Sustainable Alkaline Membrane Fuel Cell (SAMFC)

R. Raimundo, J. Vargas, W. Balmant, J. Ordonez
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引用次数: 1

Abstract

This work addresses the development and construction of a sustainable alkaline membrane fuel cell (SAMFC). The SAMFC couples an alkaline membrane fuel cell (AMFC) with a hydrogen generation reactor that uses recycled aluminum from soda cans to split the water molecule through the oxidation of aluminum catalyzed by sodium hydroxide. An innovative cellulosic membrane supports the electrolyte, which avoids the undesirable characteristics of liquid electrolytes, and asbestos or ammonia that are substances that have been used to manufacture alkaline electrolyte membranes, which are knowingly toxic and carcinogenic. Aluminum is an inexpensive, abundant element in the earth’s crust and fully recyclable. Oxygen is supplied to the cell with atmospheric air that is pumped through a potassium hydroxide (KOH) aqueous solution in order to fix CO2, and in this way avoid potassium carbonate formation in order to keep the cell fully functional. A sustainable alkaline membrane fuel cell (SAMFC) system with one unitary cell, the reactor, and CO2 purifier was designed and built in the laboratory. The results are presented in polarization and power curves directly measured in the laboratory. Although recycled aluminum was used in the experiments, the results demonstrate that the cell was capable of delivering 0.9 V in open circuit and approximately 0.42 W of maximum power. The main conclusion is that by allowing for in situ sustainable hydrogen production, the SAMFC could eventually become economically competitive with traditional power generation systems.
可持续碱性膜燃料电池(SAMFC)
本文研究了可持续碱性膜燃料电池(SAMFC)的开发与构建。SAMFC将碱性膜燃料电池(AMFC)与一个产氢反应器结合在一起,该反应器使用汽水罐中的再生铝,通过氢氧化钠催化铝的氧化来分解水分子。一种创新的纤维素膜支持电解质,避免了液体电解质和石棉或氨的不良特性,这些物质被用于制造碱性电解质膜,这是明知有毒和致癌的。铝是一种廉价、丰富的地壳元素,并且完全可回收利用。为了固定二氧化碳,通过氢氧化钾(KOH)水溶液泵送的大气空气向细胞提供氧气,这样就避免了碳酸钾的形成,以保持细胞的完整功能。在实验室中设计并搭建了一个由单体电池、反应器和CO2净化器组成的可持续碱性膜燃料电池(SAMFC)系统。结果用实验室直接测量的偏振曲线和功率曲线表示。虽然在实验中使用了再生铝,但结果表明该电池能够在开路中提供0.9 V的电压和大约0.42 W的最大功率。主要结论是,通过允许就地可持续制氢,SAMFC最终可以在经济上与传统发电系统竞争。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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