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Development of an Integrated Power Distribution System Laboratory Platform Using Modular Miniature Physical Elements: A Case Study of Fault Location

机译:基于模块化微型物理元件的集成配电系统实验室平台的开发:故障定位的案例研究

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The main shortcomings of the software-based power engineering education are a lack of physical understanding of phenomena and hands-on experience. Existing scaled-down analogous educational power system platforms cannot be widely used for experiments in universities due to the high cost, complicated operation, and huge size. An integrated power distribution system laboratory platform (PDSLP) using modular miniature physical elements is proposed in this paper. The printed circuit board (PCB) and microelectronic technology are proposed to construct each physical element. Furthermore, the constructed physical elements are used to set up an integrated PDSLP based on modular assembly technology. The size of the proposed cost-efficient PDSLP is significantly reduced, and the reliability of the proposed PDSLP can be improved greatly because the signal transmission path is shortened and a number of welding points are reduced. A PDSLP for fault location in neutral non-effectively grounded distribution systems (NGDSs) is selected as a typical experimental scenario and one scaled-down distribution network with three feeders is subsequently implemented and discussed. The measured zero-sequence currents by our proposed PDSLP when a single-phase earth fault occurred can reveal the true features of the fault-generated signals, including steady-state and transient characteristics of zero-sequence currents. They can be readily observed and used for students to design corresponding fault location algorithms. Modular renewable energy sources and other elements can be designed, implemented and integrated into the proposed platform for the laboratory education of the active distribution networks in the future.
机译:基于软件的动力工程教育的主要缺点是缺乏对现象的物理理解和动手经验。现有的按比例缩小的类比教育动力系统平台由于成本高,操作复杂和尺寸大而不能广泛地用于大学中的实验。本文提出了一种使用模块化微型物理元件的集成配电系统实验室平台(PDSLP)。提出了印刷电路板(PCB)和微电子技术来构造每个物理元素。此外,所构造的物理元素用于基于模块化组装技术建立集成的PDSLP。所提出的具有成本效益的PDSLP的尺寸被显着减小,并且所提出的PDSLP的可靠性由于信号传输路径的缩短和焊接点的数量的减少而得以大大提高。选择用于中性点非有效接地配电系统(NGDS)中故障定位的PDSLP作为典型的实验方案,随后将实现并讨论一个具有三个馈线的按比例缩小的配电网络。我们提出的PDSLP在发生单相接地故障时测量的零序电流可以揭示故障产生信号的真实特征,包括零序电流的稳态和瞬态特性。他们可以很容易地观察到,并用于学生设计相应的故障定位算法。模块化可再生能源和其他元素可以被设计,实施和集成到提议的平台中,以便将来对有源配电网络进行实验室教育。

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