SlideShare ist ein Scribd-Unternehmen logo
1 von 4
Downloaden Sie, um offline zu lesen
IJSRD - International Journal for Scientific Research & Development| Vol. 1, Issue 3, 2013 | ISSN (online): 2321-0613
All rights reserved by www.ijsrd.com 506
Transient Stability of Power System using Facts Device-UPFC
Tapan G. Patel1
Jaydeep B. Sarvaiya2
1
M. E. [Electrical] Student 2
Assistant Professor
1, 2
Department of Electrical Engineering
1, 2
Shantilal Shah Engineering College, Bhavnagar, Gujarat, India
Abstract— This paper is based on Occurrence of a fault in a
power system causes transients. To stabilize the system, The
Flexible Alternating Current Transmission (FACTS) devices
such as UPFC are becoming important in suppressing
power system oscillations and improving system
damping. The UPFC is a solid-state device, which can be
used to control the active and reactive power.. By using a
UPFC the oscillation introduced by the faults, the rotor
angle and speed deviations can be damped out quickly than
a system without a UPFC. The effectiveness of UPFC in
suppressing power system oscillation is investigated by
analyzing their oscillation in rotor angle and change in
speed occurred in the two machine system considered in
this work. A proportional integral (PI) controller has been
employed for the UPFC. It is also shown that a UPFC can
control independently the real and reactive power flow in a
transmission line. A MATLAB simulation has been carried
out to demonstrate the performance of the UPFC in
achieving transient stability of the two-machine five-bus
system.
I. INTRODUCTION
The UPFC is the most versatile of the FACTS devices.
The main function of the UPFC is to control the flow
of real and reactive power by injection of a voltage in
series with the transmission line. Both the magnitude and
the phase angle of the voltage can be varied
independently. Real and reactive power flow control
can allow for power flow in prescribed routes, loading of
transmission lines closer to their thermal limits and can
be utilized for improving transient and small signal
stability of the power system.
The schematic of the UPFC is shown in Fig. 1
Fig. 1: Schematic diagram of UPFC
The UPFC consists of two branches. The series branch
consists of a voltage source converter, which injects a
voltage in series through a transformer. The inverter at the
input end of the UPFC is connected in shunt to the AC
power system and the inverter at the input end of the UPFC
is connected in series with the AC transmission circuit.
Since the series branch of the UPFC can inject a voltage
with variable magnitude and phase angle it can
exchange real power with the transmission line. However
the UPFC as a whole cannot supply or absorb real power in
steady state (except for the power drawn to compensate
for the losses) unless it has a power source at its DC
terminals.
II. PRINCIPLE OF OPERATION OF UPFC
Fig. 2: Basic circuit arrangement of the Unified Power Flow
Controller
The Unified Power Flow Controller (UPFC) was
proposed' for real turn-off time control and dynamic
compensation of ac transmission systems, providing the
necessary functional flexibility required to solve many of
the problems facing the utility industry. The Unified Power
Flow Controller consists of two switching converters,
which in the implementations considered are voltage
sourced inverters using gate thyristors valves, as
illustrated in Fig. These inverters, labeled "Inverter1" and
"Inverter 2" in the figure, are operated from a common dc
link provided by a dc storage capacitor. This arrangement
functions as an ideal auto ac power converter in which the
real power can freely flow in either direction between the
ac terminals of the two inverters and each inverter can
independently generate (or absorb) reactive power at its
own ac output terminal since the series branch of the UPFC
can inject a voltage with variable magnitude and phase
angle it can exchange real power with the transmission line.
However a UPFC as a whole cannot supply or absorb real
power in steady state (except for the power drawn to
compensate for the losses). Unless it has a power source at
its DC terminals. Thus the shunt branch is required to
Transmission Line
Shunt Transformer
VSC2 VSC1
Control
Transient Stability of Power System Using Facts Device-UPFC
(IJSRD/Vol. 1/Issue 3/2013/0025)
All rights reserved by www.ijsrd.com
507
compensate (from the system for any real power
drawn/supplied by the series branch and the losses. if the
power balance is not maintained, the capacitor cannot
remain at a constant voltage. Shunt branch can
independently exchange reactive power with the system.
The basic function of Inverter 1 is to supply or
absorb the real power demanded by Inverter 2 at the
common dc link. This dc link power is converted back to ac
and coupled to the transmission line via a shunt-connected
transformer. Inverter 1 can also generate or absorb
controllable .reactive power, if it is desired, and thereby it
can provide independent shunt reactive compensation for the
line. It is important to note that whereas there is a closed
"direct" path for the real power negotiated by the action of
series voltage injection through Inverters 1 and 2 back to the
line, the corresponding reactive power exchanged is
supplied or absorbed locally by Inverter 2 and therefore it
does not flow through the line. Thus, Inverter 1 can be
operated at a unity power factor or be controlled to have
a reactive power exchange with the line independently
of the reactive power exchanged by Inverter 2. This means
that there is no continuous reactive power flow through the
UPFC.
Basic UPFC control FunctionA.
Fig. 3 : Basic UPFC control function. (a)Voltage Regulation
(b) Series compensation (c) Angle regulation
(d) Multifunction power flow controller
ONE LINE DIAGRAM FOR Case studyB.
Fig. 4 : Circuit diagram for UPFC
Circuit DescriptionC.
UPFC is used to control the power flow in a 500 kV /230
kV transmission systems. The system, connected in a loop
configuration, consists essentially of five buses (B1 to B5)
interconnected through transmission lines (L1, L2, L3) and
two 500 kV/230 kV transformer banks Tr1 and Tr2. Two
power plants located on the 230-kV system generate a total
of 1500 MW which is transmitted to a 500-kV 15000-MVA
equivalent and to a 200-MW load connected at bus B3. The
plant models include a speed regulator, an excitation
system as well as a power system stabilizer (PSS). In
normal operation, most of the 1200-MW generation
capacity of power plant #2 is exported to the 500-kV
equivalent through three 400-MVA transformers connected
between buses B4 and B5. For this circuit we are
considering a contingency case where only two
transformers out of three are available (Tr2= 2*400 MVA =
800 MVA).
Using the load flow option of the powergui block,
the model has been initialized with plants #1 and #2
generating respectively 500 MW and 1000 MW and the
UPFC out of service (Bypass breaker closed). The resulting
power flow obtained at buses B1 to B5 is indicated by
numbers on the circuit diagram. The load flow shows that
most of the power generated by plant #2 is transmitted
through the 800-MVA transformer bank (899 MW out of
1000 MW), the rest (101 MW), circulating in the loop.
Transformer Tr2 is therefore overloaded by 99 MVA. The
circuit will illustrates how the UPFC can relieve this power
congestion.
The UPFC located at the right end of line L2 is
used to control the active and reactive powers at the 500-kV
bus B3, as well as the voltage at bus B_UPFC. It consists of
a phasor model of two 100-MVA, IGBT-based, converters
(one connected in shunt and one connected in series and
both interconnected through a DC bus on the DC side and to
the AC power system, through coupling reactors and
transformers). Parameters of the UPFC power components
are given in the dialog box. The series converter can inject a
maximum of 10% of nominal line-to-ground voltage (28.87
kV) in series with line L2. The b numbers on the diagram
show the power flow with the UPFC in service and
controlling the B3 active and reactive powers respectively at
687 MW and -27 Mvar.
Matlab File without UPFCD.
Fig. 5: MATLAB diagram for UPFC
Transient Stability of Power System Using Facts Device-UPFC
(IJSRD/Vol. 1/Issue 3/2013/0025)
All rights reserved by www.ijsrd.com
508
III. SIMULATION RESULT
Fig. 6 :System with UPFC
Fig. 6 : Without UPFC when Fault is created
Fig. 7 : Result when fault is created.
Fig. 8: MATLAB file with UPFC when fault is created
Fig. 9: Result when Fault is created with UPFC
IV. CONCLUSION
After this analysis in Research paper I conclude that
transient stability of power system will improve by using
UPFC. UPFC is most versatile device than other facts
devices. The Dynamic response of UPFC is better than other
device. It can control three parameter of power system.
REFERENCES
[1] Padiyar, K. R. , Power System Dynamics- Stability and
Control, John Wiely and Sons (SEA) Pte Ltd,
Singapore,1996.
[2] A. J. F. Ken (SM),A.S. Mehraban (M), A. A. Edris
(SM)Unified Power Flow Controller (UPFC): Modeling
and Analysis. April 1999
[3] S.V Ravi Kumar1 and S. Siva Nagaraju1,J.N.T.U.
Transient Stability of Power System Using Facts Device-UPFC
(IJSRD/Vol. 1/Issue 3/2013/0025)
All rights reserved by www.ijsrd.com
509
College of Engineering, Kakinada, A.P, India.Transient
Stability Improvement Using UPFC And Svc Arpn –
June -2006
[4] Amit Shiwalkar & N. D. Ghawghawe ,Power Flow
Control through Transmission Line with UPFC to
Mitigate Contingency, IJAEEE 2012
[5] Prechanon Kumkratug,Application of UPFC to Increase
Transient Stability of Inter-Area Power System
Academy Publisher 2009
[6] P. V. Chopade, MIEEE, LMISTE B. E. Kushare
MIEEE, LMISTE. Facts :Unified Power Flow
Controller (UPFC)-mathematical Modelling And
Performance Evaluation.
Makombe, T., An investigation of a unified power flow
controller,. PhD thesis, Umist, Uk, 1997

Weitere ähnliche Inhalte

Was ist angesagt?

Flexible AC Transmission Sytstem
Flexible AC Transmission Sytstem Flexible AC Transmission Sytstem
Flexible AC Transmission Sytstem
ganeshbehera6
 
Flexible Ac Transmission Systems 2Mark Materials and Question Bank
Flexible Ac Transmission Systems 2Mark Materials and Question BankFlexible Ac Transmission Systems 2Mark Materials and Question Bank
Flexible Ac Transmission Systems 2Mark Materials and Question Bank
Santhosh Kumar
 
An introduction to FACTS
An introduction to FACTSAn introduction to FACTS
An introduction to FACTS
Ayyarao T S L V
 
Power factor improvement using upfc
Power factor improvement using upfcPower factor improvement using upfc
Power factor improvement using upfc
Uday Wankar
 

Was ist angesagt? (20)

Concepts of Reactive Power Control and Voltage Stability Methods in Power Sys...
Concepts of Reactive Power Control and Voltage Stability Methods in Power Sys...Concepts of Reactive Power Control and Voltage Stability Methods in Power Sys...
Concepts of Reactive Power Control and Voltage Stability Methods in Power Sys...
 
Power system stability and control using facts devices
Power system stability and control using facts devicesPower system stability and control using facts devices
Power system stability and control using facts devices
 
Under voltage load shedding
Under voltage load sheddingUnder voltage load shedding
Under voltage load shedding
 
project report on IPFC
project report on IPFCproject report on IPFC
project report on IPFC
 
Power System Control
Power System ControlPower System Control
Power System Control
 
Facts
FactsFacts
Facts
 
Flexible AC Transmission Sytstem
Flexible AC Transmission Sytstem Flexible AC Transmission Sytstem
Flexible AC Transmission Sytstem
 
Power systems voltage and power control
Power systems voltage and power controlPower systems voltage and power control
Power systems voltage and power control
 
voltage stability by compensating reactive power
voltage stability by compensating reactive powervoltage stability by compensating reactive power
voltage stability by compensating reactive power
 
Upfc & fact
Upfc & factUpfc & fact
Upfc & fact
 
Presentation1
Presentation1Presentation1
Presentation1
 
Flexible AC Transmission (FACTS)
Flexible AC Transmission (FACTS)Flexible AC Transmission (FACTS)
Flexible AC Transmission (FACTS)
 
Flexible Ac Transmission Systems 2Mark Materials and Question Bank
Flexible Ac Transmission Systems 2Mark Materials and Question BankFlexible Ac Transmission Systems 2Mark Materials and Question Bank
Flexible Ac Transmission Systems 2Mark Materials and Question Bank
 
FACT devices
FACT devicesFACT devices
FACT devices
 
An introduction to FACTS
An introduction to FACTSAn introduction to FACTS
An introduction to FACTS
 
Flexible Ac Transmission System
Flexible Ac Transmission SystemFlexible Ac Transmission System
Flexible Ac Transmission System
 
Power system voltage stability
Power system voltage stabilityPower system voltage stability
Power system voltage stability
 
Power factor improvement using upfc
Power factor improvement using upfcPower factor improvement using upfc
Power factor improvement using upfc
 
APPLICATION OF STATCOM to IMPROVED DYNAMIC PERFORMANCE OF POWER SYSTEM
APPLICATION OF STATCOM to IMPROVED DYNAMIC PERFORMANCE OF POWER SYSTEMAPPLICATION OF STATCOM to IMPROVED DYNAMIC PERFORMANCE OF POWER SYSTEM
APPLICATION OF STATCOM to IMPROVED DYNAMIC PERFORMANCE OF POWER SYSTEM
 
Comparison performance of ipfc copy
Comparison performance of ipfc   copyComparison performance of ipfc   copy
Comparison performance of ipfc copy
 

Andere mochten auch

TRANSIENT STABILITY ANALYSIS
TRANSIENT STABILITY ANALYSISTRANSIENT STABILITY ANALYSIS
TRANSIENT STABILITY ANALYSIS
Jeff taly
 
Employing facts devices upfc for transient stability improvement
Employing facts devices  upfc   for transient stability improvementEmploying facts devices  upfc   for transient stability improvement
Employing facts devices upfc for transient stability improvement
IAEME Publication
 
chandan gitam 1424
chandan gitam 1424chandan gitam 1424
chandan gitam 1424
power system
 
PowerWorld 15. Transient Stability Quickstart
PowerWorld 15. Transient Stability QuickstartPowerWorld 15. Transient Stability Quickstart
PowerWorld 15. Transient Stability Quickstart
J. FR
 
Swing, voltage stability and power transfer capability in transmission system...
Swing, voltage stability and power transfer capability in transmission system...Swing, voltage stability and power transfer capability in transmission system...
Swing, voltage stability and power transfer capability in transmission system...
eSAT Journals
 

Andere mochten auch (20)

MajorProject2016
MajorProject2016MajorProject2016
MajorProject2016
 
TRANSIENT STABILITY ANALYSIS
TRANSIENT STABILITY ANALYSISTRANSIENT STABILITY ANALYSIS
TRANSIENT STABILITY ANALYSIS
 
Transient stability analysis on a multi machine system in psat
Transient stability analysis on a multi machine system in psatTransient stability analysis on a multi machine system in psat
Transient stability analysis on a multi machine system in psat
 
B010211015
B010211015B010211015
B010211015
 
Employing facts devices upfc for transient stability improvement
Employing facts devices  upfc   for transient stability improvementEmploying facts devices  upfc   for transient stability improvement
Employing facts devices upfc for transient stability improvement
 
ADR34xx Micro-Power, High-Accuracy Voltage References
ADR34xx Micro-Power, High-Accuracy Voltage ReferencesADR34xx Micro-Power, High-Accuracy Voltage References
ADR34xx Micro-Power, High-Accuracy Voltage References
 
Elektronika Daya - Statcom
Elektronika Daya - StatcomElektronika Daya - Statcom
Elektronika Daya - Statcom
 
Effect of converter dc fault on the transient stability of a multi machine po...
Effect of converter dc fault on the transient stability of a multi machine po...Effect of converter dc fault on the transient stability of a multi machine po...
Effect of converter dc fault on the transient stability of a multi machine po...
 
chandan gitam 1424
chandan gitam 1424chandan gitam 1424
chandan gitam 1424
 
TRANSIENT STABILITY CONSTRAINTS FOR OPTIMAL POWER FLOW - MATHANKUMAR.S - VMKVEC
TRANSIENT STABILITY CONSTRAINTS FOR OPTIMAL POWER FLOW  - MATHANKUMAR.S - VMKVECTRANSIENT STABILITY CONSTRAINTS FOR OPTIMAL POWER FLOW  - MATHANKUMAR.S - VMKVEC
TRANSIENT STABILITY CONSTRAINTS FOR OPTIMAL POWER FLOW - MATHANKUMAR.S - VMKVEC
 
Power quality 5
Power quality 5Power quality 5
Power quality 5
 
PowerWorld 15. Transient Stability Quickstart
PowerWorld 15. Transient Stability QuickstartPowerWorld 15. Transient Stability Quickstart
PowerWorld 15. Transient Stability Quickstart
 
Power System Stablity
Power System StablityPower System Stablity
Power System Stablity
 
Presentation
PresentationPresentation
Presentation
 
Transient stability analysis and enhancement of ieee 9 bus system
Transient stability analysis and enhancement of ieee  9 bus system Transient stability analysis and enhancement of ieee  9 bus system
Transient stability analysis and enhancement of ieee 9 bus system
 
Swing, voltage stability and power transfer capability in transmission system...
Swing, voltage stability and power transfer capability in transmission system...Swing, voltage stability and power transfer capability in transmission system...
Swing, voltage stability and power transfer capability in transmission system...
 
A017660107
A017660107A017660107
A017660107
 
Fault detection and diagnosis of high speed switching devices in power inverter
Fault detection and diagnosis of high speed switching devices in power inverterFault detection and diagnosis of high speed switching devices in power inverter
Fault detection and diagnosis of high speed switching devices in power inverter
 
A012250107
A012250107A012250107
A012250107
 
F017544247
F017544247F017544247
F017544247
 

Ähnlich wie Transient Stability of Power System using Facts Device-UPFC

Line Losses in the 14-Bus Power System Network using UPFC
Line Losses in the 14-Bus Power System Network using UPFCLine Losses in the 14-Bus Power System Network using UPFC
Line Losses in the 14-Bus Power System Network using UPFC
IDES Editor
 

Ähnlich wie Transient Stability of Power System using Facts Device-UPFC (20)

Performance and Analysis of Reactive Power Compensation by Unified Power Flow...
Performance and Analysis of Reactive Power Compensation by Unified Power Flow...Performance and Analysis of Reactive Power Compensation by Unified Power Flow...
Performance and Analysis of Reactive Power Compensation by Unified Power Flow...
 
Fi3110651072
Fi3110651072Fi3110651072
Fi3110651072
 
IRJET- Enhancement of Power Flow Capability in Power System using UPFC- A RevieW
IRJET- Enhancement of Power Flow Capability in Power System using UPFC- A RevieWIRJET- Enhancement of Power Flow Capability in Power System using UPFC- A RevieW
IRJET- Enhancement of Power Flow Capability in Power System using UPFC- A RevieW
 
Control of Active And reactive power flow in transmission line and power Osci...
Control of Active And reactive power flow in transmission line and power Osci...Control of Active And reactive power flow in transmission line and power Osci...
Control of Active And reactive power flow in transmission line and power Osci...
 
Line Losses in the 14-Bus Power System Network using UPFC
Line Losses in the 14-Bus Power System Network using UPFCLine Losses in the 14-Bus Power System Network using UPFC
Line Losses in the 14-Bus Power System Network using UPFC
 
POWER STABILITY ANALYSIS OF A TRANSMISSION SYSTEM WITH A UNIFIED POWER FLOW C...
POWER STABILITY ANALYSIS OF A TRANSMISSION SYSTEM WITH A UNIFIED POWER FLOW C...POWER STABILITY ANALYSIS OF A TRANSMISSION SYSTEM WITH A UNIFIED POWER FLOW C...
POWER STABILITY ANALYSIS OF A TRANSMISSION SYSTEM WITH A UNIFIED POWER FLOW C...
 
Static Sustenance of Power System Stability Using FLC Based UPFC in SMIB Powe...
Static Sustenance of Power System Stability Using FLC Based UPFC in SMIB Powe...Static Sustenance of Power System Stability Using FLC Based UPFC in SMIB Powe...
Static Sustenance of Power System Stability Using FLC Based UPFC in SMIB Powe...
 
Hq3513331337
Hq3513331337Hq3513331337
Hq3513331337
 
Load flow analysis with upfc under unsymmetrical fault condition
Load flow analysis with upfc under unsymmetrical fault conditionLoad flow analysis with upfc under unsymmetrical fault condition
Load flow analysis with upfc under unsymmetrical fault condition
 
Comparison of Multi-Machine Transient Stability Limit Using UPFC
Comparison of Multi-Machine Transient Stability Limit Using UPFCComparison of Multi-Machine Transient Stability Limit Using UPFC
Comparison of Multi-Machine Transient Stability Limit Using UPFC
 
Ak4101210215
Ak4101210215Ak4101210215
Ak4101210215
 
TRANSMISSION LOSS MINIMIZATION USING ADVANCED UNIFIED POWER FLOW CONTROLLER (...
TRANSMISSION LOSS MINIMIZATION USING ADVANCED UNIFIED POWER FLOW CONTROLLER (...TRANSMISSION LOSS MINIMIZATION USING ADVANCED UNIFIED POWER FLOW CONTROLLER (...
TRANSMISSION LOSS MINIMIZATION USING ADVANCED UNIFIED POWER FLOW CONTROLLER (...
 
International Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentInternational Journal of Engineering Research and Development
International Journal of Engineering Research and Development
 
Hs3414301435
Hs3414301435Hs3414301435
Hs3414301435
 
At4101261265
At4101261265At4101261265
At4101261265
 
International Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentInternational Journal of Engineering Research and Development
International Journal of Engineering Research and Development
 
D1072535
D1072535D1072535
D1072535
 
Review of the UPFC Different Models in Recent Years
Review of the UPFC Different Models in Recent YearsReview of the UPFC Different Models in Recent Years
Review of the UPFC Different Models in Recent Years
 
Me2420192024
Me2420192024Me2420192024
Me2420192024
 
Integration of Unified Power Quality Controller with DG
Integration of Unified Power Quality Controller with DGIntegration of Unified Power Quality Controller with DG
Integration of Unified Power Quality Controller with DG
 

Mehr von ijsrd.com

Mehr von ijsrd.com (20)

IoT Enabled Smart Grid
IoT Enabled Smart GridIoT Enabled Smart Grid
IoT Enabled Smart Grid
 
A Survey Report on : Security & Challenges in Internet of Things
A Survey Report on : Security & Challenges in Internet of ThingsA Survey Report on : Security & Challenges in Internet of Things
A Survey Report on : Security & Challenges in Internet of Things
 
IoT for Everyday Life
IoT for Everyday LifeIoT for Everyday Life
IoT for Everyday Life
 
Study on Issues in Managing and Protecting Data of IOT
Study on Issues in Managing and Protecting Data of IOTStudy on Issues in Managing and Protecting Data of IOT
Study on Issues in Managing and Protecting Data of IOT
 
Interactive Technologies for Improving Quality of Education to Build Collabor...
Interactive Technologies for Improving Quality of Education to Build Collabor...Interactive Technologies for Improving Quality of Education to Build Collabor...
Interactive Technologies for Improving Quality of Education to Build Collabor...
 
Internet of Things - Paradigm Shift of Future Internet Application for Specia...
Internet of Things - Paradigm Shift of Future Internet Application for Specia...Internet of Things - Paradigm Shift of Future Internet Application for Specia...
Internet of Things - Paradigm Shift of Future Internet Application for Specia...
 
A Study of the Adverse Effects of IoT on Student's Life
A Study of the Adverse Effects of IoT on Student's LifeA Study of the Adverse Effects of IoT on Student's Life
A Study of the Adverse Effects of IoT on Student's Life
 
Pedagogy for Effective use of ICT in English Language Learning
Pedagogy for Effective use of ICT in English Language LearningPedagogy for Effective use of ICT in English Language Learning
Pedagogy for Effective use of ICT in English Language Learning
 
Virtual Eye - Smart Traffic Navigation System
Virtual Eye - Smart Traffic Navigation SystemVirtual Eye - Smart Traffic Navigation System
Virtual Eye - Smart Traffic Navigation System
 
Ontological Model of Educational Programs in Computer Science (Bachelor and M...
Ontological Model of Educational Programs in Computer Science (Bachelor and M...Ontological Model of Educational Programs in Computer Science (Bachelor and M...
Ontological Model of Educational Programs in Computer Science (Bachelor and M...
 
Understanding IoT Management for Smart Refrigerator
Understanding IoT Management for Smart RefrigeratorUnderstanding IoT Management for Smart Refrigerator
Understanding IoT Management for Smart Refrigerator
 
DESIGN AND ANALYSIS OF DOUBLE WISHBONE SUSPENSION SYSTEM USING FINITE ELEMENT...
DESIGN AND ANALYSIS OF DOUBLE WISHBONE SUSPENSION SYSTEM USING FINITE ELEMENT...DESIGN AND ANALYSIS OF DOUBLE WISHBONE SUSPENSION SYSTEM USING FINITE ELEMENT...
DESIGN AND ANALYSIS OF DOUBLE WISHBONE SUSPENSION SYSTEM USING FINITE ELEMENT...
 
A Review: Microwave Energy for materials processing
A Review: Microwave Energy for materials processingA Review: Microwave Energy for materials processing
A Review: Microwave Energy for materials processing
 
Web Usage Mining: A Survey on User's Navigation Pattern from Web Logs
Web Usage Mining: A Survey on User's Navigation Pattern from Web LogsWeb Usage Mining: A Survey on User's Navigation Pattern from Web Logs
Web Usage Mining: A Survey on User's Navigation Pattern from Web Logs
 
Making model of dual axis solar tracking with Maximum Power Point Tracking
Making model of dual axis solar tracking with Maximum Power Point TrackingMaking model of dual axis solar tracking with Maximum Power Point Tracking
Making model of dual axis solar tracking with Maximum Power Point Tracking
 
A REVIEW PAPER ON PERFORMANCE AND EMISSION TEST OF 4 STROKE DIESEL ENGINE USI...
A REVIEW PAPER ON PERFORMANCE AND EMISSION TEST OF 4 STROKE DIESEL ENGINE USI...A REVIEW PAPER ON PERFORMANCE AND EMISSION TEST OF 4 STROKE DIESEL ENGINE USI...
A REVIEW PAPER ON PERFORMANCE AND EMISSION TEST OF 4 STROKE DIESEL ENGINE USI...
 
Study and Review on Various Current Comparators
Study and Review on Various Current ComparatorsStudy and Review on Various Current Comparators
Study and Review on Various Current Comparators
 
Reducing Silicon Real Estate and Switching Activity Using Low Power Test Patt...
Reducing Silicon Real Estate and Switching Activity Using Low Power Test Patt...Reducing Silicon Real Estate and Switching Activity Using Low Power Test Patt...
Reducing Silicon Real Estate and Switching Activity Using Low Power Test Patt...
 
Defending Reactive Jammers in WSN using a Trigger Identification Service.
Defending Reactive Jammers in WSN using a Trigger Identification Service.Defending Reactive Jammers in WSN using a Trigger Identification Service.
Defending Reactive Jammers in WSN using a Trigger Identification Service.
 
DESIGN OF FIXTURE OF CONNECTING ROD FOR BORING OPERATION
DESIGN OF FIXTURE OF CONNECTING ROD FOR BORING OPERATIONDESIGN OF FIXTURE OF CONNECTING ROD FOR BORING OPERATION
DESIGN OF FIXTURE OF CONNECTING ROD FOR BORING OPERATION
 

Kürzlich hochgeladen

notes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.pptnotes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.ppt
MsecMca
 
VIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 BookingVIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 Booking
dharasingh5698
 
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night StandCall Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
amitlee9823
 

Kürzlich hochgeladen (20)

notes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.pptnotes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.ppt
 
VIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 BookingVIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Palanpur 7001035870 Whatsapp Number, 24/07 Booking
 
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
 
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night StandCall Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
 
Call Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance BookingCall Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance Booking
 
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
 
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELLPVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
 
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
 
Booking open Available Pune Call Girls Koregaon Park 6297143586 Call Hot Ind...
Booking open Available Pune Call Girls Koregaon Park  6297143586 Call Hot Ind...Booking open Available Pune Call Girls Koregaon Park  6297143586 Call Hot Ind...
Booking open Available Pune Call Girls Koregaon Park 6297143586 Call Hot Ind...
 
Call Girls Pimpri Chinchwad Call Me 7737669865 Budget Friendly No Advance Boo...
Call Girls Pimpri Chinchwad Call Me 7737669865 Budget Friendly No Advance Boo...Call Girls Pimpri Chinchwad Call Me 7737669865 Budget Friendly No Advance Boo...
Call Girls Pimpri Chinchwad Call Me 7737669865 Budget Friendly No Advance Boo...
 
Double rodded leveling 1 pdf activity 01
Double rodded leveling 1 pdf activity 01Double rodded leveling 1 pdf activity 01
Double rodded leveling 1 pdf activity 01
 
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance BookingCall Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
 
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
 
Booking open Available Pune Call Girls Pargaon 6297143586 Call Hot Indian Gi...
Booking open Available Pune Call Girls Pargaon  6297143586 Call Hot Indian Gi...Booking open Available Pune Call Girls Pargaon  6297143586 Call Hot Indian Gi...
Booking open Available Pune Call Girls Pargaon 6297143586 Call Hot Indian Gi...
 
Water Industry Process Automation & Control Monthly - April 2024
Water Industry Process Automation & Control Monthly - April 2024Water Industry Process Automation & Control Monthly - April 2024
Water Industry Process Automation & Control Monthly - April 2024
 
chapter 5.pptx: drainage and irrigation engineering
chapter 5.pptx: drainage and irrigation engineeringchapter 5.pptx: drainage and irrigation engineering
chapter 5.pptx: drainage and irrigation engineering
 
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
VIP Model Call Girls Kothrud ( Pune ) Call ON 8005736733 Starting From 5K to ...
 
Generative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTGenerative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPT
 
Intze Overhead Water Tank Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank  Design by Working Stress - IS Method.pdfIntze Overhead Water Tank  Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank Design by Working Stress - IS Method.pdf
 
Unit 1 - Soil Classification and Compaction.pdf
Unit 1 - Soil Classification and Compaction.pdfUnit 1 - Soil Classification and Compaction.pdf
Unit 1 - Soil Classification and Compaction.pdf
 

Transient Stability of Power System using Facts Device-UPFC

  • 1. IJSRD - International Journal for Scientific Research & Development| Vol. 1, Issue 3, 2013 | ISSN (online): 2321-0613 All rights reserved by www.ijsrd.com 506 Transient Stability of Power System using Facts Device-UPFC Tapan G. Patel1 Jaydeep B. Sarvaiya2 1 M. E. [Electrical] Student 2 Assistant Professor 1, 2 Department of Electrical Engineering 1, 2 Shantilal Shah Engineering College, Bhavnagar, Gujarat, India Abstract— This paper is based on Occurrence of a fault in a power system causes transients. To stabilize the system, The Flexible Alternating Current Transmission (FACTS) devices such as UPFC are becoming important in suppressing power system oscillations and improving system damping. The UPFC is a solid-state device, which can be used to control the active and reactive power.. By using a UPFC the oscillation introduced by the faults, the rotor angle and speed deviations can be damped out quickly than a system without a UPFC. The effectiveness of UPFC in suppressing power system oscillation is investigated by analyzing their oscillation in rotor angle and change in speed occurred in the two machine system considered in this work. A proportional integral (PI) controller has been employed for the UPFC. It is also shown that a UPFC can control independently the real and reactive power flow in a transmission line. A MATLAB simulation has been carried out to demonstrate the performance of the UPFC in achieving transient stability of the two-machine five-bus system. I. INTRODUCTION The UPFC is the most versatile of the FACTS devices. The main function of the UPFC is to control the flow of real and reactive power by injection of a voltage in series with the transmission line. Both the magnitude and the phase angle of the voltage can be varied independently. Real and reactive power flow control can allow for power flow in prescribed routes, loading of transmission lines closer to their thermal limits and can be utilized for improving transient and small signal stability of the power system. The schematic of the UPFC is shown in Fig. 1 Fig. 1: Schematic diagram of UPFC The UPFC consists of two branches. The series branch consists of a voltage source converter, which injects a voltage in series through a transformer. The inverter at the input end of the UPFC is connected in shunt to the AC power system and the inverter at the input end of the UPFC is connected in series with the AC transmission circuit. Since the series branch of the UPFC can inject a voltage with variable magnitude and phase angle it can exchange real power with the transmission line. However the UPFC as a whole cannot supply or absorb real power in steady state (except for the power drawn to compensate for the losses) unless it has a power source at its DC terminals. II. PRINCIPLE OF OPERATION OF UPFC Fig. 2: Basic circuit arrangement of the Unified Power Flow Controller The Unified Power Flow Controller (UPFC) was proposed' for real turn-off time control and dynamic compensation of ac transmission systems, providing the necessary functional flexibility required to solve many of the problems facing the utility industry. The Unified Power Flow Controller consists of two switching converters, which in the implementations considered are voltage sourced inverters using gate thyristors valves, as illustrated in Fig. These inverters, labeled "Inverter1" and "Inverter 2" in the figure, are operated from a common dc link provided by a dc storage capacitor. This arrangement functions as an ideal auto ac power converter in which the real power can freely flow in either direction between the ac terminals of the two inverters and each inverter can independently generate (or absorb) reactive power at its own ac output terminal since the series branch of the UPFC can inject a voltage with variable magnitude and phase angle it can exchange real power with the transmission line. However a UPFC as a whole cannot supply or absorb real power in steady state (except for the power drawn to compensate for the losses). Unless it has a power source at its DC terminals. Thus the shunt branch is required to Transmission Line Shunt Transformer VSC2 VSC1 Control
  • 2. Transient Stability of Power System Using Facts Device-UPFC (IJSRD/Vol. 1/Issue 3/2013/0025) All rights reserved by www.ijsrd.com 507 compensate (from the system for any real power drawn/supplied by the series branch and the losses. if the power balance is not maintained, the capacitor cannot remain at a constant voltage. Shunt branch can independently exchange reactive power with the system. The basic function of Inverter 1 is to supply or absorb the real power demanded by Inverter 2 at the common dc link. This dc link power is converted back to ac and coupled to the transmission line via a shunt-connected transformer. Inverter 1 can also generate or absorb controllable .reactive power, if it is desired, and thereby it can provide independent shunt reactive compensation for the line. It is important to note that whereas there is a closed "direct" path for the real power negotiated by the action of series voltage injection through Inverters 1 and 2 back to the line, the corresponding reactive power exchanged is supplied or absorbed locally by Inverter 2 and therefore it does not flow through the line. Thus, Inverter 1 can be operated at a unity power factor or be controlled to have a reactive power exchange with the line independently of the reactive power exchanged by Inverter 2. This means that there is no continuous reactive power flow through the UPFC. Basic UPFC control FunctionA. Fig. 3 : Basic UPFC control function. (a)Voltage Regulation (b) Series compensation (c) Angle regulation (d) Multifunction power flow controller ONE LINE DIAGRAM FOR Case studyB. Fig. 4 : Circuit diagram for UPFC Circuit DescriptionC. UPFC is used to control the power flow in a 500 kV /230 kV transmission systems. The system, connected in a loop configuration, consists essentially of five buses (B1 to B5) interconnected through transmission lines (L1, L2, L3) and two 500 kV/230 kV transformer banks Tr1 and Tr2. Two power plants located on the 230-kV system generate a total of 1500 MW which is transmitted to a 500-kV 15000-MVA equivalent and to a 200-MW load connected at bus B3. The plant models include a speed regulator, an excitation system as well as a power system stabilizer (PSS). In normal operation, most of the 1200-MW generation capacity of power plant #2 is exported to the 500-kV equivalent through three 400-MVA transformers connected between buses B4 and B5. For this circuit we are considering a contingency case where only two transformers out of three are available (Tr2= 2*400 MVA = 800 MVA). Using the load flow option of the powergui block, the model has been initialized with plants #1 and #2 generating respectively 500 MW and 1000 MW and the UPFC out of service (Bypass breaker closed). The resulting power flow obtained at buses B1 to B5 is indicated by numbers on the circuit diagram. The load flow shows that most of the power generated by plant #2 is transmitted through the 800-MVA transformer bank (899 MW out of 1000 MW), the rest (101 MW), circulating in the loop. Transformer Tr2 is therefore overloaded by 99 MVA. The circuit will illustrates how the UPFC can relieve this power congestion. The UPFC located at the right end of line L2 is used to control the active and reactive powers at the 500-kV bus B3, as well as the voltage at bus B_UPFC. It consists of a phasor model of two 100-MVA, IGBT-based, converters (one connected in shunt and one connected in series and both interconnected through a DC bus on the DC side and to the AC power system, through coupling reactors and transformers). Parameters of the UPFC power components are given in the dialog box. The series converter can inject a maximum of 10% of nominal line-to-ground voltage (28.87 kV) in series with line L2. The b numbers on the diagram show the power flow with the UPFC in service and controlling the B3 active and reactive powers respectively at 687 MW and -27 Mvar. Matlab File without UPFCD. Fig. 5: MATLAB diagram for UPFC
  • 3. Transient Stability of Power System Using Facts Device-UPFC (IJSRD/Vol. 1/Issue 3/2013/0025) All rights reserved by www.ijsrd.com 508 III. SIMULATION RESULT Fig. 6 :System with UPFC Fig. 6 : Without UPFC when Fault is created Fig. 7 : Result when fault is created. Fig. 8: MATLAB file with UPFC when fault is created Fig. 9: Result when Fault is created with UPFC IV. CONCLUSION After this analysis in Research paper I conclude that transient stability of power system will improve by using UPFC. UPFC is most versatile device than other facts devices. The Dynamic response of UPFC is better than other device. It can control three parameter of power system. REFERENCES [1] Padiyar, K. R. , Power System Dynamics- Stability and Control, John Wiely and Sons (SEA) Pte Ltd, Singapore,1996. [2] A. J. F. Ken (SM),A.S. Mehraban (M), A. A. Edris (SM)Unified Power Flow Controller (UPFC): Modeling and Analysis. April 1999 [3] S.V Ravi Kumar1 and S. Siva Nagaraju1,J.N.T.U.
  • 4. Transient Stability of Power System Using Facts Device-UPFC (IJSRD/Vol. 1/Issue 3/2013/0025) All rights reserved by www.ijsrd.com 509 College of Engineering, Kakinada, A.P, India.Transient Stability Improvement Using UPFC And Svc Arpn – June -2006 [4] Amit Shiwalkar & N. D. Ghawghawe ,Power Flow Control through Transmission Line with UPFC to Mitigate Contingency, IJAEEE 2012 [5] Prechanon Kumkratug,Application of UPFC to Increase Transient Stability of Inter-Area Power System Academy Publisher 2009 [6] P. V. Chopade, MIEEE, LMISTE B. E. Kushare MIEEE, LMISTE. Facts :Unified Power Flow Controller (UPFC)-mathematical Modelling And Performance Evaluation. Makombe, T., An investigation of a unified power flow controller,. PhD thesis, Umist, Uk, 1997