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THE OPTIMAL DESIGN FOR PEMFC MODELING BASED ON BPNN AND TAGUCHI METHOD

机译:基于BPNN和Taguchi方法的PEMFC建模优化设计。

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摘要

This article has presented a new approach to estimate the output voltage of proton exchange membrane fuel cell (PEMFC) accurately by combining the use of a back-propagation neural network (BPNN) model and the Taguchi method. Using the PEMFC experimental data measured from performance test equipment of PEMFC, the BPNN model could be trained and constructed for obtaining the steady state output voltage of PEMFC. Furthermore, in order to determine the important parameters in BPNN, the Taguchi method is used for parameter optimization, with the goal of reducing the estimation error. The test equipment of PEMFC is accurate enough for acquiring the output voltage of PEMFC, and is quite useful for teaching purpose. However, taking the high cost, complicated operation procedure, and environment safety into consideration, it is necessary to develop a simulation model of PEMFC to benefit teaching and R&D. Therefore, this article will present an approach for constructing a BPNN model with precise accuracy for the output voltage of PEMFC. For achieving the BPNN model with high precision, a troublesome work has to be taken care of, that is, to determine all the parameters required in BPNN. We will introduce Taguchi method to solve this problem as well. Finally, to show the superiority of the proposed model, this approach has compared the estimation values of output voltage for PEMFC from BPNN model without using Taguchi method. One can easily find that the error of the proposed method is much smaller than that of the BPNN model without Taguchi method; that is, the proposed approach has better performance on estimation for PEMFC output voltages.
机译:本文提出了一种新方法,该方法可以结合使用反向传播神经网络(BPNN)模型和Taguchi方法来准确估算质子交换膜燃料电池(PEMFC)的输出电压。利用从PEMFC性能测试设备测得的PEMFC实验数据,可以训练和构建BPNN模型以获得PEMFC的稳态输出电压。此外,为了确定BPNN中的重要参数,Taguchi方法用于参数优化,目的是减少估计误差。 PEMFC的测试设备足够准确以获取PEMFC的输出电压,对于教学目的非常有用。但是,考虑到成本高,操作程序复杂和环境安全的问题,有必要开发一种PEMFC的仿真模型,以利于教学和研发。因此,本文将为PEMFC的输出电压提供一种精确精确的BPNN模型构建方法。为了以高精度实现BPNN模型,必须进行繁琐的工作,即确定BPNN中所需的所有参数。我们还将介绍田口方法来解决此问题。最后,为了展示所提出模型的优越性,该方法比较了不使用Taguchi方法的BPNN模型对PEMFC输出电压的估计值。可以很容易地发现,该方法的误差要比不使用Taguchi方法的BPNN模型的误差小得多。也就是说,所提出的方法在估计PEMFC输出电压方面具有更好的性能。

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