Electric Power ›› 2023, Vol. 56 ›› Issue (5): 163-171.DOI: 10.11930/j.issn.1004-9649.202205103
• Power System • Previous Articles Next Articles
SU Kaiyuan1, DONG Wenkai1, QIU Yinfeng2, WEI Che2, XIE Xiaorong1
Received:2022-06-01
Revised:2023-03-20
Accepted:2022-08-30
Online:2023-05-23
Published:2023-05-28
Supported by:SU Kaiyuan, DONG Wenkai, QIU Yinfeng, WEI Che, XIE Xiaorong. Study on Using Distributed Wind-Storage Integrated System to Improve Frequency Stability of Offshore Oilfield Power Systems[J]. Electric Power, 2023, 56(5): 163-171.
| [1] 李茜, 黄海涛, 晏小彬, 等. 海上油气微能系统的低碳优化运行研究[J]. 中国电力, 2023, 56(3): 13–22 LI Qian, HUANG Haitao, YAN Xiaobin, et al. Reserch on low-carbon optimal operation of offshore oil and gas micro integrated energy system[J]. Electric Power, 2023, 56(3): 13–22 [2] YU Q G, LIU Y M, JIANG Z C, et al. Study of offshore wind power penetration rate in gas turbine generator platform power grid[J]. Energy Reports, 2021, 7: 141–146. [3] 刘吉臻, 马利飞, 王庆华, 等. 海上风电支撑我国能源转型发展的思考[J]. 中国工程科学, 2021, 23(1): 149–159 LIU Jizhen, MA Lifei, WANG Qinghua, et al. Offshore wind power supports China’s energy transition[J]. Strategic Study of CAE, 2021, 23(1): 149–159 [4] MESTRINER D, LABELLA A, BRIGNONE M, et al. A transient stability approach for the analysis of droop-controlled islanded microgrids[J]. Electric Power Systems Research, 2020, 187: 106509. [5] HU D, ZHAO X, CAI X, et al. Impact of wind power on stability of offshore platform power systems[C]//2008 Third International Conference on Electric Utility Deregulation and Restructuring and Power Technologies. Nanjing. IEEE, 2008: 1688–1692. [6] 谢学渊, 廖长风, 詹世军, 等. 考虑N-K故障下系统频率稳定性的储能电站优化规划[J]. 智慧电力, 2022, 50(6): 8–13 XIE Xueyuan, LIAO Changfeng, ZHAN Shijun, et al. Optimal planning of energy storage power station considering system frequency stability under N-K fault[J]. Smart Power, 2022, 50(6): 8–13 [7] TEE J Z, LIM I L H, ZHOU K L, et al. Transient stability analysis of offshore wind with O&G platforms and an energy storage system[C]//2020 IEEE Power & Energy Society General Meeting (PESGM). Montreal, QC, Canada. IEEE, 2020: 1–5. [8] TEE J Z, TAN K H, LIM I L H, et al. Integration of offshore wind with O&G platforms with an energy storage system[C]//2019 IEEE PES Innovative Smart Grid Technologies Europe (ISGT-Europe). Bucharest, Romania. IEEE, 2019: 1–5. [9] JIN K M, KIM E H. Evaluating the impact of BESSs in the Jeju Island power system[C]//2012 International Conference on Renewable Energy Research and Applications (ICRERA). Nagasaki, Japan. IEEE, 2013: 1–4. [10] MIRANDA D S, SUN Y, COBBEN J F G, et al. Impact of energy storage on island grid dynamics: a case study of Bonaire[C]//2016 IEEE International Energy Conference (ENERGYCON). Leuven, Belgium. IEEE, 2016: 1–7. [11] 叶鹏, 李山, 何淼, 等. 风储孤网系统运行与控制研究综述[J]. 电力系统保护与控制, 2018, 46(9): 163–170 YE Peng, LI Shan, HE Miao, et al. Review of operation and control of the wind storage isolated network system[J]. Power System Protection and Control, 2018, 46(9): 163–170 [12] 修晓青, 李相俊, 王佳蕊, 等. 基于等效能折算的储能电站广义成本研究[J]. 中国电力, 2022, 55(4): 192–202 XIU Xiaoqing, LI Xiangjun, WANG Jiarui, et al. Generalized cost study of energy storage power station based on equivalent efficiency conversion[J]. Electric Power, 2022, 55(4): 192–202 [13] 龙美志. 基于精简矩阵变换器的海上风电高压直流输电控制策略研究[D]. 湘潭: 湘潭大学, 2013. LONG Meizhi. Research on control strategy of offshore wind power HVDC transmission based on simplified matrix converter[D]. Xiangtan: Xiangtan University, 2013. [14] 国家能源局. 海上石油设施电气安全规程: SY/T 6560—2011[S]. 北京: 石油工业出版社, 2011. [15] BEHERA R K, PARIDA S K. PMSG based wind power generation for an isolated irrigation system with inbuilt frequency regulation capability[C]//2017 7 th International Conference on Power Systems (ICPS). Pune, India. IEEE, 2018: 796–801. [16] 徐艳春, 蒋伟俊, 孙思涵, 等. 含高渗透率风电的配电网暂态电压量化评估方法[J]. 中国电力, 2022, 55(7): 152–162 XU Yanchun, JIANG Weijun, SUN Sihan, et al. Quantitative assessment method for transient voltage of distribution network with high-penetration wind power[J]. Electric Power, 2022, 55(7): 152–162 [17] 余浩, 李雨桐, 陈鸿琳, 等. 海上风电场交流并网系统振荡风险分析及基于短路比的评估计算原则研究[J]. 南方电网技术, 2022, 16(10): 77–86 YU Hao, LI Yutong, CHEN Honglin, et al. Analysis of oscillation risk of AC grid-connected system of offshore wind farm and research on evaluation and calculation principle based on short circuit ratio[J]. Southern Power System Technology, 2022, 16(10): 77–86 [18] 郭成, 谢浩, 孟贤, 等. 基于灰狼优化算法的负荷模型参数辨识[J]. 电力科学与技术学报, 2022, 37(2): 30–37 GUO Cheng, XIE Hao, MENG Xian, et al. Research on parameter identification of load model based on GWO algorithm[J]. Journal of Electric Power Science and Technology, 2022, 37(2): 30–37 [19] 施刚. 海上风力发电接入孤立电网的仿真研究[D]. 上海: 上海交通大学, 2009. SHI Gang. Simulation study on offshore wind power connected to isolated power grid[D]. Shanghai: Shanghai Jiao Tong University, 2009. [20] SHARIATPANAH H, FADAEINEDJAD R, RASHIDINEJAD M. A new model for PMSG-based wind turbine with yaw control[J]. IEEE Transactions on Energy Conversion, 2013, 28(4): 929–937. [21] MOTAMED B, CHEN P Y, PERSSON M. Comparison of primary frequency support methods for wind turbines[C]//2013 IEEE Grenoble Conference. Grenoble, France. IEEE, 2013. [22] 国家能源局. 电力系统安全稳定计算技术规范: DL/T 1234—2013[S]. 北京: 中国电力出版社, 2013. [23] SAJADI A, KOLACINSKI R M, CLARK K, et al. Transient stability analysis for offshore wind power plant integration planning studies—part I: short-term faults[J]. IEEE Transactions on Industry Applications, 2019, 55(1): 182–192. [24] LIU J, XU X D, JIA H J, et al. A case study on integrating offshore wind power to islanded offshore oil and gas field[C]//2021 IEEE 5 th Conference on Energy Internet and Energy System Integration (EI2). Taiyuan, China. IEEE, 2022: 739–743. [25] QINGGUANG Y, ZHICHENG J, YINGXIN M, et al. Research of the theory and application of auxiliary frequency modulation based on the energy storage in gas turbine unit of offshore oil platform[C]//The 16 th IET International Conference on AC and DC Power Transmission (ACDC 2020). Online Conference. London: IET, 2021: 2335–2340. |
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