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A new technique for optimal estimation of the circuit-based PEMFCs using developed Sunflower Optimization Algorithm

机译:一种新技术,用于利用发育向日葵优化算法对基于电路的PEMFC的最佳估计技术

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This paper proposes a new methodology for the optimal selection of the parameters for proton exchange membrane fuel cell (PEMFC) models. The proposed method is to optimal parameter selection of the circuit-based model of the PEMFC model to minimize the sum of squared error (SSE) value between the estimated and the actual output voltage of the PEMFC stack. For minimizing the SSE, a newly developed model of the Sunflower Optimization Algorithm (DSFO) is proposed. Performance analysis is performed based on two practical models including NedSstack PS6 PEMFC and Horizon 500-W PEMFCs from the literature and the results have been compared with the empirical data and also some state of art methods including Seagull Optimization Algorithm (SOA), Multi-verse optimizer (MVO), and Shuffled Frog-Leaping Algorithm (SFLA). Final results indicate 2.18 and 0.014 SSE value for NedSstack PS6 PEMFC and Horizon 500-W open cathode PEMFC, respectively which are the minimum values compared with the other compared methods.
机译:本文提出了一种新的方法,用于最佳选择质子交换膜燃料电池(PEMFC)模型的参数。所提出的方法是最佳参数选择PEMFC模型的基于电路的模型,以最小化估计和PEMFC堆栈的实际输出电压之间的平方误差(SSE)值的总和。为了使SSE最小化,提出了一种新开发的向日葵优化算法(DSFO)模型。基于两个实际模型进行性能分析,包括NEDSSTACK PS6 PEMFC和来自文献的地平线500-W PEMFC,结果已经与经验数据相比以及一些现有技术的方法,包括Seagull优化算法(SOA),多节优化器(MVO),和混洗蛙跳算法(SFLA)。最终结果表明NEDSSTACK PS6 PEMFC和Horizo​​ n 500-W开放阴极PEMFC的2.18和0.014 SSE值,与其他比较方法相比,分别是最小值。

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