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Grounding architectures for enabling ground fault ride-through capability in DC microgrids

机译:接地架构,可在直流微电网中实现接地故障穿越功能

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Distributed generation in the power grid will result in considerable efficiency improvement and increase in reliability and stability of the grid. And DC microgrids have clear benefits such as higher reliability, higher efficiency, better compatibility with DC loads, expandability and etc., over their AC equivalent systems. Although DC microgrids have clear advantages over the AC microgrids, but there is not sufficient information available on their grounding. Realizing the grounding of DC systems would accelerate employing of these systems in the power grid. Grounding is a complex topic involving many design considerations and trade-offs and it is needed to ensure the safety of personnel and equipment as well as detection of ground fault in the system. Grounding of DC power system should be designed to 1) minimize the leakage current during normal operation, 2) maximize the safety of personnel and equipment under fault conditions. This work examines the different grounding methods and system architectures and discusses the design trade-offs in terms of safety, reliability, detection, mitigation, noise, and cost. We examine impedance grounding, isolation, and bi-polar architectures and discuss their benefits with respect to these criteria.
机译:电网中的分布式发电将大大提高效率,并提高电网的可靠性和稳定性。直流微电网比其交流等效系统具有明显的优势,例如更高的可靠性,更高的效率,与直流负载的更好兼容性,可扩展性等。尽管直流微电网比交流微电网具有明显的优势,但是没有足够的接地信息。实现直流系统的接地将加速这些系统在电网中的应用。接地是一个复杂的主题,涉及许多设计注意事项和权衡取舍,它是确保人员和设备安全以及检测系统中接地故障所必需的。直流电源系统的接地应设计为:1)在正常运行期间最小化泄漏电流,2)在故障情况下最大化人员和设备的安全性。这项工作研究了不同的接地方法和系统架构,并讨论了安全性,可靠性,检测,缓解,噪声和成本方面的设计折衷。我们研究了阻抗接地,隔离和双极性架构,并就这些标准讨论了它们的好处。

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