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Operation of hybrid multi-terminal DC system under normal and DC fault operating conditions

机译:混合多端子直流系统在正常和直流故障运行条件下的运行

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Recently, multi-terminal DC (MTDC) system has received more attention in the power transmission areas. Development of modular structured power converter topologies has now enabled the power converter technology to attain high voltage high power ratings. Compared to current source converter technology, voltage source converters have several benefits including higher power quality, independent control of active and reactive power etc. This paper focuses on a unique MTDC system consisting of terminals with different converter topologies especially considering the fact that each of the terminals may be manufactured by different vendors. In this particular configuration, the MTDC system consists of four terminals namely two advanced modular multi-level converter with high frequency isolation, one standard modular multi-level converter (MMC) with half bridge sub modules and the fourth terminal is modular DC-DC converter which integrates PV along with a Battery energy storage system with the DC grid directly. This paper presents a system level study of hybrid MTDC System. Also the DC fault contingency case has been explored thoroughly. An algorithm has been proposed to prevent the system damage. All the cases have been demonstrated with the PSCAD simulation results. To show the system practically works in real time, the system is also evaluated in a unique real time platform, consisting of interconnected RTDS and OPAL RT systems.
机译:最近,多端子DC(MTDC)系统在输电领域受到了越来越多的关注。模块化结构化功率转换器拓扑的发展现已使功率转换器技术能够达到高压大功率额定值。与电流源转换器技术相比,电压源转换器具有许多优势,包括更高的电源质量,对有功和无功功率的独立控制等。本文着重于一个独特的MTDC系统,该系统由具有不同转换器拓扑结构的端子组成,特别是考虑到以下事实:终端可能由不同的供应商制造。在此特定配置中,MTDC系统由四个端子组成,即两个具有高频隔离的高级模块化多电平转换器,一个具有半桥子模块的标准模块化多电平转换器(MMC),而第四个端子是模块化DC-DC转换器它将光伏与电池储能系统直接集成到直流电网中。本文提出了混合MTDC系统的系统级研究。直流故障应急情况也得到了深入研究。已经提出了防止系统损坏的算法。 PSCAD仿真结果证明了所有情况。为了显示该系统实际上可以实时工作,还对该系统进行了独特的实时平台评估,该平台由互连的RTDS和OPAL RT系统组成。

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