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Behaviour of multi-terminal grid topologies in renewable energy systems under multiple loads

机译:多负载下可再生能源系统中多终端网格拓扑的行为

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Decarbonisation policies adopted worldwide are leading to an increasing deployment of renewable energy sources. In Europe, the growing number of offshore wind farm projects calls for scrutinising merits and opportunities of their interconnection via multi-terminal links rather than conventional point-to-point connections. The semiconductor components used in the converters and the resistance of power cables are expected to introduce new power losses in the transmission system. In this study, star and ring configurations with four DC nodes of multi-terminal grid topologies for renewable energy integration are modelled by means of NEPLAN software. In order to address more interconnection options the authors examine several grid topologies having more than three interconnections. The simulation results of the different network configurations, the power losses level in particular, are compared and analysed. The simulations illustrate an increasing complexity of network operation and power balancing, from a low power up to the rated power capacity injected at the inverters terminals.
机译:全球范围内采用的脱碳政策正导致可再生能源的部署不断增加。在欧洲,越来越多的海上风电场项目要求通过多终端链路而不是传统的点对点连接来仔细研究其互连的优点和机会。预计转换器中使用的半导体组件和电缆的电阻会在传输系统中引入新的功率损耗。在这项研究中,通过NEPLAN软件对星形和环形配置以及四个端子的多终端网格拓扑的DC节点进行建模,以实现可再生能源集成。为了解决更多的互连选项,作者研究了具有三个以上互连的几种网格拓扑。比较和分析了不同网络配置的仿真结果,尤其是功率损耗水平。仿真表明,从低功率到逆变器终端注入的额定功率容量,网络运行和功率平衡的复杂性不断提高。

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