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Combined carbon dioxide/water solid oxide electrolysis.

机译:二氧化碳/水混合固体氧化物电解。

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Solid oxide electrolysis of a mixture of water and carbon dioxide has many applications in space exploration. It can be implemented in propellant production systems that use Martian resources or in closed-loop life support systems to cleanse the atmosphere of facilities in extraterrestrial bases and of cabin spacecrafts. This work endeavors to quantify the performance of combined water and carbon dioxide electrolysis, referred to as "combined electrolysis", and to understand how it works so that the technology can be best applied.; First, to thoroughly motivate the research, system modeling is presented that demonstrates the competitiveness of the technology in terms of electrolysis power requirements and consequential system mass savings. Second, to demonstrate and quantify the performance of the technology, experimental results are presented. Electrolysis cells were constructed with 8% by mol yttria-stabilized zirconia electrolytes, 50/50 by weight platinum/yttria-stabilized zirconia electrodes and chromium-alloy or alumina manifolds and tubing. Performance and gas chromatograph data from electrolysis of many different gas mixtures, including water, carbon dioxide, and a combined mixture of both, are presented. Third, to explain observations made during experiments and theorize about the phenomena governing combined electrolysis, data analyses and thermodynamic modeling are applied.; Conclusions are presented regarding the transient response of combined electrolysis, the relative performance of it to that of other mixtures, how its performance depends on the water to carbon dioxide ratio, its effect on cell health, and its preference to water versus carbon dioxide. Procedures are also derived for predicting the composition of combined electrolysis exhaust for a given oxygen production rate, humidity content, and inlet flow rate.; The influence of the two cell materials proves to be significant. However, in both cases it is proven that combined electrolysis does not encourage carbon deposition and the makeup of its products is governed by the water gas shift reaction. It is shown that the chromium-alloy system achieves water gas shift reaction equilibrium whereas the alumina system does not. Experimental observations support the argument that chromium oxide inside the chromium alloy cell forces its water gas shift reaction to equilibrium during electrolysis, influencing combined electrolysis performance.
机译:水和二氧化碳混合物的固体氧化物电解在太空探索中有许多应用。它可以在使用火星资源的推进剂生产系统中实施,也可以在闭环生命支持系统中实施,以清洁外星基地和机舱航天器设施的气氛。这项工作致力于量化水和二氧化碳联合电解的性能,称为“联合电解”,并了解其工作方式,以便可以最佳地应用该技术。首先,为了彻底激励研究,提出了系统建模,该系统建模证明了该技术在电解功率要求和相应的系统质量节省方面的竞争力。其次,为了演示和量化该技术的性能,给出了实验结果。电解池由8%摩尔浓度的氧化钇稳定的氧化锆电解质,50/50重量比的铂/氧化钇稳定的氧化锆电极以及铬合金或氧化铝歧管和管道构成。给出了许多不同气体混合物(包括水,二氧化碳和两者的混合混合物)电解得到的性能和气相色谱数据。第三,为了解释实验过程中的观察结果,并对结合电解的现象进行理论化,应用了数据分析和热力学模型。提出了有关组合电解的瞬态响应,与其他混合物的相对性能,其性能如何取决于水与二氧化碳的比率,其对细胞健康的影响以及相对于水还是二氧化碳的偏好的结论。还得出了在给定的氧气产生速率,湿度含量和入口流速下,预测组合电解废气的成分的程序。两种电池材料的影响被证明是巨大的。但是,在两种情况下都证明了组合电解不会促进碳沉积,并且其产物的组成是由水煤气变换反应控制的。结果表明,铬合金体系达到了水煤气变换反应的平衡,而氧化铝体系没有。实验观察结果支持这样一种论点,即铬合金电池内部的氧化铬会在电解过程中迫使其水煤气变换反应达到平衡,从而影响综合电解性能。

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