Case Study: An Adaptive Underfrequency Load-Shedding System

被引:18
|
作者
Manson, Scott [1 ]
Zweigle, Greg [1 ]
Yedidi, Vinod [1 ]
机构
[1] Schweitzer Engn Labs Inc, Pullman, WA 99163 USA
关键词
Blackout; dynamic stability; generation shedding; inertia compensation and load tracking (ICLT); incremental reserve margin (IRM); load shedding; reliability; spinning reserve;
D O I
10.1109/TIA.2013.2288432
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Underfrequency (UF) schemes are implemented in nearly every power system and are deemed critical methods to avert system-wide blackouts. Unfortunately, UF-based schemes are often ineffective for industrial power systems. Traditional UF schemes are implemented in either discrete electromechanical relays or microprocessor-based multifunction relays. Individual loads or feeders are most commonly shed by relays working autonomously. The UF in each relay is set in a staggered fashion, using different timers and UF thresholds. Sometimes, dw/dt elements are used to select larger blocks of load to shed. Unfortunately, no traditional schemes take into account load-level changes, system inertia changes, changes in load composition, governor response characteristics, or changes in system topology. This paper explains an adaptive method that overcomes known UF scheme problems by using communication between remote protective relays and a centralized UF appliance. This method continuously keeps track of dynamically changing load levels, system topology, and load composition. The theory behind the improved scheme is explained using modeling results from a real power system.
引用
下载
收藏
页码:1659 / 1667
页数:9
相关论文
共 50 条
  • [41] Rotational Inertia Analysis and Underfrequency Load Shedding Strategy of a Microgrid System
    Wang, Shen-Szu
    Lee, Yih-Der
    Jiang, Jheng-Lun
    Ho, Yuan-Hsiang
    45TH ANNUAL CONFERENCE OF THE IEEE INDUSTRIAL ELECTRONICS SOCIETY (IECON 2019), 2019, : 2245 - 2250
  • [42] A NEW LOAD SHEDDING SCHEME FOR LIMITING UNDERFREQUENCY
    PRESETIJO, D
    LACHS, WR
    SUTANTO, D
    IEEE TRANSACTIONS ON POWER SYSTEMS, 1994, 9 (03) : 1371 - 1379
  • [43] The Application of a Frequency Gradient for Underfrequency Load Shedding
    Rudez, Urban
    Azbe, Valentin
    Mihalic, Rafael
    ELEKTROTEHNISKI VESTNIK-ELECTROCHEMICAL REVIEW, 2008, 75 (03): : 155 - 161
  • [44] Underfrequency Load Shedding with Forecasting of the Power System's Frequency Response
    Rudez, Urban
    Mihalic, Rafael
    INTERNATIONAL REVIEW OF ELECTRICAL ENGINEERING-IREE, 2012, 7 (02): : 3969 - 3978
  • [45] An underfrequency load shedding scheme for islanded microgrids
    Ketabi, Abbas
    Fini, Masoud Hajiakbari
    INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS, 2014, 62 : 599 - 607
  • [46] APPLICATION OF UNDERFREQUENCY RELAYS FOR AUTOMATIC LOAD SHEDDING
    LAKAY, HE
    BURTNYK, V
    IEEE TRANSACTIONS ON POWER APPARATUS AND SYSTEMS, 1968, PA87 (03): : 776 - &
  • [47] THE IMPACT OF LOAD-SHEDDING REACTION TIME ON POWER SYSTEM STABILITY
    Eckl, Michael
    Donnellan, Paul
    Lerch, Edwin
    Hoermann, Walter
    2016 PETROLEUM AND CHEMICAL INDUSTRY CONFERENCE EUROPE (PCIC EUROPE), 2016,
  • [48] POWER SYSTEM MODELING FOR SELECTION OF AUTOMATIC FREQUENCY LOAD-SHEDDING
    SHCHERBINA, YV
    MELNIK, VP
    ROITELMAN, IG
    ELECTRICAL TECHNOLOGY, 1980, (02): : 53 - 63
  • [49] An Efficient Cost-Effective Experimental Approach for Intelligent Load-Shedding: A Case Study
    Alamri, Basem
    Mughal, Umer Iftikhar
    Babqi, Abdulrahman
    Alharbi, Yasser
    Ullah, Nasim
    INTERNATIONAL JOURNAL OF RENEWABLE ENERGY RESEARCH, 2020, 10 (03): : 1385 - 1395
  • [50] A Novel Self-Adaptive Underfrequency Load Shedding Method Based on Local Measurements
    Yang, Hao
    Zhang, Baohui
    Wang, Qing
    Ma, Shiying
    2013 IEEE INTERNATIONAL CONFERENCE OF IEEE REGION 10 (TENCON), 2013,