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Experimental investigation of PEM fuel cells for a m-CHP system with membrane reformer

机译:带有膜重整器的m-CHP系统的PEM燃料电池的实验研究

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An innovative small-scale cogeneration system based on membrane reformer and PEM fuel cells is under development within the FIuidCELL project. An experimental campaign has been carried out to characterize the PEM fuel cell and to define the operative conditions when integrated within the system. The hydrogen feeding the PEM is produced by a membrane reactor which in principle can separate pure hydrogen; however, in general, hydrogen purity is around 99.9%-99.99%. The focus of this work is the assessment of the PEM performance under different hydrogen purities featuring actual membrane selectivity and gases build-up by anode off-gas recirculation. Their effects on the cells voltage and local current distribution are measured at different conditions (pressure, humidity, stoichiometry, with and without air bleeding, in flow-through and dead-end operation). In flow-through mode, the cell voltage is relatively insensitive to the presence of inert gases (e.g. -20 mV with inerts/H-2 from 0 to 20.10(-2) at 0.3 A/cm(2)), and resistant also to CO (e.g. -35 mV with inerts/H-2 = 20.10(-2) and CO/H-2 from 0 to 20.10(-6) at 0.3 A/cm(2)), thanks to the Ru presence in the anode catalyst. Looking at the current density distribution on the cell surface, the most critical areas are the cathode inlet, likely due to insufficient air humidification, and the anode outlet, because of low hydrogen concentration and CO poisoning of the catalyst. Dead-end operation is also investigated using humid or impure hydrogen. In this case relatively small amount of impurities in the hydrogen feed rapidly reduces the cell voltage, requiring frequent purges (e.g. every 30 s with inerts/H-2 = 0.5.10(-2) at 0.3 A/ cm(2)). These experiments set the basis for the management of the PEMFC stack integrated into the m-CHP system based on the FluidCELL concept. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:FIuidCELL项目正在开发基于膜重整器和PEM燃料电池的创新型小型热电联产系统。已经进行了一项实验性活动,以表征PEM燃料电池并定义集成在系统中的运行条件。送入PEM的氢气是由膜反应器产生的,该膜反应器原则上可以分离纯氢;但是,氢气的纯度通常为99.9%-99.99%左右。这项工作的重点是评估不同氢气纯度下的PEM性能,这些氢气具有实际的膜选择性和阳极废气再循环产生的气体。在不同的条件下(流通,无端运行中,在有无空气渗漏的情况下,测量其对电池电压和局部电流分布的影响)(压力,湿度,化学计量,有无空气泄漏)。在流通模式下,电池电压对惰性气体的存在相对不敏感(例如,在0.3 A / cm(2)时具有-20 mV的惰性气体/ H-2从0到20.10(-2)),并且还具有耐性到CO(例如-35 mV inerts / H-2 = 20.10(-2)和CO / H-2在0.3 A / cm(2)时从0到20.10(-6)),这要归功于Ru中存在阳极催化剂。从电池表面的电流密度分布来看,最关键的区域是阴极入口(可能由于空气加湿不足)和阳极出口(由于氢浓度低和催化剂的CO中毒)。还使用潮湿或不纯净的氢气研究了终端操作。在这种情况下,氢气进料中相对少量的杂质会迅速降低电池电压,需要频繁吹扫(例如,每30秒钟以0.3 A / cm(2)的惰性气体/ H-2 = 0.5.10(-2)吹扫)。这些实验为基于FluidCELL概念集成到m-CHP系统中的PEMFC堆栈的管理奠定了基础。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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