Investigation of a Liquid Metal Fault Current Limiter Based on Current Injection Method

Beibei Wang, Hailong He, Yi Wu, C. Niu, M. Rong, Longlong Wang
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Abstract

A new structure of liquid metal fault current limiter (LMFCL), which can shorten pre-arcing time under short circuit faults significantly, is introduced in this paper. The limiter utilizes a current injection method to strengthen the self-pinch effect in liquid metal, thus responding faster to fault currents in power systems. As we know in the previous literature, a narrow channel in the current path through liquid metal leads to an increase in current density, strengthening the self-pinch effect consequently. Obviously, a channel with smaller cross-sectional area will obtain a higher current density and ignite an arc faster, but the rated current-carrying capacity is also decreased. Compared to existing liquid metal fault current limiters, the proposed one has a shorter pre-arcing time and allows a considerable rated current at the same time. First, the model and operation principles of the new structure are presented. Next, simulations of the current and force distributions in the limiter are carried out. It will help to explain how the self-pinch effect is strengthened, so as to make it easier to ignite an arc. Then, the pre-arcing time behavior and current limiting performance of the proposed structure are tested to validate the idea. Finally, the experimental results are concluded, and future research directions are discussed.
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基于电流注入法的液态金属故障限流器研究
介绍了一种新型的液态金属故障限流器(LMFCL)结构,该结构能显著缩短短路故障下的预弧时间。该限流器采用电流注入方法来加强液态金属中的自夹紧效应,从而更快地响应电力系统中的故障电流。正如我们在之前的文献中所知,通过液态金属的电流路径中的狭窄通道导致电流密度增加,从而加强了自掐效应。显然,沟道截面积越小,电流密度越大,引弧速度越快,但额定载流能力也随之降低。与现有的液态金属故障限流器相比,所提出的限流器具有更短的预起弧时间,同时允许相当大的额定电流。首先,介绍了新结构的模型和工作原理。其次,对限流器内的电流和力分布进行了仿真。这将有助于解释如何加强自夹效应,从而使其更容易点燃电弧。然后,测试了该结构的预弧时间行为和限流性能,以验证该思想。最后对实验结果进行了总结,并对今后的研究方向进行了讨论。
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