Multi-terminal HVDC control strategies applied to the Cigré B4 DC Grid Test System

S. Wenig, Y. Rink, T. Leibfried
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引用次数: 13

Abstract

Further developments in voltage source converter technology have triggered an increase in HVDC projects across Europe. To master future challenges within the energy sector, a continental DC overlay grid is discussed and seems to be feasible from a technical perspective. Therefore existing offshore wind and inter market DC links are proposed to be connected to each other in a first step. Supplemented by additional branches the resulting meshed DC system offers a higher degree of flexibility and reliability if adequate converter and grid control schemes are utilized. Especially in case of a converter outage or line fault, proposed droop and DC grid control methods with distributed back ups offer significant advantages compared to centralized techniques since power sharing between different converters distributes the burden caused by a sudden power variation. This paper presents a framework to evaluate DC grid and converter control methods. First, following the introduction of the underlying VSC model, basic converter and grid control schemes are introduced. Furthermore, advanced approaches such as dead-or undead-band droop and distributed grid voltage control to deal with grid contingencies are described and evaluated. Finally, results based on a MATLAB Simulink environment show adapted variations of the presented strategies which are applied to the Cigré B4 DC Grid Test System to examine suitability, performance and drawbacks of selected methods.
多端高压直流控制策略在cigr B4直流并网试验系统中的应用
电压源变换器技术的进一步发展引发了整个欧洲HVDC项目的增加。为了应对未来能源领域的挑战,讨论了大陆直流覆盖电网,从技术角度来看似乎是可行的。因此,建议在第一步将现有的海上风电和市场间直流链路相互连接。如果采用适当的变流器和电网控制方案,再加上额外的分支,网状直流系统将提供更高程度的灵活性和可靠性。特别是在变流器停电或线路故障的情况下,与集中式技术相比,分布式备份的下垂和直流电网控制方法具有显著的优势,因为不同变流器之间的功率共享分配了功率突然变化造成的负担。本文提出了一个评估直流电网和变换器控制方法的框架。首先,在介绍了VSC的基本模型之后,介绍了基本的变流器和电网控制方案。此外,还介绍和评价了处理电网突发事件的先进方法,如死带或非死带下垂和分布式电网电压控制。最后,基于MATLAB Simulink环境的结果显示了所提出策略的适应性变化,并将其应用于cigr B4直流电网测试系统,以检查所选方法的适用性,性能和缺点。
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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