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Integrated Feasible Direction Method And Genetic Algorithm For Optimal Planning Of Harmonic Filters With Uncertainty Conditions

机译:不确定条件下谐波滤波器最优规划的综合可行方向法和遗传算法

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摘要

This paper presents an integrated approach of feasible direction method and genetic algorithm (FDM + GA) to optimize the planning of large-scale passive harmonic filters (PHF). The objective is to minimize the total demand distortion of harmonic currents, total harmonic distortion of load bus voltages, filters loss and the cost of total installation of LC tuned filters. Reactive power compensation and constraints of individual harmonics have been considered in the design process, and the constraints of harmonics with orders lower than the filter tuned-points have been set stricter to avoid amplifying non-characteristic harmonics as well. In order to determine a set of weights of objective function representing the relative importance of each term, the simplest and most efficient form of triangular membership functions have been employed. The designed FDM + GA heuristic is applied to the harmonic problems in a chemical plant with three 6-pulse rectifiers. Three design schemes are compared to demonstrate the performance of the FDM + GA heuristic. Finally, expectations and standard deviations of objective values are used to present the effects of filter parameter detuning, loading uncertainty, and changing of system impedance.
机译:本文提出了一种可行方向法和遗传算法(FDM + GA)的集成方法,以优化大型无源谐波滤波器(PHF)的规划。目的是使谐波电流的总需求失真,负载母线电压的总谐波失真,滤波器损耗以及LC调谐滤波器的总安装成本最小化。在设计过程中已经考虑了无功补偿和单个谐波的约束,并且将阶次低于滤波器调谐点的谐波的约束设置为更严格,以避免放大非特征谐波。为了确定代表每个项的相对重要性的一组目标函数的权重,已采用了最简单和最有效的三角隶属函数形式。设计的FDM + GA启发式方法适用于具有三个6脉冲整流器的化工厂的谐波问题。比较了三种设计方案,以证明FDM + GA启发式算法的性能。最后,目标值的期望值和标准偏差用于表示滤波器参数失谐,负载不确定性和系统阻抗变化的影响。

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