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Reactive Power Control Strategy for Inhibiting Transient Overvoltage Caused by Commutation Failure

机译:用于抑制欠换失败引起的瞬态过电压的无功功率控制策略

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The commutation failure (CF) is the most common fault in line-commutated high voltage direct current (LCC-HVDC) systems that may lead to the transient overvoltage in the sending-side system. In the worst condition, the CF may lead to large-scale wind turbine tripping. To resolve this problem, the mathematical relationship between the reactive power consumed by the rectifier and DC voltage, DC current is derived. Then, a transient overvoltage calculation method is proposed in this paper. Furthermore, the mechanism of transient overvoltage caused by the CF is analyzed; it is revealed that the reason for three times transient overvoltage is the rapid decrease of the reactive power consumed by the rectifier during the CF and the recovery period from the CF. This paper proposes a constant reactive power control (CRPC) to inhibit transient overvoltage of the sending-side AC system. The proposed CRPC can increase the reactive power consumed by the rectifier, reduce the exchange reactive power between AC and DC systems, and suppress the transient overvoltage. A simulation model in PSCAD serves to verify the proposed CRPC on the transient overvoltage suppression in the situation of different fault types, fault duration, fault severity and short circuit ratio (SCR).
机译:换向故障(CF)是线路上换向高压直流(LCC-HVDC)系统中最常见的故障,可能导致发送侧系统中的瞬态过电压。在最糟糕的情况下,CF可能导致大规模的风力涡轮机跳闸。为了解决这个问题,导出了整流器和DC电压消耗的无功功率之间的数学关系,推导了DC电流。然后,本文提出了一种瞬态过电压计算方法。此外,分析了由CF引起的瞬态过电压的机制;据透露,三次瞬态过电压的原因是CF期间整流器消耗的无功功率的快速降低,以及来自CF的恢复周期。本文提出了一种恒定的无功功率控制(CRPC)来抑制送侧交流系统的瞬态过电压。所提出的CRPC可以提高整流器消耗的无功功率,降低交流和直流系统之间的交换无功功率,并抑制瞬态过电压。 PSCAD中的仿真模型用于验证在不同故障类型,故障持续时间,故障严重程度(SCR)的情况下的瞬态过压抑制上的提出的CRPC。

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