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Evaluation of a communication-based fault ride-through scheme for offshore wind farms connected through high-voltage DC links based on voltage source converter

机译:基于电压源转换器的通过高压直流母线连接的海上风电场基于通信的故障穿越方案评估

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摘要

Offshore wind farms connected to the mainland through high-voltage DC links based on voltage source converters (VSC-HVDC) are subject to grid code requirements, such as fault ride-through (FRT) capability and dynamic voltage support. To address the challenge of FRT capability, sophisticated control strategies are required, capable of handling the power imbalance between the two interconnection ends during onshore grid faults. Τhis study proposes an FRT method which combines a de-loading control strategy for the offshore wind turbines, utilising the communication infrastructure of the VSC-HVDC system, with a DC chopper to dissipate the power surplus that cannot be effectively curtailed via the communication link. The impact of communication system latency on the expected FRT response and the required rating of the DC chopper is investigated using a linearised small-signal model introduced in this study, whose results are validated against time-domain simulations using detailed electromagnetic transient-type models for the entire system. It is concluded that the required rating of chopper resistors can be substantially reduced when existing communication capabilities are exploited, even in the presence of relatively high communication delays.
机译:通过基于电压源转换器(VSC-HVDC)的高压DC链路连接到大陆的海上风电场要遵守电网规范要求,例如故障穿越(FRT)能力和动态电压支持。为了应对FRT功能的挑战,需要复杂的控制策略,该策略应能够处理陆上电网故障期间两个互连端之间的功率不平衡。他的研究提出了一种FRT方法,该方法结合了海上风力涡轮机的减载控制策略,利用VSC-HVDC系统的通信基础设施和直流斩波器来消散无法通过通信链路有效削减的电力过剩。使用本研究中引入的线性化小信号模型研究了通信系统等待时间对预期FRT响应和所需的直流斩波器额定值的影响,其结果已针对时域仿真进行了验证,该仿真使用了详细的电磁暂态模型,整个系统。结论是,即使在存在相对较高的通信延迟的情况下,利用现有的通信功能时,斩波电阻的额定额定值也可以大大降低。

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