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Optimal sizing and control of hybrid energy storage system for wind power using hybrid Parallel PSO-GA algorithm

机译:混合并行PSO-GA算法优化风电混合储能系统的尺寸和控制

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摘要

This paper proposes a frequency-based method for sizing the hybrid energy storage system in order to smoothen wind power fluctuations. The main goal of the proposed method is to find the power and energy capacities of the hybrid energy storage system that minimizes the total cost per day of all the systems. The energy management strategy used in this paper is designed as a two-level energy distribution scheme: the first level is responsible for setting the output power of hybrid energy storage system, the second level manages the power flow between the battery and supercapacitor. The hybrid parallel particle swarm optimization-genetic algorithm (PSO-GA) optimization algorithm is proposed to solve the control parameters of energy management strategy. In addition, the proposed method uses the piecewise fitting function to describe the lifetime of battery. Obtained results show that the hybrid energy storage system with the proposed energy management strategy is able to offer the best performances for the wind power system in terms of cost and lifetime.
机译:本文提出了一种基于频率的混合储能系统选型方法,以消除风电波动。所提出的方法的主要目的是找到使所有系统每天的总成本最小化的混合储能系统的功率和能量容量。本文使用的能量管理策略设计为两级能量分配方案:第一级负责设置混合储能系统的输出功率,第二级负责管理电池和超级电容器之间的功率流。针对能量管理策略的控制参数,提出了一种混合并行粒子群优化遗传算法(PSO-GA)优化算法。另外,所提出的方法使用分段拟合函数来描述电池的寿命。获得的结果表明,采用所提出的能量管理策略的混合储能系统能够在成本和使用寿命方面为风力发电系统提供最佳性能。

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