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Targeting optimized and robust operating conditions in a hydrogen-fed Proton Exchange Membrane Fuel Cell

机译:以氢为燃料的质子交换膜燃料电池中的优化和鲁棒运行条件为目标

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Response Surface Methodology (RSM) when combined with the Propagation of Error (PoE) approach offers an efficient robust design able to find the best operating conditions to simultaneously maximize power density and reduce normal operation variability in a hydrogen-fed Proton Exchange Membrane Fuel Cell (PEMFC). To proceed with the statistical analysis, a central composite design with 20 experimental runs (6 central points were used to assess the experimental error) was adopted to inspect which factors have significant effects and how they interact each other. This allowed generating a polynomial function to determine the maximum power density at 1415 mW/cm(2). Taking advantage of the desirability concept and using the PoE measure as a response, a multiple optimization under different restrictions was carried out defining a new set of operating conditions able to target the maximum possible power density at the most robust conditions (1074 mW.cm(-2) at 55 degrees C, 50% RHC and 25 Psi). Then, actions were carried out to narrow even more the tolerance intervals towards more ambitious standards. Reducing the standard deviation from input factors through the use of adequate controlling measures led to a decrease of almost 50% in the tolerance intervals. This is an useful methodology to help the PEMFC normal operation more repeatable and predictable under its lifetime by combing both optimization and robustness goals.
机译:响应面方法学(RSM)与误差传播(PoE)方法结合使用时,可提供高效,鲁棒的设计,能够找到最佳运行条件,以同时最大化氢馈送质子交换膜燃料电池的功率密度并降低正常运行变化性( PEMFC)。为了进行统计分析,采用了具有20个实验运行的中心复合设计(使用6个中心点来评估实验误差)来检查哪些因素具有显着影响以及它们如何相互作用。这样就可以生成多项式函数,以确定1415 mW / cm(2)时的最大功率密度。利用可取性概念并使用PoE措施作为响应,在不同限制条件下进行了多次优化,从而定义了一组新的工作条件,能够在最稳健的条件下(1074 mW.cm( -2)在55摄氏度,50%RHC和25 Psi下进行。然后,采取措施将更大的公差范围缩小到更雄心勃勃的标准。通过使用适当的控制措施来减少输入因子的标准差,导致公差间隔降低了近50%。这是一种有用的方法,可以通过组合优化和鲁棒性目标来帮助PEMFC正常运行在其寿命期内更加可重复和可预测。

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