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Impact of Optimum Allocation of Renewable Distributed Generations on Distribution Networks Based on Different Optimization Algorithms

机译:基于不同优化算法的可再生分布商代最佳分配对分布网络的影响

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摘要

Integration of Renewable Distributed Generations (RDGs) such as photovoltaic (PV) systems and wind turbines (WTs) in distribution networks can be considered a brilliant and efficient solution to the growing demand for energy. This article introduces new robust and effective techniques like hybrid Particle Swarm Optimization in addition to a Gravitational Search Algorithm (PSOGSA) and Moth-Flame Optimization (MFO) that are proposed to deduce the optimum location with convenient capacity of RDGs units for minimizing system power losses and operating cost while improving voltage profile and voltage stability. This paper describes two stages. First, the Loss Sensitivity Factors (LSFs) are employed to select the most candidate buses for RDGs location. In the second stage, the PSOGSA and MFO are implemented to deduce the optimal location and capacity of RDGs from the elected buses. The proposed schemes have been applied on 33-bus and 69-bus IEEE standard radial distribution systems. To insure the suggested approaches validity, the numerical results have been compared with other techniques like Backtracking Search Optimization Algorithm (BSOA), Genetic Algorithm (GA), Particle Swarm Algorithm (PSO), Novel combined Genetic Algorithm and Particle Swarm Optimization (GA/PSO), Simulation Annealing Algorithm (SA), and Bacterial Foraging Optimization Algorithm (BFOA). The evaluated results have been confirmed the superiority with high performance of the proposed MFO technique to find the optimal solutions of RDGs units’ allocation. In this regard, the MFO is chosen to solve the problems of Egyptian Middle East distribution network as a practical case study with the optimal integration of RDGs.
机译:可再生分布式代(RDGS),诸如在分配网络的光伏(PV)系统和风力涡轮机(WTS)的积分可以被认为是灿烂和有效的解决方案,以对能源的需求不断增长。在这篇文章中除了提出来推断与RDGS单位方便容量的最佳位置用于最小化系统的功率损耗的引力搜索算法(PSOGSA)和蛾火焰优化(MFO)介绍新健壮和有效的技术,如杂交粒子群优化和操作成本,同时提高电压分布和电压稳定。本文介绍了两个阶段。首先,损失敏感因素的专上采用选择最候选人巴士RDGS位置。在第二阶段中,PSOGSA和MFO被实现来推断从当选公共汽车的最佳位置和RDGS的容量。所提出的方案已被施加在33总线和69总线的IEEE标准径向分布系统。为了确保所建议的方法的有效性,计算结果已经与像回溯搜索优化算法(BSOA),遗传算法(GA),粒子群算法(PSO)的其他技术相比,新型组合遗传算法和粒子群优化(GA / PSO ),模拟退火算法(SA)和细菌觅食优化算法(BFOA)。评价结果被证实与建议MFO技术的高性能优势,找到RDGS单位的分配的最优解。在这方面,MFO选择来解决埃及中东分销网络的问题与RDGS的最佳集成度的实用案例研究。

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