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首页> 外文期刊>International journal of hydrogen energy >Development and modeling for process control purposes in PEMs
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Development and modeling for process control purposes in PEMs

机译:在PEM中出于过程控制目的进行开发和建模

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摘要

To maintain suitable operating conditions, polymer electrolyte membrane (PEM) fuel cell stacks require additional equipment and control systems. Fuel supply, power and thermal management, purge strategy and individual cell voltage control must be in place and operate reliably for a fuel cell system to achieve similar levels of performance as conventional energy generators. System design, auxiliary equipment selection and selection of control strategies have effects on fuel cell efficiency, durability and reliability. In this study we report on our efforts to develop the piping and instrumentation diagram of a 3 kW PEM fuel cell, including the control instrumentation. A semi-empirical model was put together to understand dynamic system behavior for purpose of evaluating possible operating scenarios, in an effort to have useful insight into the system during the equipment selection stage. The model complexity was reduced by ignoring the spatial variations and assuming isothermal stack operation. The stack, cooling system, humidifier, compressor, inlet and outlet manifold were modeled and integrated to formulate a comprehensive prototype model. This model was subsequently used to generate predictions for the responses of the compressor, humidifier, humidification of the stack, power and heat generation for a multitude of dynamic changes in load. With the predictive capability enabled by the model, equipment and algorithm selections can be made in a more directed fashion, reducing the initial design and development costs by delivering a hardware configuration that is close to an ideal one with minimal iterations. Copyright (C) 2014, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:为了维持合适的操作条件,聚合物电解质膜(PEM)燃料电池堆需要其他设备和控制系统。燃料供应,功率和热管理,吹扫策略和单个电池电压控制必须到位并可靠运行,以使燃料电池系统达到与常规能源发电机相似的性能水平。系统设计,辅助设备的选择以及控制策略的选择会影响燃料电池的效率,耐用性和可靠性。在本研究中,我们报告了我们为开发3 kW PEM燃料电池(包括控制仪表)的管道和仪表图所做的努力。结合半经验模型来了解动态系统行为,以评估可能的操作方案,从而在设备选择阶段对系统进行有益的了解。通过忽略空间变化并假设等温堆垛操作,降低了模型的复杂性。对烟囱,冷却系统,加湿器,压缩机,入口和出口歧管进行建模和集成,以形成一个综合的原型模型。该模型随后用于为压缩机,加湿器,烟囱的加湿,功率和热量的产生(负载的多种动态变化)的响应生成预测。通过该模型启用的预测功能,可以以更直接的方式进行设备和算法的选择,通过提供一种硬件配置以最小的迭代次数来接近理想配置,从而降低了初始设计和开发成本。 Hydrogen Energy Publications,LLC版权所有(C)2014。由Elsevier Ltd.出版。保留所有权利。

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