An Emergency Control Strategy of Synchronous Condenser to Reduce the Risk of HVDC Continuous Commutation Failure

J. Lei, Yu Wang, Hongli Zhang, Xuelian Wu, Zhongqing Sun, Jianliang Gao
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引用次数: 2

Abstract

During the commutation failure and its dynamic recovery process, the voltage fluctuation caused by the frequent reactive power exchange between the HVDC system and the receiving-end AC system is one of the important reasons for the continuous commutation failure. Large-capacity synchronous condenser is equipped with strong transient voltage support capabilities, which is important means to reduce the risk of continuous commutation failure. This paper analyzes the effect of the conventional control method of the synchronous condenser to deal with the continuous commutation failure, then based on its response characteristics and HVDC recovery characteristics, an emergency control strategy of the synchronous condenser is proposed. Firstly, control the synchronous condenser to the strong excitation according to commutation state. Secondly, adopting the commutation failure prediction to maintain the strong excitation control. Finally, exiting the strong excitation control with a constant slope control. This method can improve the stability of the commutation voltage and reduce the risk of continuous commutation failure. At last, Based on JingSu DC of the East China Power Grid, the effectiveness of the emergency control strategy is verified with electromechanical transient simulation software PSDEdit.
降低高压直流连续换相故障风险的同步冷凝器应急控制策略
在换相故障及其动态恢复过程中,高压直流系统与接收端交流系统之间频繁的无功交换所引起的电压波动是导致连续换相故障的重要原因之一。大容量同步电容器具有较强的暂态电压支撑能力,是降低连续换相故障风险的重要手段。分析了同步冷凝器常规控制方法对连续换相故障的处理效果,在此基础上,根据同步冷凝器的响应特性和高压直流恢复特性,提出了同步冷凝器的应急控制策略。首先,根据换相状态控制同步电容器到强励磁。其次,采用换相失效预测保持强励磁控制。最后,将强励磁控制改为恒斜率控制。这种方法可以提高换相电压的稳定性,降低连续换相失效的风险。最后,以华东电网靖苏直流为例,利用机电暂态仿真软件PSDEdit验证了应急控制策略的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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