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Prediction performance of PEM fuel cells by gene expression programming

机译:通过基因表达程序预测PEM燃料电池的性能

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In the present study, gene expression programming has been utilized to evaluate the output voltage of different PEM fuel cells as the performance symbol of these structures. A total number of 843 data were collected from the literature, randomly divided into 682 and 161 sets, and then trained and tested, respectively by different models. The used data as input parameters were consisted of current density, fuel cell temperature, anode humid-ification temperature, cathode humidification temperature, operating pressures, fuel cell type, O_2 flow rate, air flow rate and active surface area of the PEM fuel cells. According to these input parameters, in the gene expression programming models, the voltage of each PEM fuel cell in different conditions was predicted. The training and testing results in the gene expression programming model have shown an acceptable potential for predicting voltage values of the PEM fuel cells in the considered range.
机译:在本研究中,基因表达程序已被用来评估不同PEM燃料电池的输出电压,作为这些结构的性能标志。从文献中收集了总共843个数据,随机分为682组和161组,然后分别通过不同的模型进行了训练和测试。用作输入参数的数据包括电流密度,燃料电池温度,阳极加湿温度,阴极加湿温度,工作压力,燃料电池类型,O_2流量,空气流量和PEM燃料电池的有效表面积。根据这些输入参数,在基因表达编程模型中,预测了在不同条件下每个PEM燃料电池的电压。基因表达编程模型中的训练和测试结果显示了可以预测的PEM燃料电池电压值在可接受范围内的可接受的潜力。

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