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Comparison of the quench and fault current limiting characteristics of the flux-coupling type SFCL with single and three-phase transformer

机译:单相和三相变压器磁通耦合型SFCL的失超和故障限流特性比较

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The South Korean power grid has a network structure for the flexible operation of the system. The continuously increasing power demand necessitated the increase of power facilities, which decreased the impedance in the power system. As a result, the size of the fault current in the event of a system fault increased. As this increased fault current size is threatening the breaking capacity of the circuit breaker, the main protective device, a solution to this problem is needed. The superconducting fault current limiter (SFCL) has been designed to address this problem. SFCL supports the stable operation of the circuit breaker through its excellent fault-current-limiting operation [1-5]. In this paper, the quench and fault current limiting characteristics of the flux-coupling-type SFCL with one three-phase transformer were compared with those of the same SFCL type but with three single-phase transformers. In the case of the three-phase transformers, both the superconducting elements of the fault and sound phases were quenched, whereas in the case of the single-phase transformer, only that of the fault phase was quenched. For the fault current limiting rate, both cases showed similar rates for the single line-to-ground fault, but for the three-wire earth fault, the fault current limiting rate of the single-phase transformer was over 90% whereas that of the three-phase transformer was about 60%. It appears that when the three-phase transformer was used, the limiting rate decreased because the fluxes by the fault current of each phase were linked in one core. When the power loads of the superconducting elements were compared by fault type, the initial (half-cycle) load was great when the single-phase transformer was applied, whereas for the three-phase transformer, its power load was slightly lower at the initial stage but became greater after the half fault cycle.
机译:韩国电网具有用于系统灵活运行的网络结构。不断增长的电力需求需要增加电力设施,这降低了电力系统中的阻抗。结果,在系统故障的情况下故障电流的大小增加了。由于这种增加的故障电流大小正威胁着作为主保护装置的断路器的分断能力,因此需要一种解决方案。超导故障电流限制器(SFCL)旨在解决此问题。 SFCL通过其出色的故障电流限制操作[1-5]支持断路器的稳定运行。在本文中,比较了具有一台三相变压器的磁通耦合型SFCL与具有三台单相变压器的相同类型的SFCL的失超和故障限流特性。在三相变压器的情况下,故障相和声相的超导元件均被淬火,而在单相变压器的情况下,仅故障相的超导元件被淬火。对于故障电流限制率,两种情况对单线接地故障均显示出相似的比率,但是对于三线接地故障,单相变压器的故障电流限制率超过90%,而对于单相接地故障则为90%。三相变压器约为60%。看来,当使用三相变压器时,由于每一相的故障电流产生的磁通在一个铁心中相连,因此限制率降低了。当按故障类型比较超导元件的功率负载时,应用单相变压器时的初始(半周期)负载较大,而对于三相变压器,其功率负载在初始时稍低阶段,但在半个故障周期后变得更大。

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