SlideShare a Scribd company logo
1 of 49
INTRODUCTION TO PSCAD
ECE 692 Grid Measurement and Simulation
Abdulelah Alharbi
August 30, 2023
Outlines:
īƒ˜Getting started and basic features of PSCAD,
īƒ˜System Simulation of PSCAD,
īƒ˜Demo,
īƒ˜Converting a solved PSS/E Case to PSCAD.
Contents:
īƒ˜Access to PSCAD,
īƒ˜Software Introduction,
īƒ˜Environment overview,
īƒ˜Create a project,
īƒ˜Run simulation.
Access to PSCAD:
1. Free version
https://mycentre.hvdc.ca/
Network size: 15 nodes
2. Educational version
Ask ithelp in EECS Department (25 licenses)
Network size: 200 nodes
3. Professional version
Ask ithelp in EECS Department (1 license)
Network size: unlimited nodes
Latest version: 4.5.4 (announced in 12/23/2014)
4. Remote access
rd0.eecs.utk.edu or rd1.eecs.utk.edu
Software Introduction:
Power System Computer Aided Design
īƒ˜ Algorithm: EMTDC( ElectroMagnetic Transient in DC System) developed
by Dr. Dennis Woodford in Manitoba-HVDC Research Centre in last 70th.
īƒ˜ A simulator of ac power systems, low voltage power electronics systems, high
voltage DC transmission ( HVDC), flexible AC transmission systems ( FACTS),
distribution systems, and complex controllers.
īƒ˜ Applications
1. AC transients
2. Fault and protection
3. Transformer saturation
4. Wind power
5. Power quality
6. Design power electronic systems and controls including FACTS, active
īŦlters, series and shunt compensation devices.
Environment overview:
Load a case:
īƒ˜To load an existing Case
Project:
Fileīƒ  Load īƒ  Examples
Create a case:
1. Build a blank project
īƒ˜ New īƒ  New Case;
īƒ˜ Type name “tutorial1” and choose a path;
īƒ˜ Click “OK”;
īƒ˜ Click “Save” on the quick access toolbar.
How to find components:
1. Right click in design window, add component
How to find components:
2. Under tab “Components”
3. In master library
Draw a circuit:
īƒ˜ The circuit is drawn in Schematic window.
īƒ˜ Change parameters of components
1. Double click;
2. Or right click and choose “edit parameters”
Measurements:
1. Measured by the component itself.
Measurements:
2. Measured by meters( Ammeter, Voltmeter, Multimeter)
Output signals:
īƒ˜ Data label
The name of data label should be the same as the signals' name from meters.
īƒ˜ Output channel
The name of output channel could be assigned any name for display.
īƒ˜ Connect data label to output channel
Plot:
1. Add Graph Frame
Right click īƒ  Add component īƒ  Graph Frame
Plot:
2. Add Overlay Graph
Right click on Graph Frame īƒ  Add Overlay Graph
Plot:
3. Add output signals to graph
Press ctrl and left click output channels, then drag it to graph.
Simulation:
Run
Time settings could be set by
Project īƒ  General Settingsīƒ  Runtime
Outlines:
īƒ˜Getting started and basic features of PSCAD,
īƒ˜System Simulation of PSCAD,
īƒ˜Demo,
īƒ˜Converting a solved PSS/E Case to PSCAD.
Contents:
īƒ˜ Breakers,
īƒ˜ Faults,
īƒ˜ Distributed Transmission Line,
īƒ˜ Generators,
īƒ˜ Exciters,
īƒ˜ Transformers,
īƒ˜ Loads,
īƒ˜ Group components with a module.
Breakers and Faults:
īƒ˜ Breakers
Single phase, three phase breakers
īƒ˜ Control Breakers (0: closed; 1:open)
Timed breaker logic.
Manual switch.
Custom built relay model.
Note: when control goes from 0 to 1, the breaker will open at the first current zero.
Breakers and Faults
īƒ˜ Faults
11 faults
īƒ˜ Clear Faults( 0: closed; 1:faulted)
Timed fault logic.
Manual switch.
Custom built control model.
Create a distributed transmission line:
īƒ˜ Right click in the design window
īƒ˜ Component wizard īƒ  Transmission line
and enter a name, then click Finish.
īƒ˜ Double click the line in the design window
īƒ˜ Select type of transmission line model
Master Library īƒ  Bergeron Model
īƒ˜ Add tower cross-section
Master Library īƒ  Line/Cable Constants
Manual Data Entry
īƒ˜ Additional options
It is optional, just for display function
Generator:
1. Configuration īƒ  Type of setting for initial conditions
a. None (Preferred option, which simply allows entry of terminal voltage magnitude and phase for initialization.)
b. Powers
c. Currents
2. Interface to Machine Controllers
2.1 Supply Terminal Conditions to Exciter:
a. None,
b. Terminal Voltage,
c. Terminal Current,
d. Both Voltage and Current
2.2 Smoothing Time Constant: used in smoothing the signal sent to the exciter [s]
2.3 Output Exciter Initialization Data (Ef0): required field voltage is used to initialize the exciter, so that the machine can be switched from source
mode to machine mode smoothly.
2.4 Output Governor Initialization Data (Tm0): the required mechanical torque is used to initialize the turbine and/or governor, so that the
machine can be switched from 'locked-rotor' to 'free running' mode smoothly.
3. Variable Initialization Data
a. Source [0] to Machine [1] Transition
0: While 0, the machine is modeled as a simple 3-phase voltage source.
1: When 1, the machine runs in 'constant speed' mode.
b. Lock-rotor [0] <-> Normal Mode [1] Transition
While 0, the machine will run in 'constant speed' mode.
When 1, the machine will run as a full-blown machine.
Generator:
4. Basic Data
Rated RMS Line-to-Neutral Voltage
Rated RMS Line Current
Base Angular Frequency
Inertia Constant
Number of Coherent Machines
5. Generator Data Format
6. Initial Conditions
Terminal Voltage Magnitude at Time = 0-
Terminal Voltage Phase at Time = 0-
7. Initial Conditions if Starting as a Source
8. Initial Conditions if Starting as a Machine
9. Output Variable Names
10. Output Variables for Controller Initialization
Source (0) machine (1) Transition
Give a variable name. This will change its assigned value from 0 to 1 when the machine is switched from a 'source' to a
'machine'. Use this variable in the exciter model to initialize it
Constant speed (0) normal (1) Transition
Give a variable name. This will change its assigned value from 0 to 1 when the machine is switched from a 'constant speed
operation' to a 'normal machine'. Use this variable in any governor/turbine models to initialize them
Example:
īƒ˜ Refer to example “sync_Sctest_exercise” .
Exciter (AC exciter as example):
īƒ˜ Ef:
Computed field voltage applied directly to synchronous machine
īƒ˜ If
Measured field current from synchronous machine
īƒ˜ Vref
defines the voltage reference for the synchronous machine terminals. It can be derived from a
number of different components, which might include a slider, a real constant component or some
other signal.
īƒ˜ VT_IT
a 3-element array and receives its data from the attached synchronous machine
īƒ˜ Ef0
defines the output field voltage to the machine during the initialization period. Defined by user or
from the attached synchronous machine.
īƒ˜ Vref0
The initialized value of the reference voltage Vref and can be applied at the users discretion
Exciter Setting:
īƒ˜AC Exciter Type
īƒ˜Exciter Status (Come from attached machine)
0: Initialize
1: Normal
īƒ˜Output Internally Computed Initial
Example:
īƒ˜ Refer to example “sync_exciter_exercise”
1. 0-0.3s, work as source mode
2. 0.3-0.5s, work as machine with lock rotor mode
3. After 0.5s, work as a machine with normal mode
Transformers:
īƒ˜Configuration
Name: T1
3 Phase Transformer MVA: 100MVA
Base operation frequency: 60
Winding #1 Type: Delta
Winding #2 Type: Y
Positive Sequence Leakage Reactance: 0.1
īƒ˜Winding Voltages
Winding 1 Line to Line voltage (RMS): 13.8 kV
Winding 2 Line to Line voltage (RMS): 230 kV
Load:
īƒ˜Constant power load
īƒ˜ Load:
īƒ˜Constant Impedance load:
â€ĸ RLC Branch Components
â€ĸ Variable RLC Components
â€ĸ 3 phase loads
Group components with a module:
Before create a module, the number of ports and the type of ports should be determined.
Port is the connection between the component and the outside system
port type: electrical, input, output
Node/data type of electrical ports: fixed, removable, switched, ground
Node/data type of input & output ports: integer, real, logical
â€ĸ Right click in the design window
â€ĸ Create īƒ  Component
â€ĸ Enter the name, title, check module
â€ĸ Add number of ports
â€ĸ Enter the name, dimensions, type of each ports
â€ĸ Click Finish
A blank module will appear in the design window
Group components with a module:
īƒ˜Double click the blank module
īƒ˜Build the circuit inside the module
īƒ˜Connect the module to the outside system
īƒ˜Simulation
Outlines:
īƒ˜Getting started and basic features of PSCAD,
īƒ˜System Simulation of PSCAD,
īƒ˜Demo,
īƒ˜Converting a solved PSS/E Case to PSCAD.
Contents:
īƒ˜Power flow setup,
īƒ˜Demo.
General Method of Power Flow Setup:
PSCAD can not solve power flow, so the power flow needs to be set manually.
â€ĸ 1. Determine the terminal voltage magnitude and phase
Setting:
â€ĸ 2. Run all the generators as fixed AC source until the system is stable.
Setting:
To ensure that the steady state condition of the network is reached smoothly , time to ramp source to rated is set to a time interval
entered by the user (0.1s for example)
â€ĸ 3. Switch the fixed AC source to Generators with lock rotor mode.
Setting:
“Source [0] to Machine [1] transition” under “Variable Initialization Data”
4. Enable exciters
5. Enable governors
Demo:
Outlines:
īƒ˜Getting started and basic features of PSCAD,
īƒ˜System Simulation of PSCAD,
īƒ˜Demo,
īƒ˜Converting a solved PSS/E Case to PSCAD.
E-TRAN
īƒ˜E-TRAN, which is developed by ELECTRANIX
Corporation, is a tool that allows for an automated
conversion of a very large system into PSCAD
(EMTDC) models from load flow programs .
īƒ˜ It directly translates PSS/E data files (.raw, .dyr,
and .seq) into PSCAD files (.psc and .pscx).
īƒ˜E-TRAN internally solves the steady state phasor
equations and uses this information to initialize
the system in PSCAD and make the system
suitable for stability simulation analysis.
E-TRAN
â€ĸ E-TRAN allows for the system to be partially or fully converted (all its nodes)
into PSCAD.
â€ĸ Make sure the parameters of the generator models in PSS/E are
reasonable, otherwise it will cause the numerical problems in the generator
transition process from voltages sources to machines in PSCAD.
â€ĸ E-TRAN typically converts the load model in PSS/E to constant PQ models
in PSCAD, which will probably lead to instability after releasing the load in
PSCAD. If allowed, load can be changed to the constant impedance model
to make the system stable after releasing load.
â€ĸ The .raw file needs to be solved before being converted to the PSCAD file.
â€ĸ Typically, both the .raw and .dyr files are needed in translation. If there is
only a .raw file, the translation can be done. However, the PSCAD file
translated based on the .raw file only can not simulate dynamic processes.
E-TRAN
īƒ˜To request a trial version of E-TRAN,
contact ELECTRANIX at:
E-TRAN@electranix.com
īƒ˜The E-TRAN runtime library for PSCAD
can be downloaded from:
http://www.electranix.com/runtime/E-TRAN_Runtime_Lib_3_2.zip
E-TRAN
īą To get the E-TRAN software :
1. First go to the Electranix website at http://www.electranix.com/ and scroll down to the E-
Tran Client Login at the bottom of the page. Enter the user name and password that are given
after contacting ELECTRANIX.
2. Download the E-TRAN License Manager and install it on a server, or some other computer
that will always be on. If you will be using E-TRAN as a single user, this can be the computer
you will install E-TRAN on.
3. When you install the License Manager, you will get the option to request a license.
4. Enter your information into the form. This will send the required information to create a
license.
5. You will get an e-mail about your license once they have processed your request.
6. Download E-TRAN and install it on any computers you want to run E-TRAN on.
E-TRAN
īąSteps to run the PSCAD model:
īƒ˜ Make sure that the file "ETRAN_G95.lib" exists in the directory
"C:Program Files (x86)E-TRAN_V3EMTDCLibgnuETRAN_G95.lib".
īƒ˜ If not, create the folder and copy the
"E-TRAN_Runtime_Lib_3_2EMTDCLibgnuETRAN_G95.lib" into it.
īƒ˜ Open the file "E-TRAN_Runtime_Lib_3_2PSCADLibPSCAD.pcsx" in PSCAD.
īƒ˜ Make sure the “.raw” file and “.dyr” file is in the same folder as the “.pcsx” file you
opened in PSCAD.
īƒ˜ Open the file ".pcsx" in PSCAD.
Some references:
īƒ˜ PSCAD Forum
http://bb.pscad.com/forumdisplay.php?112-Applications-of-PSCAD
īƒ˜ User’s Guide of PSCAD
https://hvdc.ca/uploads/ck/files/reference_material/PSCAD_User_Guid
e_v4_3_1.pdf
īƒ˜ A comprehensive resource of EMTDC
https://hvdc.ca/uploads/ck/files/reference_material/EMTDC_User_Guid
e_v4_3_1.pdf
īƒ˜ Application of PSCAD
http://www.scribd.com/doc/61646593/PSCAD-Application-Guide-2008
Practice Exercise (1):
â€ĸ Based on example “simpleac” [in the tutorial folder in
the examples]
1. Use synchronous machine instead of ac source Refer to
example “sync_exciter_exercise”
2. Build your own 230V transmission line with Bergeron
model.
3. Apply 10% load shedding in the following scenarios:
1. Synchronous machine without exciter (lock rotor
mode)
2. Synchronous machine with exciter (free rotor mode)
4. 5. Repeat 3 and 4 by applying a fault.
Practice Exercise (2):
â€ĸ 1. Build a three phase ac system (you can delete the BRK)
â€ĸ 2. Replace AC sources with Synchronous Machines (Use the Generator in
example “sync_SCtest”).
â€ĸ 3. Measure and plot the voltage and current through the load.
â€ĸ 4. Please refer to “OOS_Protection”, Apply any 2 different kinds of fault
close to the loads on the above system. Solve 3nd problem again.
Practice Exercise (3):
1. Build a two machine one line system.
2. Rated power of one machine group: 12GW (120MW*100)
3. Transmission line: 500kV Begeron model
4. Constant power load
10% load shedding at bus 1 to trigger an electromechanical propagation. Monitor the frequency
and angle at bus 1 and bus 2.
Study the effect of the following parameters on propagation time
between bus 1 and 2.
Transmission length: 300km, 600km;
Tie-line power: 300MW, 600MW;
Inertia of machine 1, 3.
Notes: when study on variable, fix the other two variables.
Thank You

More Related Content

What's hot

Three level inverter
Three level inverterThree level inverter
Three level inverterVinay Singh
 
Active_Power_Filter
Active_Power_FilterActive_Power_Filter
Active_Power_Filteremredurna
 
Fault Diagnosis for Electric Drive system of EV Based on Structural Analysis
Fault Diagnosis for Electric Drive system of EV Based on Structural AnalysisFault Diagnosis for Electric Drive system of EV Based on Structural Analysis
Fault Diagnosis for Electric Drive system of EV Based on Structural AnalysisTANUJJHANKAL1
 
POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)
POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)
POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)Rohit vijay
 
FRACTIONAL HORSE POWER MOTORS
FRACTIONAL HORSE POWER MOTORSFRACTIONAL HORSE POWER MOTORS
FRACTIONAL HORSE POWER MOTORSsavaliya753
 
AC AC converters
AC AC convertersAC AC converters
AC AC convertersFiras Obeidat
 
Harmonics and mitigation techniques
Harmonics and mitigation techniquesHarmonics and mitigation techniques
Harmonics and mitigation techniquesrifat maryum
 
Updated field oriented control of induction motor.pptx
Updated field oriented control of induction motor.pptxUpdated field oriented control of induction motor.pptx
Updated field oriented control of induction motor.pptxMohit Sharma
 
Vector Control of AC Induction Motors
Vector Control of AC Induction MotorsVector Control of AC Induction Motors
Vector Control of AC Induction MotorsPranjal Barman
 
Load flow studies 19
Load flow studies 19Load flow studies 19
Load flow studies 19Asha Anu Kurian
 
Vector control of pmsm
Vector control of pmsmVector control of pmsm
Vector control of pmsmMalarselvamV
 
A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...
A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...
A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...Alessandro Burgio
 
V and inverted v curves of synchronous motor
V and inverted v curves of synchronous motorV and inverted v curves of synchronous motor
V and inverted v curves of synchronous motorkarthi1017
 
Phase Lock Loop control of dc drive
Phase Lock Loop control of dc drivePhase Lock Loop control of dc drive
Phase Lock Loop control of dc driveraviarmugam
 
Power Flow Analysis using Power World Simulator
Power Flow Analysis using Power World SimulatorPower Flow Analysis using Power World Simulator
Power Flow Analysis using Power World SimulatorUmair Shahzad
 
Interior Permanent Magnet (IPM) motor drive
Interior Permanent Magnet (IPM) motor driveInterior Permanent Magnet (IPM) motor drive
Interior Permanent Magnet (IPM) motor driveanusheel nahar
 
Short circuit calculations
Short circuit calculationsShort circuit calculations
Short circuit calculationsMustafa Ismail
 

What's hot (20)

Three level inverter
Three level inverterThree level inverter
Three level inverter
 
Per unit analysis
Per unit analysisPer unit analysis
Per unit analysis
 
Active_Power_Filter
Active_Power_FilterActive_Power_Filter
Active_Power_Filter
 
Fault Diagnosis for Electric Drive system of EV Based on Structural Analysis
Fault Diagnosis for Electric Drive system of EV Based on Structural AnalysisFault Diagnosis for Electric Drive system of EV Based on Structural Analysis
Fault Diagnosis for Electric Drive system of EV Based on Structural Analysis
 
POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)
POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)
POWER QUALITY ISSUES (POWER SYSTEM AND POWER ELECTRONICS)
 
FRACTIONAL HORSE POWER MOTORS
FRACTIONAL HORSE POWER MOTORSFRACTIONAL HORSE POWER MOTORS
FRACTIONAL HORSE POWER MOTORS
 
AC AC converters
AC AC convertersAC AC converters
AC AC converters
 
Harmonics and mitigation techniques
Harmonics and mitigation techniquesHarmonics and mitigation techniques
Harmonics and mitigation techniques
 
Updated field oriented control of induction motor.pptx
Updated field oriented control of induction motor.pptxUpdated field oriented control of induction motor.pptx
Updated field oriented control of induction motor.pptx
 
Vector Control of AC Induction Motors
Vector Control of AC Induction MotorsVector Control of AC Induction Motors
Vector Control of AC Induction Motors
 
Load flow studies 19
Load flow studies 19Load flow studies 19
Load flow studies 19
 
Vector control of pmsm
Vector control of pmsmVector control of pmsm
Vector control of pmsm
 
A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...
A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...
A Two-Input Dual Active Bridge Converter for a Smart User Network Using Integ...
 
V and inverted v curves of synchronous motor
V and inverted v curves of synchronous motorV and inverted v curves of synchronous motor
V and inverted v curves of synchronous motor
 
Phase Lock Loop control of dc drive
Phase Lock Loop control of dc drivePhase Lock Loop control of dc drive
Phase Lock Loop control of dc drive
 
Power Flow Analysis using Power World Simulator
Power Flow Analysis using Power World SimulatorPower Flow Analysis using Power World Simulator
Power Flow Analysis using Power World Simulator
 
Power flow analysis
Power flow analysisPower flow analysis
Power flow analysis
 
Interior Permanent Magnet (IPM) motor drive
Interior Permanent Magnet (IPM) motor driveInterior Permanent Magnet (IPM) motor drive
Interior Permanent Magnet (IPM) motor drive
 
Short circuit calculations
Short circuit calculationsShort circuit calculations
Short circuit calculations
 
FAULT ANALISIS IN HVDC & HVAC TRANSMISSION LINE
FAULT ANALISIS IN HVDC & HVAC TRANSMISSION LINEFAULT ANALISIS IN HVDC & HVAC TRANSMISSION LINE
FAULT ANALISIS IN HVDC & HVAC TRANSMISSION LINE
 

Similar to tutorial_pscad.pptx

Report_Modernization of Gas Metering Station
Report_Modernization of Gas Metering StationReport_Modernization of Gas Metering Station
Report_Modernization of Gas Metering StationTariq Jamil
 
Black Box for a Car
Black Box for a CarBlack Box for a Car
Black Box for a Carsubrat manna
 
IRJET- Design and Implementation of Three Phase Grid Simulator
IRJET- Design and Implementation of Three Phase Grid SimulatorIRJET- Design and Implementation of Three Phase Grid Simulator
IRJET- Design and Implementation of Three Phase Grid SimulatorIRJET Journal
 
International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)IJERD Editor
 
PLC, DCS and PLC vs DCS Presentation by Jitender Singh Shekhawat
PLC, DCS and PLC vs DCS Presentation by Jitender Singh ShekhawatPLC, DCS and PLC vs DCS Presentation by Jitender Singh Shekhawat
PLC, DCS and PLC vs DCS Presentation by Jitender Singh ShekhawatJitender Singh Shekhawat
 
PLCandSCADA.pdf
PLCandSCADA.pdfPLCandSCADA.pdf
PLCandSCADA.pdfssuser6cedd3
 
Internship Report (VTOL) (2)
Internship Report (VTOL) (2)Internship Report (VTOL) (2)
Internship Report (VTOL) (2)Rishabh Prakash
 
bus system.pptx
bus system.pptxbus system.pptx
bus system.pptxPranavPhadke5
 
Real time parameter estimation for power quality control and intelligent prot...
Real time parameter estimation for power quality control and intelligent prot...Real time parameter estimation for power quality control and intelligent prot...
Real time parameter estimation for power quality control and intelligent prot...EG TECHNOLOGIES
 
Copy of robotics17
Copy of robotics17Copy of robotics17
Copy of robotics17Senthil Kumar
 
Ch12
Ch12Ch12
Ch12mcfalltj
 
Advanced Three Phase PWM Inverter Control Using Microcontroller
Advanced Three Phase PWM Inverter Control Using MicrocontrollerAdvanced Three Phase PWM Inverter Control Using Microcontroller
Advanced Three Phase PWM Inverter Control Using MicrocontrollerIOSR Journals
 
POSITION ANALYSIS OF DIGITAL SYSTEM
POSITION ANALYSIS OF DIGITAL SYSTEMPOSITION ANALYSIS OF DIGITAL SYSTEM
POSITION ANALYSIS OF DIGITAL SYSTEMKEVSER CARPET
 
Siemens Automation Station Compact Model PXC52
Siemens Automation Station Compact Model PXC52Siemens Automation Station Compact Model PXC52
Siemens Automation Station Compact Model PXC52CONTROLS & SYSTEMS
 
Simulation Design of DC Motor Control System Based on MC9S12D64 MCU
Simulation Design of DC Motor Control System Based on MC9S12D64 MCUSimulation Design of DC Motor Control System Based on MC9S12D64 MCU
Simulation Design of DC Motor Control System Based on MC9S12D64 MCUIJERA Editor
 

Similar to tutorial_pscad.pptx (20)

Power System Structure
Power System StructurePower System Structure
Power System Structure
 
Report_Modernization of Gas Metering Station
Report_Modernization of Gas Metering StationReport_Modernization of Gas Metering Station
Report_Modernization of Gas Metering Station
 
Black Box for a Car
Black Box for a CarBlack Box for a Car
Black Box for a Car
 
IRJET- Design and Implementation of Three Phase Grid Simulator
IRJET- Design and Implementation of Three Phase Grid SimulatorIRJET- Design and Implementation of Three Phase Grid Simulator
IRJET- Design and Implementation of Three Phase Grid Simulator
 
CE150--Hongyi Huang
CE150--Hongyi HuangCE150--Hongyi Huang
CE150--Hongyi Huang
 
International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)
 
3rd year vi sem ms lab
3rd year vi sem ms lab3rd year vi sem ms lab
3rd year vi sem ms lab
 
PLC, DCS and PLC vs DCS Presentation by Jitender Singh Shekhawat
PLC, DCS and PLC vs DCS Presentation by Jitender Singh ShekhawatPLC, DCS and PLC vs DCS Presentation by Jitender Singh Shekhawat
PLC, DCS and PLC vs DCS Presentation by Jitender Singh Shekhawat
 
PLCandSCADA.pdf
PLCandSCADA.pdfPLCandSCADA.pdf
PLCandSCADA.pdf
 
Psms lab manual
Psms lab manualPsms lab manual
Psms lab manual
 
Internship Report (VTOL) (2)
Internship Report (VTOL) (2)Internship Report (VTOL) (2)
Internship Report (VTOL) (2)
 
bus system.pptx
bus system.pptxbus system.pptx
bus system.pptx
 
Real time parameter estimation for power quality control and intelligent prot...
Real time parameter estimation for power quality control and intelligent prot...Real time parameter estimation for power quality control and intelligent prot...
Real time parameter estimation for power quality control and intelligent prot...
 
Copy of robotics17
Copy of robotics17Copy of robotics17
Copy of robotics17
 
final report
final reportfinal report
final report
 
Ch12
Ch12Ch12
Ch12
 
Advanced Three Phase PWM Inverter Control Using Microcontroller
Advanced Three Phase PWM Inverter Control Using MicrocontrollerAdvanced Three Phase PWM Inverter Control Using Microcontroller
Advanced Three Phase PWM Inverter Control Using Microcontroller
 
POSITION ANALYSIS OF DIGITAL SYSTEM
POSITION ANALYSIS OF DIGITAL SYSTEMPOSITION ANALYSIS OF DIGITAL SYSTEM
POSITION ANALYSIS OF DIGITAL SYSTEM
 
Siemens Automation Station Compact Model PXC52
Siemens Automation Station Compact Model PXC52Siemens Automation Station Compact Model PXC52
Siemens Automation Station Compact Model PXC52
 
Simulation Design of DC Motor Control System Based on MC9S12D64 MCU
Simulation Design of DC Motor Control System Based on MC9S12D64 MCUSimulation Design of DC Motor Control System Based on MC9S12D64 MCU
Simulation Design of DC Motor Control System Based on MC9S12D64 MCU
 

Recently uploaded

Internship report on mechanical engineering
Internship report on mechanical engineeringInternship report on mechanical engineering
Internship report on mechanical engineeringmalavadedarshan25
 
CCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdf
CCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdfCCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdf
CCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdfAsst.prof M.Gokilavani
 
IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024Mark Billinghurst
 
microprocessor 8085 and its interfacing
microprocessor 8085  and its interfacingmicroprocessor 8085  and its interfacing
microprocessor 8085 and its interfacingjaychoudhary37
 
GDSC ASEB Gen AI study jams presentation
GDSC ASEB Gen AI study jams presentationGDSC ASEB Gen AI study jams presentation
GDSC ASEB Gen AI study jams presentationGDSCAESB
 
Call Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call GirlsCall Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call Girlsssuser7cb4ff
 
SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )Tsuyoshi Horigome
 
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...9953056974 Low Rate Call Girls In Saket, Delhi NCR
 
Sachpazis Costas: Geotechnical Engineering: A student's Perspective Introduction
Sachpazis Costas: Geotechnical Engineering: A student's Perspective IntroductionSachpazis Costas: Geotechnical Engineering: A student's Perspective Introduction
Sachpazis Costas: Geotechnical Engineering: A student's Perspective IntroductionDr.Costas Sachpazis
 
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...ranjana rawat
 
What are the advantages and disadvantages of membrane structures.pptx
What are the advantages and disadvantages of membrane structures.pptxWhat are the advantages and disadvantages of membrane structures.pptx
What are the advantages and disadvantages of membrane structures.pptxwendy cai
 
High Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur EscortsHigh Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur Escortsranjana rawat
 
Past, Present and Future of Generative AI
Past, Present and Future of Generative AIPast, Present and Future of Generative AI
Past, Present and Future of Generative AIabhishek36461
 
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur EscortsHigh Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur High Profile
 
Artificial-Intelligence-in-Electronics (K).pptx
Artificial-Intelligence-in-Electronics (K).pptxArtificial-Intelligence-in-Electronics (K).pptx
Artificial-Intelligence-in-Electronics (K).pptxbritheesh05
 
power system scada applications and uses
power system scada applications and usespower system scada applications and uses
power system scada applications and usesDevarapalliHaritha
 
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...Soham Mondal
 
Heart Disease Prediction using machine learning.pptx
Heart Disease Prediction using machine learning.pptxHeart Disease Prediction using machine learning.pptx
Heart Disease Prediction using machine learning.pptxPoojaBan
 

Recently uploaded (20)

Internship report on mechanical engineering
Internship report on mechanical engineeringInternship report on mechanical engineering
Internship report on mechanical engineering
 
CCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdf
CCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdfCCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdf
CCS355 Neural Network & Deep Learning UNIT III notes and Question bank .pdf
 
IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024
 
microprocessor 8085 and its interfacing
microprocessor 8085  and its interfacingmicroprocessor 8085  and its interfacing
microprocessor 8085 and its interfacing
 
GDSC ASEB Gen AI study jams presentation
GDSC ASEB Gen AI study jams presentationGDSC ASEB Gen AI study jams presentation
GDSC ASEB Gen AI study jams presentation
 
Call Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call GirlsCall Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call Girls
 
SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )
 
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
 
Sachpazis Costas: Geotechnical Engineering: A student's Perspective Introduction
Sachpazis Costas: Geotechnical Engineering: A student's Perspective IntroductionSachpazis Costas: Geotechnical Engineering: A student's Perspective Introduction
Sachpazis Costas: Geotechnical Engineering: A student's Perspective Introduction
 
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
 
What are the advantages and disadvantages of membrane structures.pptx
What are the advantages and disadvantages of membrane structures.pptxWhat are the advantages and disadvantages of membrane structures.pptx
What are the advantages and disadvantages of membrane structures.pptx
 
Call Us -/9953056974- Call Girls In Vikaspuri-/- Delhi NCR
Call Us -/9953056974- Call Girls In Vikaspuri-/- Delhi NCRCall Us -/9953056974- Call Girls In Vikaspuri-/- Delhi NCR
Call Us -/9953056974- Call Girls In Vikaspuri-/- Delhi NCR
 
High Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur EscortsHigh Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Isha Call 7001035870 Meet With Nagpur Escorts
 
Past, Present and Future of Generative AI
Past, Present and Future of Generative AIPast, Present and Future of Generative AI
Past, Present and Future of Generative AI
 
Exploring_Network_Security_with_JA3_by_Rakesh Seal.pptx
Exploring_Network_Security_with_JA3_by_Rakesh Seal.pptxExploring_Network_Security_with_JA3_by_Rakesh Seal.pptx
Exploring_Network_Security_with_JA3_by_Rakesh Seal.pptx
 
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur EscortsHigh Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
High Profile Call Girls Nagpur Meera Call 7001035870 Meet With Nagpur Escorts
 
Artificial-Intelligence-in-Electronics (K).pptx
Artificial-Intelligence-in-Electronics (K).pptxArtificial-Intelligence-in-Electronics (K).pptx
Artificial-Intelligence-in-Electronics (K).pptx
 
power system scada applications and uses
power system scada applications and usespower system scada applications and uses
power system scada applications and uses
 
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
 
Heart Disease Prediction using machine learning.pptx
Heart Disease Prediction using machine learning.pptxHeart Disease Prediction using machine learning.pptx
Heart Disease Prediction using machine learning.pptx
 

tutorial_pscad.pptx

  • 1. INTRODUCTION TO PSCAD ECE 692 Grid Measurement and Simulation Abdulelah Alharbi August 30, 2023
  • 2. Outlines: īƒ˜Getting started and basic features of PSCAD, īƒ˜System Simulation of PSCAD, īƒ˜Demo, īƒ˜Converting a solved PSS/E Case to PSCAD.
  • 3. Contents: īƒ˜Access to PSCAD, īƒ˜Software Introduction, īƒ˜Environment overview, īƒ˜Create a project, īƒ˜Run simulation.
  • 4. Access to PSCAD: 1. Free version https://mycentre.hvdc.ca/ Network size: 15 nodes 2. Educational version Ask ithelp in EECS Department (25 licenses) Network size: 200 nodes 3. Professional version Ask ithelp in EECS Department (1 license) Network size: unlimited nodes Latest version: 4.5.4 (announced in 12/23/2014) 4. Remote access rd0.eecs.utk.edu or rd1.eecs.utk.edu
  • 5. Software Introduction: Power System Computer Aided Design īƒ˜ Algorithm: EMTDC( ElectroMagnetic Transient in DC System) developed by Dr. Dennis Woodford in Manitoba-HVDC Research Centre in last 70th. īƒ˜ A simulator of ac power systems, low voltage power electronics systems, high voltage DC transmission ( HVDC), flexible AC transmission systems ( FACTS), distribution systems, and complex controllers. īƒ˜ Applications 1. AC transients 2. Fault and protection 3. Transformer saturation 4. Wind power 5. Power quality 6. Design power electronic systems and controls including FACTS, active īŦlters, series and shunt compensation devices.
  • 7. Load a case: īƒ˜To load an existing Case Project: Fileīƒ  Load īƒ  Examples
  • 8. Create a case: 1. Build a blank project īƒ˜ New īƒ  New Case; īƒ˜ Type name “tutorial1” and choose a path; īƒ˜ Click “OK”; īƒ˜ Click “Save” on the quick access toolbar.
  • 9. How to find components: 1. Right click in design window, add component
  • 10. How to find components: 2. Under tab “Components” 3. In master library
  • 11. Draw a circuit: īƒ˜ The circuit is drawn in Schematic window. īƒ˜ Change parameters of components 1. Double click; 2. Or right click and choose “edit parameters”
  • 12. Measurements: 1. Measured by the component itself.
  • 13. Measurements: 2. Measured by meters( Ammeter, Voltmeter, Multimeter)
  • 14. Output signals: īƒ˜ Data label The name of data label should be the same as the signals' name from meters. īƒ˜ Output channel The name of output channel could be assigned any name for display. īƒ˜ Connect data label to output channel
  • 15. Plot: 1. Add Graph Frame Right click īƒ  Add component īƒ  Graph Frame
  • 16. Plot: 2. Add Overlay Graph Right click on Graph Frame īƒ  Add Overlay Graph
  • 17. Plot: 3. Add output signals to graph Press ctrl and left click output channels, then drag it to graph.
  • 18. Simulation: Run Time settings could be set by Project īƒ  General Settingsīƒ  Runtime
  • 19. Outlines: īƒ˜Getting started and basic features of PSCAD, īƒ˜System Simulation of PSCAD, īƒ˜Demo, īƒ˜Converting a solved PSS/E Case to PSCAD.
  • 20. Contents: īƒ˜ Breakers, īƒ˜ Faults, īƒ˜ Distributed Transmission Line, īƒ˜ Generators, īƒ˜ Exciters, īƒ˜ Transformers, īƒ˜ Loads, īƒ˜ Group components with a module.
  • 21. Breakers and Faults: īƒ˜ Breakers Single phase, three phase breakers īƒ˜ Control Breakers (0: closed; 1:open) Timed breaker logic. Manual switch. Custom built relay model. Note: when control goes from 0 to 1, the breaker will open at the first current zero.
  • 22. Breakers and Faults īƒ˜ Faults 11 faults īƒ˜ Clear Faults( 0: closed; 1:faulted) Timed fault logic. Manual switch. Custom built control model.
  • 23. Create a distributed transmission line: īƒ˜ Right click in the design window īƒ˜ Component wizard īƒ  Transmission line and enter a name, then click Finish. īƒ˜ Double click the line in the design window īƒ˜ Select type of transmission line model Master Library īƒ  Bergeron Model īƒ˜ Add tower cross-section Master Library īƒ  Line/Cable Constants Manual Data Entry īƒ˜ Additional options It is optional, just for display function
  • 24. Generator: 1. Configuration īƒ  Type of setting for initial conditions a. None (Preferred option, which simply allows entry of terminal voltage magnitude and phase for initialization.) b. Powers c. Currents 2. Interface to Machine Controllers 2.1 Supply Terminal Conditions to Exciter: a. None, b. Terminal Voltage, c. Terminal Current, d. Both Voltage and Current 2.2 Smoothing Time Constant: used in smoothing the signal sent to the exciter [s] 2.3 Output Exciter Initialization Data (Ef0): required field voltage is used to initialize the exciter, so that the machine can be switched from source mode to machine mode smoothly. 2.4 Output Governor Initialization Data (Tm0): the required mechanical torque is used to initialize the turbine and/or governor, so that the machine can be switched from 'locked-rotor' to 'free running' mode smoothly. 3. Variable Initialization Data a. Source [0] to Machine [1] Transition 0: While 0, the machine is modeled as a simple 3-phase voltage source. 1: When 1, the machine runs in 'constant speed' mode. b. Lock-rotor [0] <-> Normal Mode [1] Transition While 0, the machine will run in 'constant speed' mode. When 1, the machine will run as a full-blown machine.
  • 25. Generator: 4. Basic Data Rated RMS Line-to-Neutral Voltage Rated RMS Line Current Base Angular Frequency Inertia Constant Number of Coherent Machines 5. Generator Data Format 6. Initial Conditions Terminal Voltage Magnitude at Time = 0- Terminal Voltage Phase at Time = 0- 7. Initial Conditions if Starting as a Source 8. Initial Conditions if Starting as a Machine 9. Output Variable Names 10. Output Variables for Controller Initialization Source (0) machine (1) Transition Give a variable name. This will change its assigned value from 0 to 1 when the machine is switched from a 'source' to a 'machine'. Use this variable in the exciter model to initialize it Constant speed (0) normal (1) Transition Give a variable name. This will change its assigned value from 0 to 1 when the machine is switched from a 'constant speed operation' to a 'normal machine'. Use this variable in any governor/turbine models to initialize them
  • 26. Example: īƒ˜ Refer to example “sync_Sctest_exercise” .
  • 27. Exciter (AC exciter as example): īƒ˜ Ef: Computed field voltage applied directly to synchronous machine īƒ˜ If Measured field current from synchronous machine īƒ˜ Vref defines the voltage reference for the synchronous machine terminals. It can be derived from a number of different components, which might include a slider, a real constant component or some other signal. īƒ˜ VT_IT a 3-element array and receives its data from the attached synchronous machine īƒ˜ Ef0 defines the output field voltage to the machine during the initialization period. Defined by user or from the attached synchronous machine. īƒ˜ Vref0 The initialized value of the reference voltage Vref and can be applied at the users discretion
  • 28. Exciter Setting: īƒ˜AC Exciter Type īƒ˜Exciter Status (Come from attached machine) 0: Initialize 1: Normal īƒ˜Output Internally Computed Initial
  • 29. Example: īƒ˜ Refer to example “sync_exciter_exercise” 1. 0-0.3s, work as source mode 2. 0.3-0.5s, work as machine with lock rotor mode 3. After 0.5s, work as a machine with normal mode
  • 30. Transformers: īƒ˜Configuration Name: T1 3 Phase Transformer MVA: 100MVA Base operation frequency: 60 Winding #1 Type: Delta Winding #2 Type: Y Positive Sequence Leakage Reactance: 0.1 īƒ˜Winding Voltages Winding 1 Line to Line voltage (RMS): 13.8 kV Winding 2 Line to Line voltage (RMS): 230 kV
  • 32. īƒ˜ Load: īƒ˜Constant Impedance load: â€ĸ RLC Branch Components â€ĸ Variable RLC Components â€ĸ 3 phase loads
  • 33. Group components with a module: Before create a module, the number of ports and the type of ports should be determined. Port is the connection between the component and the outside system port type: electrical, input, output Node/data type of electrical ports: fixed, removable, switched, ground Node/data type of input & output ports: integer, real, logical â€ĸ Right click in the design window â€ĸ Create īƒ  Component â€ĸ Enter the name, title, check module â€ĸ Add number of ports â€ĸ Enter the name, dimensions, type of each ports â€ĸ Click Finish A blank module will appear in the design window
  • 34. Group components with a module: īƒ˜Double click the blank module īƒ˜Build the circuit inside the module īƒ˜Connect the module to the outside system īƒ˜Simulation
  • 35. Outlines: īƒ˜Getting started and basic features of PSCAD, īƒ˜System Simulation of PSCAD, īƒ˜Demo, īƒ˜Converting a solved PSS/E Case to PSCAD.
  • 37. General Method of Power Flow Setup: PSCAD can not solve power flow, so the power flow needs to be set manually. â€ĸ 1. Determine the terminal voltage magnitude and phase Setting: â€ĸ 2. Run all the generators as fixed AC source until the system is stable. Setting: To ensure that the steady state condition of the network is reached smoothly , time to ramp source to rated is set to a time interval entered by the user (0.1s for example) â€ĸ 3. Switch the fixed AC source to Generators with lock rotor mode. Setting: “Source [0] to Machine [1] transition” under “Variable Initialization Data” 4. Enable exciters 5. Enable governors
  • 38. Demo:
  • 39. Outlines: īƒ˜Getting started and basic features of PSCAD, īƒ˜System Simulation of PSCAD, īƒ˜Demo, īƒ˜Converting a solved PSS/E Case to PSCAD.
  • 40. E-TRAN īƒ˜E-TRAN, which is developed by ELECTRANIX Corporation, is a tool that allows for an automated conversion of a very large system into PSCAD (EMTDC) models from load flow programs . īƒ˜ It directly translates PSS/E data files (.raw, .dyr, and .seq) into PSCAD files (.psc and .pscx). īƒ˜E-TRAN internally solves the steady state phasor equations and uses this information to initialize the system in PSCAD and make the system suitable for stability simulation analysis.
  • 41. E-TRAN â€ĸ E-TRAN allows for the system to be partially or fully converted (all its nodes) into PSCAD. â€ĸ Make sure the parameters of the generator models in PSS/E are reasonable, otherwise it will cause the numerical problems in the generator transition process from voltages sources to machines in PSCAD. â€ĸ E-TRAN typically converts the load model in PSS/E to constant PQ models in PSCAD, which will probably lead to instability after releasing the load in PSCAD. If allowed, load can be changed to the constant impedance model to make the system stable after releasing load. â€ĸ The .raw file needs to be solved before being converted to the PSCAD file. â€ĸ Typically, both the .raw and .dyr files are needed in translation. If there is only a .raw file, the translation can be done. However, the PSCAD file translated based on the .raw file only can not simulate dynamic processes.
  • 42. E-TRAN īƒ˜To request a trial version of E-TRAN, contact ELECTRANIX at: E-TRAN@electranix.com īƒ˜The E-TRAN runtime library for PSCAD can be downloaded from: http://www.electranix.com/runtime/E-TRAN_Runtime_Lib_3_2.zip
  • 43. E-TRAN īą To get the E-TRAN software : 1. First go to the Electranix website at http://www.electranix.com/ and scroll down to the E- Tran Client Login at the bottom of the page. Enter the user name and password that are given after contacting ELECTRANIX. 2. Download the E-TRAN License Manager and install it on a server, or some other computer that will always be on. If you will be using E-TRAN as a single user, this can be the computer you will install E-TRAN on. 3. When you install the License Manager, you will get the option to request a license. 4. Enter your information into the form. This will send the required information to create a license. 5. You will get an e-mail about your license once they have processed your request. 6. Download E-TRAN and install it on any computers you want to run E-TRAN on.
  • 44. E-TRAN īąSteps to run the PSCAD model: īƒ˜ Make sure that the file "ETRAN_G95.lib" exists in the directory "C:Program Files (x86)E-TRAN_V3EMTDCLibgnuETRAN_G95.lib". īƒ˜ If not, create the folder and copy the "E-TRAN_Runtime_Lib_3_2EMTDCLibgnuETRAN_G95.lib" into it. īƒ˜ Open the file "E-TRAN_Runtime_Lib_3_2PSCADLibPSCAD.pcsx" in PSCAD. īƒ˜ Make sure the “.raw” file and “.dyr” file is in the same folder as the “.pcsx” file you opened in PSCAD. īƒ˜ Open the file ".pcsx" in PSCAD.
  • 45. Some references: īƒ˜ PSCAD Forum http://bb.pscad.com/forumdisplay.php?112-Applications-of-PSCAD īƒ˜ User’s Guide of PSCAD https://hvdc.ca/uploads/ck/files/reference_material/PSCAD_User_Guid e_v4_3_1.pdf īƒ˜ A comprehensive resource of EMTDC https://hvdc.ca/uploads/ck/files/reference_material/EMTDC_User_Guid e_v4_3_1.pdf īƒ˜ Application of PSCAD http://www.scribd.com/doc/61646593/PSCAD-Application-Guide-2008
  • 46. Practice Exercise (1): â€ĸ Based on example “simpleac” [in the tutorial folder in the examples] 1. Use synchronous machine instead of ac source Refer to example “sync_exciter_exercise” 2. Build your own 230V transmission line with Bergeron model. 3. Apply 10% load shedding in the following scenarios: 1. Synchronous machine without exciter (lock rotor mode) 2. Synchronous machine with exciter (free rotor mode) 4. 5. Repeat 3 and 4 by applying a fault.
  • 47. Practice Exercise (2): â€ĸ 1. Build a three phase ac system (you can delete the BRK) â€ĸ 2. Replace AC sources with Synchronous Machines (Use the Generator in example “sync_SCtest”). â€ĸ 3. Measure and plot the voltage and current through the load. â€ĸ 4. Please refer to “OOS_Protection”, Apply any 2 different kinds of fault close to the loads on the above system. Solve 3nd problem again.
  • 48. Practice Exercise (3): 1. Build a two machine one line system. 2. Rated power of one machine group: 12GW (120MW*100) 3. Transmission line: 500kV Begeron model 4. Constant power load 10% load shedding at bus 1 to trigger an electromechanical propagation. Monitor the frequency and angle at bus 1 and bus 2. Study the effect of the following parameters on propagation time between bus 1 and 2. Transmission length: 300km, 600km; Tie-line power: 300MW, 600MW; Inertia of machine 1, 3. Notes: when study on variable, fix the other two variables.