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Communicatieloze beveiligingsalgoritmes voor vermaasde gelijkstroomnetten gebruik makende van VSC en ondergrondse kabels

机译:使用VSC和地下电缆的网状直流电网的无通信安全算法

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摘要

For the large-scale integration of renewable energy sources into the power system, transmission corridors with power ratings and lengths greatly exceeding those in the existing power system will be needed. To realize these corridors, Voltage Source Converter High Voltage Direct Current (VSC HVDC) offers several advantages over the currently widely used ac technology. The use of VSC HVDC in a large-scale meshed grid can provide the major reinforcements to the power system needed for the integration of massive amounts of renewable energy sources.Selective protection against dc side faults is essential to safely and reliably operate meshed HVDC grids. Since required operating times for HVDC grid protection are ten to hundred times faster than existing ac protection, HVDC grid protection algorithms are fundamentally different from those used in ac systems. Furthermore, the limited number of HVDC grid protection algorithms reported in the recent literature were only tested in specific small-scale test systems. For a generally applicable and reliable HVDC grid protection, a more fundamental approach towards the development of protection algorithms is needed.This work provides the necessary concepts to develop communication-less protection algorithms for meshed HVDC grids. A detailed overview of dc fault phenomena is provided and fault clearing strategies proposed in the literature are discussed and classified. The fault current contribution of the half-bridge modular multilevel converter is characterized and a reduced converter model for dc fault studies, is proposed. Guidelines for the design of fault detection methods, based on fundamental traveling wave theory, are provided. Furthermore, signal processing requirements for protection algorithms, in particular required sampling frequency and digital filtering, are investigated. Finally, fast and selective HVDC grid protection algorithms for primary and backup protection are developed. These algorithms are tailored for selective fault clearing in VSC HVDC cable grids with inductive cable termination.
机译:为了将可再生能源大规模集成到电力系统中,将需要额定功率和长度大大超过现有电力系统的传输通道。为了实现这些走廊,电压源转换器高压直流电(VSC HVDC)与当前广泛使用的交流技术相比具有许多优势。在大型网状电网中使用VSC HVDC可以为集成大量可再生能源所需的电力系统提供主要的加强。针对直流侧故障的选择性保护对于安全可靠地运行网状HVDC电网至关重要。由于HVDC电网保护所需的工作时间比现有的交流保护快十到几百倍,因此HVDC电网保护算法与交流系统中使用的算法根本不同。此外,仅在特定的小型测试系统中测试了最近文献中报道的有限数量的HVDC电网保护算法。对于普遍适用且可靠的HVDC电网保护,需要一种更基本的方法来开发保护算法。这项工作为开发用于网状HVDC电网的无通信保护算法提供了必要的概念。提供了直流故障现象的详细概述,并对文献中提出的故障清除策略进行了讨论和分类。表征了半桥模块化多电平转换器的故障电流贡献,并提出了用于直流故障研究的简化转换器模型。提供了基于基本行波理论的故障检测方法设计指南。此外,还研究了保护算法的信号处理要求,尤其是所需的采样频率和数字滤波。最后,开发了用于主保护和备用保护的快速选择性HVDC电网保护算法。这些算法专为带有感应电缆终端的VSC HVDC电缆网格中的选择性故障清除而量身定制。

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    Leterme Willem;

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  • 年度 2016
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