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首页> 外文期刊>International journal of hydrogen energy >Dynamic modelling of PEM fuel cell of power electric bicycle system
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Dynamic modelling of PEM fuel cell of power electric bicycle system

机译:电动自行车系统PEM燃料电池的动态建模

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Fuel cells eliminate pollution caused by burning fossil fuels; hence, a proton exchange membrane fuel cell (PEMFC) is one of the promising technological advances for the future of the transportation industry. The key existing challenges for fuel cell commercialization are performance, design and vehicle efficiency. Since the analytical model expressing fuel cells' characteristics is not accurate in comparison with the real system's performance a robust and dynamic model for fuel cells is of great importance. This study aims to introduce an optimized model for PEMFC using an electric bicycle that consists of a 250 W fuel cell, battery pack, DC/DC convertor, electric motor and electric control unit (ECU). In the first phase of this multi-fold study, the analytical model of PEMFC's efficiency has been compared with the experimental results obtained from the electric bicycle. The result of this phase showed an overall system efficiency of 35.4% and a maximum fuel cell efficiency of 63%. This confirms that fuel cell performance is least efficient when functioning under maximum output power conditions. In the second phase of this research, the collected data was used for developing linear and nonlinear regression models. The resulting model was compared with an artificial neural network used for the same purpose, and their prediction efficiencies compared. Results show that neural network modelling improves accuracy and provides promising performance for the electric bicycle system. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:燃料电池消除了燃烧化石燃料所造成的污染;因此,质子交换膜燃料电池(PEMFC)是交通运输业未来的有希望的技术进步之一。燃料电池商业化所面临的主要挑战是性能,设计和车辆效率。由于表达燃料电池特性的分析模型与实际系统的性能相比不准确,因此燃料电池的鲁棒和动态模型非常重要。这项研究旨在介绍一种使用电动自行车的PEMFC的优化模型,该电动自行车包括250 W燃料电池,电池组,DC / DC转换器,电动机和电子控制单元(ECU)。在这项多重研究的第一阶段,将PEMFC效率的分析模型与从电动自行车获得的实验结果进行了比较。此阶段的结果表明,整个系统效率为35.4%,最大燃料电池效率为63%。这证实了燃料电池在最大输出功率条件下运行时效率最低。在本研究的第二阶段,收集的数据用于开发线性和非线性回归模型。将得到的模型与用于相同目的的人工神经网络进行比较,并比较其预测效率。结果表明,神经网络建模提高了准确性,并为电动自行车系统提供了有希望的性能。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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