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Optimal location and minimum number of superconducting fault current limiters for the protection of power grids

机译:用于保护电网的超导故障限流器的最佳位置和最小数量

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摘要

This paper presents a novel method to determine the optimal strategy for the allocation of multiple resistive superconducting fault current limiters (SFCLs) aiming to improve the overall protection of standard power grids. The presented approach allows for the straightforward determination of the optimal resistance of the SFCL, accounting for short circuit events occurring at different locations, by modelling the electro-thermal properties of the SFCL via a temperature dependent E-J power law. This material law, based on previous experimental evidence, allows for the introduction of flux pinning, flux creep, and flux flow properties of the superconducting material within a minimum level of complexity. Thereby, we have observed a distinctive kink pattern in the current limiting profiles of the SFCLs, from which no further reduction of the first peak of the fault current is achieved when a greater resistance is considered, allowing a univocal determination of the optimum SFCL resistance. This peculiarity is not observed when the model for the quench properties of the SFCL is simplified towards an exponential resistance, although the last can be used as an auxiliary process for addressing the first guess on the resistance value required for a specific strategy, as it demands less computing time. We have also determined that for many of the cases studied, i.e., for the combinations between one or more SFCLs installed at different locations, and those subjected to fault events located at different points in the network, the recovery time of the superconducting properties of at least one of the SFCLs can last for more than 5 min, constraining the feasibility of a large-scale deployment of this technology. However, by assuming that the practical operation of the SFCL is assisted by the automatic operation of a bypass switch when the SC material is fully quenched, we have determined that the optimal strategy for the overall protection of power grids of standard topology requires a maximum of three SFCLs, with recovery times of less than a few seconds. This information is of remarkable value for power system operators, as it can establish a maximum investment threshold which ultimately can facilitate making decisions regarding the deployment of SFCL technologies. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新颖的方法来确定用于分配多个电阻式超导故障电流限制器(SFCL)的最佳策略,旨在改善标准电网的整体保护。提出的方法允许通过基于温度的E-J功率定律对SFCL的电热特性进行建模,从而直接确定SFCL的最佳电阻,从而解决了在不同位置发生的短路事件。根据先前的实验证据,该材料定律允许在最小的复杂度内引入超导材料的磁通钉扎,磁通蠕变和磁通流动特性。因此,我们在SFCL的电流限制曲线中观察到了一种独特的扭折模式,当考虑更大的电阻时,无法进一步降低故障电流的第一个峰值,从而可以明确地确定最佳SFCL电阻。当将SFCL的淬灭特性模型简化为指数电阻时,不会观察到这种特殊性,尽管最后一个可以用作辅助处理,以解决特定策略所需的电阻值的第一个猜测,因为它需要减少计算时间。我们还确定,对于研究的许多情况,即,安装在不同位置的一个或多个SFCL的组合,以及遭受网络不同点故障事件的SFCL的组合,其超导特性的恢复时间为。至少一个SFCL可以持续5分钟以上,从而限制了该技术大规模部署的可行性。但是,通过假设当SC材料完全淬火时,SFCL的实际操作是由旁路开关的自动操作来辅助的,我们确定对标准拓扑结构的电网进行整体保护的最佳策略是最大三个SFCL,恢复时间不到几秒钟。该信息对于电力系统运营商而言具有非凡的价值,因为它可以确定最大的投资门槛,最终可以促进就SFCL技术的部署做出决策。 (C)2016 Elsevier Ltd.保留所有权利。

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