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Effects of DC Voltage control strategy on voltage response on multi-terminal HVDC following loss of a converter station

机译:换流站失电后直流电压控制策略对多端HVDC电压响应的影响

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Multi-terminal High Voltage Direct Current (MTDC) based on Voltage Source Converter is the most appropriate technology for Supergrid. The traditional reliability and availability related to outages as to transient reliability related to performance during and recovery after temporary faults and disturbances requires be evaluated. This paper shows the effects of DC Voltage control strategy on the dynamic behavior of bus voltages at multi-terminal HVDC following a lost of a converter station. Two different dc voltage control method are simulated in this paper: voltage margin method and voltage-droop method. Time-domain simulations on simple test system using DigSILENT® PowerFactory™ are used to evaluate the response of AC/DC bus voltage considering sudden converter-station disconnection. Results demonstrate when two converters on the MTDC operate with DC voltage droop characteristic; it appears a “collaborative scheme” for the DC voltage support, sharing the task of controlling the DC voltage. The main contribution of this paper is to demonstrate the voltage margin control is capable to survive a converter outage just if this converter is operating on constant power mode.
机译:基于电压源转换器的多端子高压直流(MTDC)是最适合Supergrid的技术。需要评估与中断有关的传统可靠性和可用性,以及与临时故障和干扰期间以及恢复后的性能相关的瞬态可靠性。本文展示了直流电压控制策略对换流站丢失后多端子HVDC母线电压动态行为的影响。本文模拟了两种不同的直流电压控制方法:电压裕量法和电压降法。考虑到转换器站突然断开,使用DigSILENT ® PowerFactory™在简单测试系统上进行时域仿真,可以评估AC / DC总线电压的响应。结果表明,MTDC上的两个转换器何时具有直流电压下降特性。似乎是直流电压支持的“协作方案”,分担了控制直流电压的任务。本文的主要贡献是证明即使该转换器在恒定功率模式下运行,电压裕度控制也能够使其免受转换器故障的影响。

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