Lessons Learned in Static VAR Compensator Protection

Similar documents
Lessons Learned in Static Var Compensator Protection

Main Components of a Static Var Compensator (SVC)

Medium Voltage Metal-Enclosed Thyristor-Switched Harmonic Filter Banks

CHAPTER 4 FACTS CONTROLLERS FOR OPTIMIZATION OF POWER SYSTEM

MAHALAKSHMI ENGINEERING COLLEGE TIRUCHIRAPALLI EE-2401 POWER SYSTEM OPERATION AND CONTROL UNIT-III REACTIVE POWER VOLTAGE CONTROL

The Study of Voltage Profile and Power Quality with SVC in Transmission System at Different Loads

Medium Voltage Metal-Enclosed Harmonic Filter Systems

Medium Voltage Metal-Enclosed Power Capacitor Banks

Modeling and Simulation of Static VAR Compensator Controller for Improvement of Voltage Level in Transmission Lines

Purpose of High Voltage Circuit Switchers

Final Report. Mini Project TET Group nr 7 - Project nr 4. Students: Hans Lavoll Halvorson, NTNU

Chapter 3 MODELING OF SHUNT FACTS DEVICES. The Shunt FACTS Devices are used for voltage control and

Approval...6. Current Revision...7. Introduction... 8 About PJM Manuals... 8 About This Manual... 8 Using This Manual...9

ELG4125: System Protection

IJSRD - International Journal for Scientific Research & Development Vol. 3, Issue 10, 2015 ISSN (online):

EF

Transient Stability Improvement of Long Transmission Line System by Using SVC

ABB static var compensator stabilizes Namibian grid voltage

The PCI Series. Precise power control for complex SCR applications. Phase Angle Fired SCR Power Controls AMPS VAC

POWER FACTOR CORRECTION USING SVC WITH FUZZY LOGIC CONTROLLER

Introduction to new ABB STATCOM portfolio Power Grid Integration FACTS

International Journal of Scientific & Engineering Research Volume 4, Issue 2, February ISSN

Redundant Bus Protection Using High-Impedance Differential Relays. Josh LaBlanc

Transient stability of 11-bus system using SVC and improvement of voltage profile in transmission line using series compensator

Identify and understand the operation of common bus. After this presentation you will be able to: Identify common bus arrangements

Simulation and Analysis of Static Var Compensator with Matlab

MODELING AND SIMULATION OF SVC CONTROLLER FOR ENHANCEMENT OF POWER SYSTEM STABILITY

Midwest Energy, Inc. Distributed Generation Interconnection Expedited & Standard Process Application

Substation Automation Products. Transformer protection RET670/650 Relion 670 and 650 series

Bus Protection Application Challenges

Bus Bar Protection Relay B-PRO 4000

Transient Stability Improvement in Transmission System Using SVC with fuzzy logic Control

DGSZV-EP DIGITAL GALVANIC LONGITUDINAL DIFFERENTIAL PROTECTION. Application field

THE INTEGRATED TESTING SOLUTION

SVC FOR MAINTAINING OF POWER QUALITY IN THE FEEDING GRID IN CONJUNCTION WITH AN ELECTRIC ARC FURNACE IN A STEEL PLANT

Transformer Protection Relay

1. Micro Drive Load sharing application note

ANNA UNIVERSITY QB ( )

RT4F-110V/25A RECTIFIER

Study of Transient Stability Improvement of IEEE 9-Bus System by using SVC

Capacitor Switching Contactors

SVC static var compensator

We will discuss two types of loss-of-potential (LOP) logic during this presentation:

Capacitor Only SVC Voltage Control Algorithm

USE CASE 13 ADAPTIVE TRANSMISSION LINE PROTECTION

Voltage Profile Improvement of Transmission Lines Using Static VAR Compensator

Substation Automation Products. High impedance differential busbar protection REB650 Relion 650 series

2. Control Pin Functions and Applications

FP5000. Refer to for the latest information on this constantly evolving product

Sensitive Earth-fault Relay SPAJ 111 C. Product Guide

RT12-240V/2.4kW Rectifier Specification

LAB1 INTRODUCTION TO PSS/E EE461: POWER SYSTEMS COLORADO STATE UNIVERSITY

Technical Requirements for High-voltage DC Power Feeding Interfaces of ICT equipment

For the State of Washington SMALL GENERATOR INTERCONNECTION REQUEST (Tier 1 [Non-Net Meter], Tier 2, Tier 3) (Application Form)

(1986; Rev. 1989) Molded Case Circuit Breakers and Molded Case Switches. (1985; Rev. 1988) Enclosures for Electrical Equipment (1000 Volts Maximum)

RT7-48V/6kW Specification

White Paper. AC Surge Protection. Evaluation of Series Element Surge Protective Device for Protection of Electronic Equipment and Systems

MiCOM P521. Fast Feeder Differential Protection

RT4B-110V/12A RECTIFIER

www. ElectricalPartManuals. com .Basler Electric BE1-878 HIGH IMPEDANCE BUS DIFFERENTIAL RELAY ADVANTAGES ADDITIONAL INFORMATION APPLICATION Page2

UR Universal Relay Series

PHASE MONITOR RELAYS Product Summary

RT4F-120V/20A-WAC RECTIFIER

Intelligent Application of Flexible AC Transmission System Components in an Evolving Power Grid

www. ElectricalPartManuals. com Protective Relays PROTECTION AND CONTROL FUNCTIONS ADVANCED CAPABILITIES

Level 2, 3 and 4 Interconnection Application for Certified, Inverter Based Generating Facilities Not Greater than 2MW

UNITROL 5000 Excitation Systems for Medium and Large Synchronous Machines

Basics of Industrial Electricity and Troubleshooting Electrical Control Circuits

Circuit Breaker Operation & its load calculations

Mitigation of Voltage Swells I

SVC STATIC VAR COMPENSATOR.

RT4F-48V/50A-WAC RECTIFIER

AN ADVANCED APPROACH TO IDENTIFY INRUSH CURRENT AND HARMONICS USING ARTIFICIAL INTELLIGENCE FOR POWER SYSTEM PROTECTION

Power Quality of Commercial Buildings - Advanced

Technical Explanation for Power Controllers

Tutorials. Tutorial: Creating a New Case Page 1 of 13

SEL-487B. A Powerful Solution for Busbar Differential Protection. Bus Differential and Breaker Failure Relay

RT9-48V/1.4kW Rectifier Specification

Guideline on How to Size an NGR

Ethernet Protection A Whole Solution Han Zou, ProTek Devices

Distribution Static Var Compensators and Static Synchronous Compensators for Suppressing Voltage Fluctuation

MiCOM P521. Fast feeder differential protection

SMALL GENERATOR INTERCONNECTION REQUEST. (Application Form)

Reyrolle Protection Devices. 7SG117 Argus 7 Synchronising Relay. Answers for energy

PROTECTION, AUTOMATION & CONTROL

Using the Bitronics 70 Series to Improve Local Monitoring and Control

The International Power Quality Resource

PLT. Breaker-based transfer switch open, closed or soft transition amps. Specification sheet

RMS Product Presentation

MiCOM P721 & P723. Numerical High Impedance Differential Relay. Protection Relays. Customer Benefits

Busbar protection REB 670

SR489 SR489. Generator Management Relay. Economical protection, metering, and monitoring functions for small and medium sized generators.

Application Notes on Generator Protection Schemes

Verification of Utility Requirements on Modern Numerical Busbar Protection by Dynamic Simulation

Feeder protection relay SPAA 121 C. Product Guide

Advanced Line Differential Protection, Automation, and Control System. Combine subcycle line protection with traveling-wave fault locating

g GE Power Management UR - The Universal Relay

CurrentWatch Current Sensors. EGF Series Ground Fault Sensors. Ground Fault Sensors with Solid-State or Mechanical Relay Outputs.

i-pcgrid Workshop 2014 PG&E Order No. 754 Analysis: Protection

Current Limiting Protector

Transcription:

Lessons Learned in Static VAR Compensator Protection Aaron Findley, Mychal Hoffman POWER Engineers, Inc. Dan Sullivan, Jan Paramalingam Mitsubishi Electric Power Product Inc. Presented by: Aaron Findley

Presentation Contents i. Introduction to SVC s ii. SVC components iii. SVC protection and lessons learned iv. Summary v. Questions

Introduction to SVCs Static var compensators are shunt-connected var generators or absorbers Outputs are varied to control specific reactive power flow Comprised of capacitors an reactors that are placed in and out of service using power electronic switching devices Term static no moving or rotating main components

Introduction to SVCs The common types of reactive power devices that make up all or part of static var system include: Thyristor-switched reactor (TSR) Thyristor-controlled reactor (TCR) Thyristor-switched capacitor (TSC) TSCs and TCRs are commonly used

Introduction to SVCs Capable of controlling individual phase voltages of the buses to which they are connected They can be used for control of negativesequence as well as positive-sequence voltage deviations Primarily used for three phase control of the power system

Introduction to SVCs Ideally suited for rapid control of voltage They provide faster response time than mechanical switched devices They Provide continuous and smooth control of VARS

Components of an SVC

Components of an SVC system

TSC TSC: Thyristor Switched Capacitors, Capacitor banks switched on and off by using Thyristors In three phase applications, the units are connected in delta Integral cycle control is used where a change can be made every half cycle Avoid switching when bus an capacitor voltages are unequal

TSC

TCR A reactor in series with a bidirectional switch Anti parallel thyristors conduct on alternate half cycles depending on firing angle Reactors are switched on for a controllable fraction of every half cycle Will require AC filtering because the nonsinusoidal current draw results in harmonics.

TCR Relay event report showing TCR firing delay. The reactive current magnitude decreases as the firing delay increases

Filtering Considerations 2 2 Where: R is the sampling rate in samples/cycle Most relay elements operate on filtered 60Hz current. Consider RMS based overcurrent elements for filter branches if sensitive protection is needed. Often components are oversized

TSC/TCR Protection Unbalance (TSC Capacitors) Differential Overcurrent Over/Under Voltage 15

Classic Differential Protection Traditional percentage differential protection Three differential zones, one for each phase of the protected equipment 1 2 1 2 1, 2

TSC/TCR Differential Protection Each phase of the differential element wraps one valve and associated reactive element.

TSC/TCR Physical Considerations Valves are housed indoors, reactive components are typically in the yard. The delta connection often installed in a phase overphase configuration at the control building interface Increases the probability of phase to phase faults in the delta connected TCR or TSC. 18

TSC/TCR Current Protection Overcurrent settings and time delays must be provided by the manufacturer. Each SVC is a custom design, made to order. Manufacturer input is critical.

Event: TSC Fault Fault occurred when ice formed on the animal guards resulting in a short circuit between phases. Connected B and C phases through the capacitor bank. The differential element was blocked by harmonic blocking logic

TSC Fault, Filtered Report

TSC Fault, Unfiltered Report

Purpose of Harmonic Blocking Harmonic. blocking and restraint are based on detecting the signature harmonics generated by the saturation of a ferromagnetic core. Inrush is not an issue in air core reactors

TSC Fault, Harmonic Blocking Inrush. currents or other transient currents will travel through the zone of protection and be accounted for. No additional restraint or blocking logic is required

TCR Controlled Shutdown For less critical failures the SVC is taken offline in a more gradual controlled stop The TCR valves are placed into full conduction for several cycles to allow the TCRs to quickly discharge the energy stored in the filter banks Discharge step is required due to the capacitive nature of filter banks, and the desire to be able to quickly bring the SVC back online Useful to quickly re configure in a degraded mode following a fault

TCR Controlled Shutdown.

TCR Trip During Shutdown. The trip/event was triggered during the discharge phase of the shutdown when the TCR valves were fully conducting. The relay measured a negative sequence current magnitude of approximately 30% of the rated current. Blocked conduction of the TCRs prematurely, latched a trip preventing any degraded mode operation.

TCR Trip During Shutdown

TCR Trip During Shutdown Depending on the SVC control design, significant unbalance currents may flow during a shutdown even after the breaker has opened. Nuisance trips that occur during a controlled shutdown can interfere with SVC operations, and halt auto reconfiguration schemes. Negative sequence elements protecting SVC branches should consider any intentionally unbalanced operations, either due to unsymmetrical operation or filter bank discharge.

TCR Turn to Turn Fault Negative sequence alarms indicated that the fault may have developed minutes before finally evolving to include an additional phase.

TCR Turn to Turn Fault

TCR Turn to Turn Fault Turn to turn faults in air core reactors are notoriously difficult to detect. The change in current measured external to the reactor can be relatively small depending on the location of the fault. The reason turn to turn faults are so damaging can best be understood by considering the ideal transformer model.

TCR Turn to Turn Fault Negative sequence current elements can detect some of turn to turn faults but are less sensitive to lower level faults. For some SVCs, sensitive unbalance protection could be possible by summing the delta currents directly to measure the reactor unbalance current This approach cannot be applied on SVC s that are intended to operate unsymmetrically The lesson learned from this event is to be aware of the limitations of the applied protection scheme, depending on the SVC design a high degree of sensitivity for all fault types may not be practical.

Harmonic Filter Banks Often have more than one filter protected by a single relay. This could require some creative logic to differentiate between filters, which will likely have unique alarm an pickup values. Standard Unbalance Protection is used

Harmonic Filter Banks Series/parallel combinations of resistors, capacitor banks, and tuning reactors can be applied on a single branch to improve the transient performance of an SVC. In this case blown fuses in the LC circuit capacitor banks are detected by measuring the 60Hz current in the resistive branch. It may take several minutes for resistor to reach rated impedance at temperature.

Summary SVC protection involves atypical applications of traditional protective relay schemes. The protection engineer understand both the intended purpose of each algorithm as well as the context in which they are being applied. Protective relays must coordinate with SVC controls and consider intentionally unbalanced SVC operational modes.

37