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Capacitor bank step state optimization under load alteration in smart distribution networks

机译:智能配送网络负载变化下的电容器银行步骤状态优化

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Distribution network's high resistance and current results in high distribution losses, contributing to large voltage drops, low voltage stability, increased power losses and decreased reliability to sustain disturbance. As the distribution systems generally have composed of industrial, commercial, residential and lighting loads and the peak load on the substation transformers and feeders occur at different times of the day, the systems may have heavy load or overload at some times during the day and may have light load in other times. This research focuses on the reactive power compensation on medium voltage radial distribution network using placement and step optimization of multi-step capacitor bank to achieve power loss reduction, system capacity release and acceptable voltage profile. It is essential to be mentioned that the paper does not consider renewable energy generation (REG) units in the network. In smart network it can be achieved real time under variable load pattern. It is clear that reactive power compensation considering load variation needs a time consuming computation and capacitor bank depreciation due to hourly step switching. Therefore, in this work, annual loads are categorized in three levels (heavy, normal, and light loads) that each level of loads, are categorized in three smaller coefficients during a year: 0.15, 0.3 and 0.45 for light loads, 0.6, 0.75 and 0.9 for medium loads and 1.05, 1.2 and 1.35 for heavy loads. This paper achieves multi-step capacitor bank placement and their state optimization during load alteration to reduce power losses at each load level considering voltage and current constraints using Cuckoo Search Algorithm (CSA).
机译:配电网的高电阻和电流导致高分配损耗,有助于大电压下降,低电压稳定性,增加功率损耗并降低维持干扰的可靠性。由于分配系统通常由工业,商业,住宅和照明负载组成,并且变电站变压器和饲养者的峰值负荷发生在一天中的不同时间,在白天的某些时候,系统可能具有重载或过载在其他时候有轻负荷。本研究专注于使用多步电容器组的放置和步骤优化来实现电力损耗,系统容量释放和可接受的电压曲线的无功功率补偿。必须提到必须提及网络中的可再生能源(REG)单位。在智能网络中,可以在可变负载模式下实现实时。显然,考虑负载变化的无功补偿需要由于每小时步骤切换而需要耗时的计算和电容器组折旧。因此,在这项工作中,年载荷分类为三个级别(重,正常和光负荷),每个载荷量在一年内分类为三个较小的系数:光负荷为0.15,0.3和0.45,0.6,0.75对于重载的中等负荷和1.05,1.2和1.35的0.9。本文在负载变更期间实现了多步电容器组放置及其状态优化,以减少每个负载水平的功率损耗考虑使用Cuckoo搜索算法(CSA)的电压和电流约束。

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