针对不同配置并考虑预测电动汽车充电站影响的自动径向配电馈线的可靠性分析

V. S. Rekha, E. Vidyasagar
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引用次数: 0

摘要

未来,电动汽车的扩展越来越普遍,这就需要电动汽车充电站(EVCS),与此同时,配电自动化和智能电网技术也将作为配电系统改革的一部分得到实施。本文回顾了 EVCS 增加的影响,EVCS 增加会导致电流幅度增大,并缓和馈线区段的平均故障率。配电自动化和智能电网的实施缩短了平均恢复时间,从而提高了配电系统的可靠性。利用霍尔特模型预测了 2025 年和 2030 年电动汽车(EV)的数量,并计算了相应的馈线段平均故障率。采用配电自动化和智能电网技术的平均切换时间分别为 5 秒和 20 毫秒。假定电动汽车充电点以相同容量分布在所有负荷母线上,计算了不同配置的径向馈线的电压、功率损耗和可靠性指数。结果与所有配置的馈线在没有电动汽车充电站负载、自动化和智能电网技术的情况下的可靠性指数进行了比较。这项工作在标准的 IEEE 33 测试总线系统上进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reliability analysis of an automated radial distribution feeder for different configurations and considering the effect of forecasted electrical vehicle charging stations
In the future, the expansion of electrical vehicles is becoming more prevalent, which requires electric vehicle charging stations (EVCS), and at the same time, distribution automation and smart grid technology will be implemented as part of the reforms in the distribution system. This paper reviews the effect of the increased EVCS, which causes an increase in the magnitude of current and moderates the average failure rate of feeder sections. The implementation of distribution automation and a smart grid reduces the average restoration time, thereby increasing the reliability of the distribution system. The number of electrical vehicles (EVs) for the years 2025 and 2030 is forecasted using Holt's model, and the corresponding average failure rate of feeder sections is calculated. The average switching time for adopting distribution automation and smart grid technology is taken as 5 seconds and 20 milliseconds, respectively. The voltages, power losses, and reliability indices are calculated assuming the EV charging points are located with equal capacity at all load buses for different configurations of radial feeders. The results are compared with the reliability indices of the feeder of all the configurations in the absence of EV charging station loads, automation, and smart grid technology. This work is validated on a standard IEEE 33 test bus system.
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