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Study of the Dynamics of a Four-module Fuel Cell Stack to be Integrated in a Hybrid Electric Power Plant of a Utility Vehicle

机译:四模燃料电池堆的动力学研究,以集成在多功能车辆的混合动力电厂

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A four-module PEM fuel cell stack was electrochemically characterized prior to its incorporation to a hybrid power plant of an electrical utility vehicle. The 3 kW fuel cell stack, comprised of 4 units of 100 membrane electrode assemblies (MEAs) in an open-cathode and air-cooled configuration, was characterized in order to identify its optimum operational parameters. The open cathode configuration is a common approach to reduce parasitic loads and increase energy efficiency in fuel cells; however, the forced convection derives frequently to internal dehydration. Voltage reversal caused by lack of reactants, many times due to dehydration at the reaction sites (membrane-electrode interface) is a common failure source for this kind of configuration especially at high current demands. Therefore, water management becomes crucial for preventing fuel cell's performance decrease and permanent failure. Subsequently, a smart water management strategy had to be established prior to the power plant integration into the vehicle for the fuel cell's performance to be guaranteed during the vehicle duty cycle. For this purpose, a testing protocol was established for testing each module based on linear voltammetries, electrochemical impedance spectroscopy and thermal images in order to observe cell's voltage and resistance as indicators of internal hydration, reactants concentration, and heat distribution during the stack operation. Polarization curves were obtained for each module and from them, the point (voltage, current, temperature and air vent) for steady operation was identified as the recommended condition for nominal performance during the fuel cell operation in the hybrid power plant of the electrical vehicle.
机译:在将四个模块PEM燃料电池堆内掺入电气化型车辆的混合动力厂之前进行了电化学表征。在开口阴极和空气冷却构型中由4个单位的100个膜电极组件(MEA)组成的3 kW燃料电池堆的特征在于,以确定其最佳操作参数。开放的阴极配置是减少寄生载荷的常见方法,并提高燃料电池的能量效率;然而,强制对流频繁地源于内部脱水。由于反应物缺乏导致的电压反转,由于反应位点(膜 - 电极接口)的脱水,多次是这种配置的常见故障源,尤其是在高电流要求下。因此,水管理对防止燃料电池的性能降低和永久性失效至关重要。随后,必须在电厂集成到车辆中之前建立智能水管理策略,以便在车辆占空比期间保证燃料电池的性能。为此目的,建立了一种基于线性伏安法,电化学阻抗光谱和热图像测试每个模块的测试协议,以便观察细胞的电压和电阻作为内部水合,反应物浓度和堆叠操作期间的热分布。针对每个模块获得偏振曲线,并从它们中获得,稳定操作的点(电压,电流,温度和空气通风口)被识别为在电动车的混合动力装置中的燃料电池操作期间标称性能的推荐条件。

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