV, Zss = 10, Ss = 144, phase = 3 TO FIND: 1. f, 2. Φ FORMULA USED: a) Eph = 4.44 KpKd f Φ Tph vlolts b) f = P Ns /120 SOLUTION: Step : 1 f = 16 × 375/120 = 50 Hz Step : 2 Assuming full pitched winding Kp = 1 Number of slots per pole per phase m = (Ss)/ (p ×phase) = 144/(16 x 3) = 3 Step :3 Slot angle = 1800 / number of slots/pole = 1800/9 = 200 Step :4 Distribution factor Kd = ( sin m /2) / (m sin /2) = ( sin 3 x 20 / 2) / (3 sin 20/2) = 0.9597
  • 22. Step:5 Turns per phase Tph = 144 × 10/ 6 = 240 Step:6 Eph = EL/3 = 2.657/3 = 1.534 kV Step:7 Eph = 4.44 KpKd f ΦTph vlolts 1534.0 = 4.44 × 1 × 0.9597 × 50 × Φ × 240 Φ = 0.03 wb = 30 mwb
  • 23. Unsolved problems 1. A 4 pole, 3 phase, 50 Hz, star connected alternator has 60 slots with 4 conductors per slot. The coils are short pitched by 3 slots. If the phase spread is 600, find the line voltage induced for a flux per pole of 0.943 wb.
  • 24. Solution hint’s • Slot angle = phase spread/ number of slots per pole/phase = 60/5 = 12 • Distribution factor Kd = (sin m /2) / (m sin /2) • Pitch factor = cos /2 • Coils are short chorded by 3 slots • Slot angle = 180/number of slots/pole = 180/15 = 12 • Therefore coil is short pitched by = 3 x slot angle = 3 x 12 = 360