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The role of global earthing systems to ensure the reliability of electrical networks

机译:全球接地系统在确保电网可靠性方面的作用

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For a safe and reliable operation of distribution networks, the coordination of high and low voltage earthing systems (substations, transmission lines and cable systems, earthing systems of substations, earthing systems of customers) is very important. Because of the age and the technical condition of existing cable distribution networks (reduced insulation capacity), alternative protection concepts (e.g. SHPE short-time healthy phase earthing, SNE short-time neutral earthing) must be used to handle single earth faults to prevent double earth faults. These concepts with short and high fault currents, make the detection of single earth fault easier than in resonant grounded grids, can reduce supply interruptions and their duration, but increase the requirements on earthing systems regarding personal safety. Based on an example the impact on step and touch voltages, when changing from resonant to solid earthed medium voltage systems will be analyzed, considering the influence of global earthing systems. Based on the potential-coefficient simulation method, the earth potential rise and the resulting step and touch voltages are calculated in global earthing systems in case of substation and cable earth faults. Furthermore, the impact of the induced voltage in accompanying signal and protection lines, caused by the high fault currents, will be shown. The results of the study show that in urban areas in case of a medium voltage earth fault inside a MV/LV-substation, the normatively permissible step and touch voltage limits, caused by the fault currents, which reach up to several kA, are usually below the limits. Nevertheless, because of the high fault currents, high induced voltages are occurring, which can be dangerous for personal safety and can damage sensitive electronic equipment. In suburban and rural areas, depending on the fault location (e.g. cable faults) - even inside global earthing systems - unacceptable step and touch voltage may occur in case of single earth faults. So the paper shows that global earthing systems cannot ensure the safety of persons for any fault situation and what are the new challenges for earthing systems if high fault-current protection concepts are applied.
机译:为了配电网络的安全可靠运行,高压和低压接地系统(变电站,传输线和电缆系统,变电站的接地系统,客户的接地系统)的协调非常重要。由于现有电缆分配网络的使用年限和技术条件(绝缘能力降低),必须使用替代保护概念(例如SHPE短时健康相接地,SNE短时中性接地)来处理单个接地故障,以防止发生双重接地故障。这些具有短故障电流和高故障电流的概念,使单个接地故障的检测比谐振接地电网更容易,可以减少电源中断及其持续时间,但会增加对接地系统的人身安全要求。根据一个示例,将考虑到全局接地系统的影响,分析从谐振接地系统变为固体接地的中压系统时,对步进电压和接触电压的影响。基于电势系数模拟方法,在变电站和电缆接地故障的情况下,可在全局接地系统中计算接地电势上升以及由此产生的阶跃和接触电压。此外,还将显示由高故障电流引起的伴随信号线和保护线中感应电压的影响。研究结果表明,在城市地区,如果中压/低压变电站内部发生中压接地故障,通常由故障电流引起的可允许的阶跃和接触电压极限通常高达几kA。低于限制。然而,由于高故障电流,会产生高感应电压,这可能对人身安全造成危险,并可能损坏敏感的电子设备。在郊区和农村地区,根据故障位置(例如电缆故障)而定-即使在全球接地系统内部-如果是单个接地故障,则可能会出现不可接受的阶跃和接触电压。因此,本文表明,全球接地系统无法确保任何故障情况下的人员安全,如果应用高故障电流保护概念,接地系统将面临哪些新挑战。

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