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A Survey of Alternative Oxygen Production Technologies

机译:替代制氧技术概述

摘要

Utilization of the Martian atmosphere for the production of fuel and oxygen has been extensively studied. The baseline fuel production process is a Sabatier reactor, which produces methane and water from carbon dioxide and hydrogen. The oxygen produced from the electrolysis of the water is only half of that needed for methane-based rocket propellant, and additional oxygen is needed for breathing air, fuel cells and other energy sources. Zirconia electrolysis cells for the direct reduction of CO2 arc being developed as an alternative means of producing oxygen, but present many challenges for a large-scale oxygen production system. The very high operating temperatures and fragile nature of the cells coupled with fairly high operating voltages leave room for improvement. This paper will survey alternative oxygen production technologies, present data on operating characteristics, materials of construction, and some preliminary laboratory results on attempts to implement each. Our goal is to significantly improve upon the characteristics of proposed zirconia cells for oxygen production. To achieve that goal we are looking at electrolytic systems that operate at significantly lower temperatures, preferably below 31C to allow the incorporation of liquid CO2 in the electrolyte. Our preliminary results indicate that such a system will have much higher current densities and have simpler cathode construction than a porous gas feed electrode system. Such a system could be achieved based on nonaqueous electrolytes or ionic liquids. We are focusing our research on the anode reaction that will produce oxygen from a product generated at the cathode using CO2 as the feed. Operation at low temperatures also will open up the full range of polymer and metal materials, allowing a more robust system design to withstand the rigors of flight, landing, and long term unattended operation on the surface of Mars.
机译:已经广泛地研究了利用火星大气来生产燃料和氧气。基准燃料生产过程是Sabatier反应堆,该反应堆由二氧化碳和氢气产生甲烷和水。水电解产生的氧气仅是甲烷基火箭推进剂所需氧气的一半,呼吸空气,燃料电池和其他能源所需的氧气也更多。用于直接还原CO 2的氧化锆电解池已被开发为生产氧气的替代方法,但是对于大规模氧气生产系统提出了许多挑战。电池的极高工作温度和易碎特性以及相当高的工作电压为改进留有余地。本文将调查替代制氧技术,提供有关操作特性,结构材料的数据,以及一些初步的实验结果,以尝试实施每种方法。我们的目标是显着改善拟议的用于生产氧气的氧化锆电池的特性。为了实现该目标,我们正在研究在显着较低的温度(最好低于31°C)下运行的电解系统,以允许液态CO2混入电解质中。我们的初步结果表明,与多孔气体进给电极系统相比,这种系统具有更高的电流密度和更简单的阴极构造。这样的系统可以基于非水电解质或离子液体来实现。我们将研究重点放在阳极反应上,该反应将以CO2为原料从阴极生成的产物中产生氧气。在低温下运行还将打开所有种类的聚合物和金属材料,从而使系统设计更坚固,可以承受火星表面的严格的飞行,着陆和长期无人值守操作。

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