Journal of Shanghai Jiao Tong University ›› 2023, Vol. 57 ›› Issue (9): 1156-1164.doi: 10.16183/j.cnki.jsjtu.2022.135
Special Issue: 《上海交通大学学报》2023年“新型电力系统与综合能源”专题
• New Type Power System and the Integrated Energy • Previous Articles Next Articles
LIU Xinyu1(), WANG Sen1, ZENG Long2, YUAN Shaoheng1, HAO Zhenghang3, LU Xinyan1
Received:
2022-05-03
Revised:
2022-06-28
Accepted:
2022-11-28
Online:
2023-09-28
Published:
2023-09-27
CLC Number:
LIU Xinyu, WANG Sen, ZENG Long, YUAN Shaoheng, HAO Zhenghang, LU Xinyan. An Adaptive Additional Control Strategy for Suppressing Low-Frequency Grid Oscillations in Doubly-Fed Wind Farms[J]. Journal of Shanghai Jiao Tong University, 2023, 57(9): 1156-1164.
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URL: https://xuebao.sjtu.edu.cn/EN/10.16183/j.cnki.jsjtu.2022.135
[1] | 郝正航, 余贻鑫, 曾沅. 改善电力系统阻尼特性的双馈风电机组控制策略[J]. 电力系统自动化, 2011, 35(15): 25-29. |
HAO Zhenghang, YU Yixin, ZENG Yuan. A control strategy for increasing power system damping with wind turbine-driven doubly-fed induction generator[J]. Automation of Electric Power Systems, 2011, 35(15): 25-29. | |
[2] | 和萍, 陈婕, 耿斯涵, 等. FACTS装置对含风电互联系统低频振荡特性分析[J]. 电力系统保护与控制, 2020, 48(8): 86-95. |
HE Ping, CHEN Jie, GENG Sihan, et al. Analysis of FACTS device on low-frequency oscillation characteristics of a power system with wind farm integration[J]. Power System Protection & Control, 2020, 48(8): 86-95. | |
[3] |
LIU H K, XIE X R, HE J B, et al. Subsynchronous interaction between direct-drive PMSG based wind farms and weak AC networks[J]. IEEE Transactions on Power Systems, 2017, 32(6): 4708-4720.
doi: 10.1109/TPWRS.2017.2682197 URL |
[4] |
LI Y, FAN L L, MIAO Z X. Wind in weak grids: Low-frequency oscillations, subsynchronous oscillations, and torsional interactions[J]. IEEE Transactions on Power Systems, 2020, 35(1): 109-118.
doi: 10.1109/TPWRS.59 URL |
[5] |
ISBEIH Y J, EL MOURSI M S, XIAO W D, et al. Mixed-sensitivity robust control design for damping low-frequency oscillations with DFIG wind power generation[J]. IET Generation, Transmission & Distribution, 2019, 13(19): 4274-4286.
doi: 10.1049/gtd2.v13.19 URL |
[6] | 杨蕾, 盛师贤, 郭成, 等. 应用附加阻尼抑制风电接入后电网的低频振荡策略研究[J]. 电工技术, 2020(21): 72-77. |
YANG Lei, SHENG Shixian, GUO Cheng, et al. Application of additional damping to suppress low-frequency oscillation strategy of the grid after wind power access[J]. Electrical Engineering, 2020(21): 72-77. | |
[7] | 王鹏, 李啸骢, 田烨杰, 等. 双馈风电机组抑制电力系统低频振荡的非线性控制策略[J]. 电气开关, 2019, 57(6): 14-18. |
WANG Peng, LI Xiaocong, TIAN Yejie, et al. Nonlinear control strategy for doubly-fed wind turbines to suppress low-frequency oscillations in power systems[J]. Electrical Switchgear, 2019, 57(6): 14-18. | |
[8] | 李生虎, 张浩. 风电系统振荡模式对DFIG-PSS传递函数的灵敏度分析[J]. 电力系统保护与控制, 2020, 48(16): 11-17. |
LI Shenghu, ZHANG Hao. Sensitivity analysis of the oscillation modes to the transfer function of DFIG-PSS in a wind power system[J]. Power System Protection & Control, 2020, 48(16): 11-17. | |
[9] | YAO J, ZHANG T, WANG X, et al. Control strategy for suppressing the shafting oscillation of the grid-connected DFIG-based wind power generation system[J]. International Transactions on Electrical Energy Systems, 2019, 29(9): e12053. |
[10] |
CAI G W, CHEN X S, SUN Z L, et al. A coordinated dual-channel wide area damping control strategy for a doubly-fed induction generator used for suppressing inter-area oscillation[J]. Applied Sciences, 2019, 9(11): 2353.
doi: 10.3390/app9112353 URL |
[11] |
GUPTA A K, VERMA K, NIAZI K R. Robust coordinated control for damping low frequency oscillations in high wind penetration power system[J]. International Transactions on Electrical Energy Systems, 2019, 29(5): e12006.
doi: 10.1002/etep.v29.5 URL |
[12] | 张萌. 计及双馈风机接入的电力系统阻尼控制[D]. 大连: 大连理工大学, 2021. |
ZHANG Meng. The research on damping control for power system with doubly-fed induction generator connected[D]. Dalian: Dalian University of Technology, 2021. | |
[13] |
MA Y F, LIU J, LIU H H, et al. Active-reactive additional damping control of a doubly-fed induction generator based on active disturbance rejection control[J]. Energies, 2018, 11(5): 1314.
doi: 10.3390/en11051314 URL |
[14] | 聂永辉, 徐晗桐, 蔡国伟, 等. 含双馈风电机组系统的广域阻尼控制器协调优化策略[J]. 电力自动化设备, 2020, 40(10): 79-84. |
NIE Yonghui, XU Hantong, CAI Guowei, et al. Coordinated optimal strategy of wide-area damping controller in doubly-fed wind turbine system[J]. Electric Power Automation Equipment, 2020, 40(10): 79-84. | |
[15] | 张宁宇, 刘建坤, 陈静, 等. 基于柔性负荷及UPFC的低频振荡抑制策略[J]. 电力系统保护与控制, 2019, 47(10): 82-87. |
ZHANG Ningyu, LIU Jiankun, CHEN Jing, et al. Low-frequency oscillation suppression method based on flexible load and UPFC[J]. Power System Protection & Control, 2019, 47(10): 82-87. | |
[16] | 廖凯. 抑制电力系统低频振荡的双馈风电机组控制策略研究[D]. 成都: 西南交通大学, 2016. |
LIAO Kai. Power system oscillations damping control strategy for doubly fed induction generator[D]. Chengdu: Southwest Jiaotong University, 2016. | |
[17] | 王鹏. 双馈风电机组抑制电力系统低频振荡的控制策略研究[D]. 南宁: 广西大学, 2019. |
WANG Peng. Research on control strategy of doubly-fed wind turbine to suppress low-frequency oscillation of power system[D]. Nanning: Guangxi University, 2019. | |
[18] | 荣飞, 李培瑶, 周诗嘉. 双馈风电场损耗最小化的有功无功协调优化控制[J]. 电工技术学报, 2020, 35(3): 520-529. |
RONG Fei, LI Peiyao, ZHOU Shijia. Coordinated optimal control with loss minimization for active and reactive power of doubly fed induction generator-based wind farm[J]. Transactions of China Electrotechnical Society, 2020, 35(3): 520-529. | |
[19] | 朱晓荣, 张建超, 王毅. 基于广域测量信号的双馈风电机组阻尼控制策略[J]. 电测与仪表, 2015, 52(20): 57-64. |
ZHU Xiaorong, ZHANG Jianchao, WANG Yi. WAMS-based damping control strategy of doubly-fed induction generator[J]. Electrical Measurement & Instrumentation, 2015, 52(20): 57-64. | |
[20] | 潘峰, 闫庚龙, 苑伟华, 等. 基于双滑模的永磁同步电机直接转矩控制[J]. 电工技术学报, 2018, 33(Sup.2): 427-433. |
PAN Feng, YAN Genglong, YUAN Weihua, et al. Research on direct torque control for permanent magnet synchronous motor based on the double sliding mode[J]. Transactions of China Electrotechnical Society, 2018, 33(Sup.2): 427-433. |
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