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Application of multiple resistive superconducting fault-current limiters for fast fault detection in highly interconnected distribution systems

机译:多重电阻式超导故障电流限制器在高度互联配电系统中快速故障检测中的应用

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摘要

Superconducting fault-current limiters (SFCLs) offer several benefits for electrical distribution systems, especially with increasing distributed generation and the requirements for better network reliability and efficiency. This paper examines the use of multiple SFCLs in a protection scheme to locate faulted circuits, using an approach which is radically different from typical proposed applications of fault current limitation, and also which does not require communications. The technique, referred to as “current division discrimination” (CDD), is based upon the intrinsic inverse current-time characteristics of resistive SFCLs, which ensures that only the SFCLs closest to a fault operate. CDD is especially suited to meshed networks and particularly when the network topology may change over time. Meshed networks are expensive and complex to protect using conventional methods. Simulation results with multiple SFCLs, using a thermal-electric superconductor model, confirm that CDD operates as expected. Nevertheless, CDD has limitations, which are examined in this paper. The SFCLs must be appropriately rated for the maximum system fault level, although some variation in actual fault level can be tolerated. For correct coordination between SFCLs, each bus must have at least three circuits that can supply fault current, and the SFCLs should have identical current-time characteristics.
机译:超导故障电流限制器(SFCL)为配电系统提供了许多好处,特别是随着分布式发电的增加以及对更好的网络可靠性和效率的要求。本文研究了一种在保护方案中使用多个SFCL来定位故障电路的方法,该方法与典型的故障电流限制典型应用完全不同,并且不需要通信。该技术被称为“电流分割判别”(CDD),其基于电阻式SFCL的固有逆电流-时间特性,可确保只有最接近故障的SFCL才能运行。 CDD特别适用于网状网络,尤其是当网络拓扑可能随时间变化时。网状网络昂贵且使用常规方法进行保护很复杂。使用热电超导体模型对多个SFCL进行的仿真结果证实CDD能够按预期运行。但是,CDD具有局限性,本文对此进行了研究。尽管可以容忍实际故障级别中的某些变化,但必须对SFCL进行最大系统故障级别的适当评估。为了在SFCL之间正确协调,每个总线必须至少具有三个可以提供故障电流的电路,并且SFCL应该具有相同的电流时间特性。

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