BC Hydro的两个非相位同步事件的故事

M. Nagpal, Lesley Gu, R. Barone, R. Chowdhury, M. Thompson
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摘要

本文讲述了卑诗水电公司发生的两个相位外同步(OOPS)事件。在工作人员没有意识到同步故障的情况下,发电机同步180度失相。在测试期间,工作人员怀疑同步不良,随后调查了瞬态事件记录。调查得出的结论是,参考电压信号被反转是由于辅助电压互感器(VT)电路中的接线错误,该电路为自动同步器、同步器和同步检查继电器提供了公共输入。通常用于机组与系统同步关闭的16kv发电机断路器配备了OOPS保护,但由于断路器在事件发生前已关闭,因此保护未启用。同步采用500kv断路器;然而,它没有配备OOPS保护,因为保护不期望在高母线额定电流下表现良好。在OOPS事件期间,有许多元素拾取,但没有一个出错。例如,失场和电流不平衡因素断言。然而,由于它们的长时间延迟,这些元素没有绊倒。失步保护使这种干扰成为不会引起不稳定的功率摆动的事件。保护按设计执行,但不表示同步不良。本文对不同的发电机保护元件进行了分析,并讨论了专用OOPS报警和保护的注意事项。本文还讨论了所执行的后续诊断,并提供了防止未来OOPS事件发生的建议。
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A Tale of Two Out-of-Phase Synchronizing Events at BC Hydro
This paper tells the tale of two out-of-phase synchronizing (OOPS) events that occurred at BC Hydro. A generator was synchronized 180 degrees out-of-phase without staff awareness of the faulty synchronization. During testing, the staff suspected a poor synchronization, after which the transient event records were investigated. The investigation concluded that the reference voltage signal was inverted because of a wiring error in the auxiliary voltage transformer (VT) circuit, which provided a common input to the autosynchronizer, synchroscope, and synchronism-check relay. The 16 kV generator breaker that is normally used to sync-close the unit to the system was equipped with OOPS protection, but the protection was not enabled because the breaker was closed before the event. A 500 kV breaker was used for synchronization; however, it was not equipped with OOPS protection, because the protection was not expected to perform well with high bus current ratings. During the OOPS event, many elements picked up, but none tripped. For instance, the loss-of-field and current unbalance elements asserted. However, because of their long time delays, these elements did not trip. The out-of-step protection qualified this disturbance as an event that did not cause an unstable power swing. The protection performed as designed, but it did not indicate poor synchronization. This paper provides an analysis of the different generator protection elements and discusses considerations for dedicated OOPS alarming and protection. This paper also discusses the follow-up diagnostics that were performed and provides recommendations to prevent the occurrence of a future OOPS event.
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