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Oxygen Crossover in Solid-Solid Heat Exchangers for Solar Water and Carbon Dioxide Splitting: A Thermodynamic Analysis

机译:太阳能水和二氧化碳分裂固体热交换器的氧气交叉:热力学分析

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In solar thermochemical redox cycles for H_2O/CO_2-splitting, a large portion of the overall energy demand of the system is associated with heating the redox material from the oxidation temperature to the reduction temperature. Hence, an important measure to improve the efficiency is recuperation of sensible heat stored in the redox material. A solid-solid heat exchanger can be subjected to undesirable oxygen crossover, which decreases the oxygen uptake capacity of the redox material and consequently the system efficiency. We investigate the extent of this crossover in ceria-based cycles, to identify, under which conditions a heat exchanger that allows oxygen crossover can improve the system efficiency. In a thermodynamic analysis, we calculate the amount of transferred oxygen as a function of the heat exchanger efficiency and show the system efficiency of such a concept. A second law analysis is applied to the model to check the feasibility of calculated points of operation. For the investigated parameter set, the heat exchanger design improves the system efficiency by a factor of up to 2.1.
机译:在用于H_2O / CO_2分裂的太阳能热化学氧化还原循环中,系统的总体能量需求的大部分与从氧化温度加热到还原温度的氧化还原材料相关。因此,提高效率的重要措施是储存储存在氧化还原材料中的明智热量。可以对固体固体热交换器进行不希望的氧气交叉,这降低了氧化还原材料的氧气吸收能力,从而降低了系统效率。我们研究了基于二氧化铈的循环中这种交叉的程度,以识别,在该条件下,允许氧气交叉可以提高系统效率的热交换器。在热力学分析中,我们计算作为热交换器效率的函数的转移氧的量,并显示了这种概念的系统效率。第二法律分析应用于模型以检查计算的操作点的可行性。对于调查的参数集,热交换器设计将系统效率提高了最多2.1倍。

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