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Hydrogen production system combined with a catalytic reactor and a plasma membrane reactor from ammonia

机译:氨催化制氢反应器和质膜反应器的制氢系统

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Ammonia is a 1promising raw material for hydrogen production because it may solve several problems related to hydrogen transport and storage. Hydrogen can be effectively produced from ammonia via catalytic thermal decomposition; however, the resulting residual ammonia negatively influences the fuel cells. Therefore, a high-purity hydrogen production system comprising a catalytic decomposition reactor and a plasma membrane reactor (PMR) has been developed in this work. Most of the ammonia is converted to hydrogen and nitrogen by the catalytic reactor. After the product gas containing unreacted ammonia is introduced to the PMR, unreacted ammonia is decomposed and hydrogen is separated in the PMR. Based on these processes, hydrogen with a purity of 99.99% is obtained at the output of the PMR. Optimal operation conditions maximizing the hydrogen production flow rate were investigated. The gap length of the PMR and the gas differential pressure and applied voltage of the plasma influence the flow rate. A pure hydrogen flow rate of similar to 120 L/h was achieved using the current operating conditions. The maximum energy efficiency of the developed hydrogen production system is 28.5%. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:氨是制氢的有前途的原料,因为它可以解决与氢气运输和储存有关的若干问题。可以通过催化热分解从氨中有效地产生氢气;然而,所产生的残余氨会对燃料电池产生负面影响。因此,在这项工作中,已经开发了包括催化分解反应器和质膜反应器(PMR)的高纯度制氢系统。大部分氨通过催化反应器转化为氢和氮。在将包含未反应的氨的产物气体引入PMR后,未反应的氨被分解,并且在PMR中分离出氢气。基于这些过程,在PMR的输出处可获得纯度为99.99%的氢气。研究了最大化制氢流量的最佳操作条件。 PMR的间隙长度以及气体的压差和等离子施加的电压会影响流速。使用当前的运行条件,可获得接近120 L / h的纯氢气流速。已开发的制氢系统的最大能效为28.5%。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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