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Optimal allocation of D-STATCOM in distribution networks including correlated renewable energy sources

机译:分销网络中D-STATCOM的最佳分配,包括相关可再生能源

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Gradual depletion of fossil fuel resources, poor energy efficiency, and environmental pollution problems have led to the use of renewable energy sources (RESs) such as wind turbines (WTs) and solar photovoltaic (PV) cells in distribution networks all around the world. The uncertain nature of these sources, along with network power demands, necessitates probabilistic evaluation to extract results with high applicability and efficiency. Distribution network flexible AC transmission system (D-FACTS) devices such as distribution static compensator (D-STATCOM) can be efficiently used for making the modern distribution networks with high penetration of RESs more flexible.This paper presents a probabilistic technique for optimal allocation of the D-STATCOM, considering the correlation between uncertain variables. The proposed solution method helps to mitigate expected active power losses, improve expected voltage deviation index (VDI), and decrease D-STATCOM expected installation cost for radial/mesh distribution networks. The k-means based data clustering method (DCM) and Latin hypercube sampling (LHS) method are used for probabilistic evaluation of distribution networks. In addition, the particle swarm optimization (PSO) algorithm is employed as the optimization tool. The proposed algorithm is applied to the IEEE 69 node test network, and the results are compared with the Monte Carlo simulation (MCS) method. Also, the efficacy of the proposed study method has been investigated for a real meshed distribution network.
机译:化石燃料资源的逐渐消耗,能量效率差,环境污染问题导致了在世界各地的配送网络中使用可再生能源(RESS)和太阳能光伏(PV)细胞。这些来源的不确定性质以及网络功率需求,需要概率评估,以提取高适用性和效率的结果。配电网络柔性AC传输系统(D-FARES)诸如分发静态补偿器(D-STATCOM)的设备可以有效地用于制作具有高级别的高渗透更灵活的现代化分销网络。本文提出了一种最佳分配的概率技术考虑到不确定变量之间的相关性的D-Statcom。所提出的解决方案方法有助于减轻预期的有效功率损耗,提高预期电压偏差指数(VDI),并降低径向/网状分配网络的D-Statcom预期安装成本。基于K-Means的数据聚类方法(DCM)和拉丁超立体采样(LHS)方法用于分配网络的概率评估。此外,粒子群优化(PSO)算法用作优化工具。该算法应用于IEEE 69节点测试网络,并将结果与​​Monte Carlo仿真(MCS)方法进行比较。而且,已经研究了所提出的研究方法的功效,以实现真实的网状分布网络。

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