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Designing an Intelligent Controller for Improving PEM Fuel Cell Efficiency

机译:设计用于提高PEM燃料电池效率的智能控制器

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Maintaining the optimum performance of a PEMFC over a wide range of operating conditions is one of the greatest challenges in developing efficient and high performing fuel cell systems. This paper presents the effectiveness of neural network based intelligent controllers in regulating the partial pressure of Hydrogen, Oxygen and water under dynamic load conditions. Optimum values for these parameters are obtained using machine learning techniques on the simulation data obtained from the mathematical model of a PEMFC under various operating conditions of pressure, flow rate and humidity at the anode and cathode side of the PEMFC. Windrow Hoff algorithm and Neuro-Fuzzy controllers are used to attain the desired electrical performance of 25 V at 20 A from a 500 W PEMFC system. Genetic algorithm is basically used for validating the performance of the system. Thus an intelligent controller for optimum performance can be designed. The experimental results validates the process.
机译:在开发高效,高性能的燃料电池系统中,在各种运行条件下维持PEMFC的最佳性能是最大的挑战之一。本文介绍了基于神经网络的智能控制器在动态负载条件下调节氢气,氧气和水的分压的有效性。这些参数的最佳值是使用机器学习技术从PEMFC的数学模型获得的模拟数据中获得的,该模拟数据是在PEMFC阳极和阴极侧的压力,流速和湿度的各种操作条件下得出的。使用Windrow Hoff算法和Neuro-Fuzzy控制器从500 W PEMFC系统中获得20 A时25 V的所需电气性能。遗传算法基本上用于验证系统性能。因此,可以设计出用于实现最佳性能的智能控制器。实验结果验证了该过程。

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