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首页> 外文期刊>International Journal of Electrical Power & Energy Systems >Optimal location of UPFC controller in transmission network using hybrid chemical reaction optimization algorithm
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Optimal location of UPFC controller in transmission network using hybrid chemical reaction optimization algorithm

机译:基于混合化学反应优化算法的输电网络中UPFC控制器的最优位置

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摘要

This paper presents a new hybrid chemical reaction optimization (HCRO) approach which is based on chemical reaction optimization (CRO) and differential evolution (DE) to find the optimal placement and parameter setting of unified power flow controller (UPFC) to achieve optimal performance of power system network. In the proposed algorithm, four elementary reactions, i.e., on-wall ineffective collision, inter-molecular ineffective collision, decomposition, and synthesis, are developed. Moreover, mutation operation of DE is integrated with inter-molecular ineffective collision and crossover operation is introduced in the inter-molecular collision, synthesis, and decomposition process to accelerate the convergence speed and improve the solution quality of CRO algorithm. Here, three different single objectives namely, minimization of the overall cost, transmission loss, voltage deviation and one multi-objective which simultaneously minimizes the transmission loss and voltage deviation are used. To verify the effectiveness, the proposed HCRO approach is implemented on IEEE 14-bus and IEEE 30-bus power systems. Moreover, to establish the superiority, the simulation results of the proposed HCRO technique are compared to the CRO and other previously reported algorithms published in the literature such as genetic algorithm (GA), particle swarm optimization (PSO), immune GA (IGA), immune PSO (IPSO) and hybrid immune algorithm (HIA). It is found that the results obtained by the proposed HCRO technique are superior to those obtained by other discussed algorithms.
机译:本文提出了一种新的混合化学反应优化(HCRO)方法,该方法基于化学反应优化(CRO)和微分进化(DE)来找到统一潮流控制器(UPFC)的最佳位置和参数设置,以实现最佳的发电性能。电力系统网络。在提出的算法中,开发了四个基本反应,即壁上无效碰撞,分子间无效碰撞,分解和合成。此外,DE的变异操作与分子间无效碰撞相结合,并且在分子间碰撞,合成和分解过程中引入了交叉操作,以加快收敛速度​​并提高CRO算法的求解质量。在此,使用三个不同的单一目标,即总成本,传输损耗,电压偏差的最小化和同时使传输损耗和电压偏差最小化的一个多目标。为了验证有效性,建议的HCRO方法在IEEE 14总线和IEEE 30总线电源系统上实现。此外,为了建立优势,将提议的HCRO技术的仿真结果与CRO和文献中其他先前报道的算法进行了比较,例如遗传算法(GA),粒子群优化(PSO),免疫GA(IGA),免疫PSO(IPSO)和混合免疫算法(HIA)。发现通过提出的HCRO技术获得的结果优于通过其他讨论的算法获得的结果。

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