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Optimal design of proportional–integral controllers for stand-alone solid oxide fuel cell power plant using differential evolution algorithm

机译:基于微分进化算法的独立式固体氧化物燃料电池电站比例积分控制器的优化设计

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摘要

This paper proposes the application of differential evolution (DE) algorithm for the optimal tuning of proportional–integral (PI) controller designed to improve the small signal dynamic response of a stand-alone solid oxide fuel cell (SOFC) system. The small signal model of the study system is derived and considered for the controller design as the target here is to track small variations in SOFC load current. Two PI controllers are incorporated in the feedback loops of hydrogen and oxygen partial pressures with an aim to improve the small signal dynamic responses. The controller design problem is formulated as the minimization of an eigenvalue based objective function where the target is to find out the optimal gains of the PI controllers in such a way that the discrepancy of the obtained and desired eigenvalues are minimized. Eigenvalue and time domain simulations are presented for both open-loop and closed loop systems. To test the efficacy of DE over other optimization tools, the results obtained with DE are compared with those obtained by particle swarm optimization (PSO) algorithm and invasive weed optimization (IWO) algorithm. Three different types of load disturbances are considered for the time domain based results to investigate the performances of different optimizers under different sorts of load variations. Moreover, non-parametric statistical analyses, namely, one sample Kolmogorov–Smirnov (KS) test and paired sample t test are used to identify the statistical advantage of one optimizer over the other for the problem under study. The presented results suggest the supremacy of DE over PSO and IWO in finding the optimal solution.
机译:本文提出了将差分演化(DE)算法用于比例积分(PI)控制器的最佳调谐的应用,该控制器旨在改善独立式固体氧化物燃料电池(SOFC)系统的小信号动态响应。得出研究系统的小信号模型,并将其用于控制​​器设计,因为此处的目标是跟踪SOFC负载电流的小变化。氢气和氧气分压的反馈回路中集成了两个PI控制器,旨在改善小信号动态响应。控制器设计问题被表述为基于特征值的目标函数的最小化,其中目标是找出PI控制器的最佳增益,以使获得的特征值和期望特征值的差异最小化。给出了开环和闭环系统的特征值和时域仿真。为了测试DE相对于其他优化工具的有效性,将DE获得的结果与粒子群优化(PSO)算法和入侵杂草优化(IWO)算法获得的结果进行比较。对于基于时域的结果,考虑了三种不同类型的负载扰动,以研究不同优化器在不同类型的负载变化下的性能。此外,非参数统计分析,即一个样本Kolmogorov-Smirnov(KS)检验和配对样本t检验,用于确定研究中的一个优化器相对于另一个优化器的统计优势。提出的结果表明,在寻找最佳解决方案方面,DE优于PSO和IWO。

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