A grid-side fault ride-through method suitable for offshore wind farms connected with MMC-MTDC

被引:0
|
作者
Jia K. [1 ]
Dong X. [1 ]
Li J. [1 ]
Li Y. [1 ]
Niu H. [1 ]
Bi T. [1 ]
机构
[1] State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing
关键词
coordinated control; fault ride-through; MMC-MTDC; offshore wind power; unbalanced power;
D O I
10.19783/j.cnki.pspc.230551
中图分类号
学科分类号
摘要
Offshore wind power projects are progressively expanding into deep seas and using MMC based multi-terminal direct current (MMC-MTDC). When a fault occurs on the shore AC grid side, the offshore wind farms connected to an MMC-MTDC system should have the capability of fault ride-through (FRT). However, existing methods focus on system-level control strategies between grid side converters, without considering the coordination of other converters. This oversight could lead to converter overload during severe faults. Additionally, traditional FRT methods for MMC based two-terminals have not been adapted for MTDC scenarios. This may result in wind farm disconnection. To address the above issues, faults are categorized into scenarios of self-absorption and non-self-absorption first. The unbalanced power is relatively small in the self-absorption scenario, so this paper proposes an over-speed load-shedding control strategy based on the voltage droop method and a slave station voltage deviation droop control strategy considering the power margin combining safe load-shedding capability of wind turbine itself and slave station surplus capacity. The unbalanced power is larger in the non-self-absorption scenario, so this paper proposes FRT control strategies considering normal and abnormal dispatch center communication. Finally, modeling on PSCAD/EMTDC simulation platform show the validity of the proposed control method. © 2023 Power System Protection and Control Press. All rights reserved.
引用
收藏
页码:76 / 85
页数:9
相关论文
共 25 条
  • [1] LIU Yao, ZHAO Xiaoling, WU Jiawei, Et al., Application status and prospect of HVDC submarine cable projects, High Voltage Apparatus, 58, 2, pp. 1-8, (2022)
  • [2] ZHENG Liming, JIA Ke, BI Tianshu, Et al., AC-side fault analysis of a VSC-HVDC transmission system connected to offshore wind farms and the impact on protection, Power System Protection and Control, 49, 20, pp. 20-32, (2021)
  • [3] YANG B, LIU B, ZHOU H, Et al., A critical survey of technologies of large offshore wind farm integration: summary, advances, and perspectives, Protection and Control of Modern Power Systems, 7, 2, pp. 233-264, (2022)
  • [4] LIU Xiaoming, TAN Zukuang, YUAN Zhenhua, Et al., Comprehensive optimization of access point selection for offshore wind farm integrated with voltage source converter high voltage direct current, Power Generation Technology, 43, 6, pp. 892-900, (2022)
  • [5] WANG Zhenhao, LI Jinlun, WANG Xinduo, Et al., DC fault ride-through coordinated control strategies for bipolar MMC-MTDC system with wind power connected, Electric Power Construction, 43, 10, pp. 26-36, (2022)
  • [6] ZOU Kaikai, LI Gang, ZHANG Baoshun, Et al., A coordination strategy of offshore MMC during onshore grid AC faults, Distribution & Utilization, 39, 11, pp. 18-25, (2022)
  • [7] WANG Bingqian, ZHAO Wenqiang, SHI Qiaoming, Et al., Fault ride-through method of inverter hybrid cascade LCC-VSC UHVDC transmission system, Electric Power Engineering Technology, 40, 6, pp. 69-76, (2021)
  • [8] SILVA B, MOREIRA C L, LEITE H, Et al., Control strategies for AC fault ride through in multiterminal HVDC grids, IEEE Transactions on Power Delivery, 29, 1, pp. 395-405, (2014)
  • [9] YU Xiang, LU Jiang, DONG Yunlong, Et al., A steady-state voltage control method for a multi-terminal hybrid UHVDC transmission system, Power System Protection and Control, 50, 1, pp. 174-180, (2022)
  • [10] WANG Shaolin, WANG Gang, CHEN Qi, Et al., An adaptive droop control method considering the influence of line resistance for MMC-MTDC, Power System Protection and Control, 50, 10, pp. 40-47, (2022)