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Optimizing the Roles of Unit and Non-unit Protection Methods Within DC Microgrids

机译:优化直流微电网中机组和非机组保护方法的作用

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摘要

The characteristic behavior of physically compact, multiterminal dc networks under electrical fault conditions can produce demanding protection requirements. This represents a significant barrier to more widespread adoption of dc power distribution for microgrid applications. Protection schemes have been proposed within literature for such networks based around the use of non-unit protection methods. This paper shows however that there are severe limitations to the effectiveness of such schemes when employed for more complex microgrid network architectures. Even current differential schemes, which offer a more effective, though costly, protection solution, must be carefully designed to meet the design requirements resulting from the unique fault characteristics of dc microgrids. This paper presents a detailed analysis of dc microgrid behavior under fault conditions, illustrating the challenging protection requirements and demonstrating the shortcomings of non-unit approaches for these applications. Whilst the performance requirements for the effective operation of differential schemes in dc microgrids are shown to be stringent, the authors show how these may be met using COTS technologies. The culmination of this work is the proposal of a flexible protection scheme design framework for dc microgrid applications which enables the required levels of fault discrimination to be achieved whilst minimizing the associated installation costs.
机译:物理紧凑的多端子直流网络在电气故障条件下的典型特性会产生苛刻的保护要求。这代表了在微电网应用中更广泛采用直流配电的重大障碍。在文献中已经基于非单元保护方法的使用为这种网络提出了保护方案。但是,本文表明,当将这些方案用于更复杂的微电网网络体系结构时,其有效性受到严重限制。即使电流差动方案提供了更有效但成本较高的保护解决方案,也必须仔细设计以满足直流微电网独特故障特性所导致的设计要求。本文对故障条件下的直流微电网行为进行了详细分析,阐明了具有挑战性的保护要求,并说明了非单元方法在这些应用中的缺点。尽管对直流微电网中差分方案的有效运行的性能要求非常严格,但作者们展示了如何使用COTS技术来满足这些要求。这项工作的高潮是针对直流微电网应用提出了一种灵活的保护方案设计框架的建议,该框架能够实现所需的故障判别水平,同时将相关的安装成本降至最低。

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