Analysis on wind power curtailment at frequency adjustment level

被引:0
|
作者
Tian, Shuxin [1 ]
Cheng, Haozhong [1 ]
Zeng, Pingliang [2 ]
Liu, Lu [1 ]
Wang, Kan [1 ]
Ma, Zhoujun [1 ]
机构
[1] Key Laboratory of Control of Power Transmission and Conversion, Ministry of Education (Shanghai Jiao Tong University), Shanghai,200240, China
[2] China Electric Power Research Institute, Beijing,100192, China
关键词
Electric power system interconnection - Wind turbines - Wind farm - Electric power transmission networks - Electric load shedding;
D O I
暂无
中图分类号
学科分类号
摘要
Wind power curtailment has been one of the key restricting factors behind the development of the wind power industry. The main reasons for wind power curtailment are inadequate peak and frequency adjustment capability as well as inadequate transmission capacity. As seen from the aspect of the frequency adjustment, the active power output of the wind farm should be reduced step by step according to the command from the dispatch department of the power grid when the grid frequency exceeds the upper limit. To study urgent wind power curtailment at the minute-level, the most appropriate shedding method for wind generators is selected based on the frequency adjustment sensitivity index of wind generators' tripping as lopsided power exists. Typical difficult time intervals of the frequency adjustment are chosen according to the relationship between frequency overshoot time and load variation. Combined with the above wind generator tripping strategies, annual wind power curtailment in the planning scheme at the frequency adjustment level is estimated. Based on DIgSILENT/PowerFactory software, a certain regional power network planning in China of 2020 is used to verify the correctness and validity of the proposed method. ©, 2015, Xi'an High Voltage Apparatus Research Institute. All right reserved.
引用
收藏
页码:18 / 26
相关论文
共 50 条
  • [31] Evaluation of Wind Power Curtailment in Active Network Management Schemes
    Kane, Laura
    Ault, Graham W.
    IEEE TRANSACTIONS ON POWER SYSTEMS, 2015, 30 (02) : 672 - 679
  • [32] Robust Security Economic Dispatch Considering Wind Power Curtailment
    Fu Y.
    Chen T.
    Li Z.
    Wei S.
    Ji L.
    Ji, Liang (jihome2002@sina.cn), 2017, Chinese Society for Electrical Engineering (37): : 47 - 54
  • [33] Analyzing TCSC and SVC effects in wind power curtailment mitigation
    Rasoulzadeh-akhijahani, Ali
    Mosallanejad, Ali
    INTERNATIONAL TRANSACTIONS ON ELECTRICAL ENERGY SYSTEMS, 2016, 26 (11): : 2445 - 2462
  • [34] Optimization Strategy of Wind Power Curtailment Under LVRT Operation
    Kim, Sangwon
    IEEE ACCESS, 2024, 12 : 116637 - 116648
  • [35] Wind Turbine Controller Design Considerations for Improved Wind Farm Level Curtailment Tracking
    Deshpande, Ameet S.
    Peters, Rhonda R.
    2012 IEEE POWER AND ENERGY SOCIETY GENERAL MEETING, 2012,
  • [36] Assessing the benefits of wind power curtailment in a hydro-dominated power system
    Evans, Joel
    Shawwash, Ziad
    2009 CIGRE/IEEE PES JOINT SYMPOSIUM INTEGRATION OF WIDE-SCALE RENEWABLE RESOURCES INTO THE POWER DELIVERY SYSTEM, 2009, : 251 - 259
  • [37] Energy system impact of wind power with curtailment: national- and city-scale analysis
    Pilpola, Sannamari
    Arabzadeh, Vahid
    Lund, Peter D.
    INTERNATIONAL JOURNAL OF LOW-CARBON TECHNOLOGIES, 2019, 14 (02) : 277 - 285
  • [38] Assessment of Wind Power Curtailment at Risk for Large-scale Wind Integrated Power System Based on Analysis of Peak Load Regualtion Demand
    Shao, Jian
    Sun, Rong
    Wei, Zhinong
    Mei, Jianchun
    Tang, Jin
    Cui, Lin
    2018 INTERNATIONAL CONFERENCE ON POWER SYSTEM TECHNOLOGY (POWERCON), 2018, : 2043 - 2049
  • [39] Configuration Method of Energy Storage for Wind Farms Considering Wind Power Uncertainty and Wind Curtailment Constraint
    Yang L.
    Cao Y.
    Wei W.
    Chen L.
    Mei S.
    Dianli Xitong Zidonghua/Automation of Electric Power Systems, 2020, 44 (16): : 45 - 52
  • [40] Study on effect of electric boiler configuration method on wind power curtailment
    Xie H.
    Xu D.
    Hu L.
    Ding Q.
    Song B.
    Dianli Xitong Baohu yu Kongzhi/Power System Protection and Control, 2019, 47 (21): : 126 - 133