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Solar Thermochemical Hydrogen Production via Terbium Oxide Based Redox Reactions

机译:通过氧化铽的氧化还原反应的太阳能热化学氢生产

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The computational thermodynamic modeling of the terbium oxide based two-step solar thermochemical water splitting (Tb-WS) cycle is reported. The 1st step of the Tb-WS cycle involves thermal reduction of TbO2 into Tb and O-2, whereas the 2nd step corresponds to the production of H-2 through Tb oxidation by water splitting reaction. Equilibrium compositions associated with the thermal reduction and water splitting steps were determined via HSC simulations. Influence of oxygen partial pressure in the inert gas on thermal reduction of TbO2 and effect of water splitting temperature (T-L) on Gibbs free energy related to the H-2 production step were examined in detail. The cycle (eta(cycle)) and solar-to-fuel energy conversion (eta(solar-to-fuel)) efficiency of the Tb-WS cycle were determined by performing the second-law thermodynamic analysis. Results obtained indicate that eta(cycle) cycle and eta(solar-to-fuel) increase with the decrease in oxygen partial pressure in the inert flushing gas and thermal reduction temperature (T-H). It was also realized that the recuperation of the heat released by the water splitting reactor and quench unit further enhances the solar reactor efficiency. At T-H = 2280 K, by applying 60% heat recuperation, maximum eta(cycle) of 39.0% and eta(solar-to-fuel) of 47.1% for the Tb-WS cycle can be attained.
机译:报道了氧化铽的两步太阳能热化学水分解(TB-WS)循环的计算热力学建模。 TB-WS循环的第1步涉及TBO2进入Tb和O-2的热量,而第2步骤对应于通过水分裂反应的Tb氧化的H-2的产生。通过HSC模拟确定与热还原和水分解步骤相关的平衡组合物。详细研究了与H-2生产步骤相关的GBBS2惰性气体对TBO2热量的影响和水分裂温度(T-L)的影响。通过执行第二法热力学分析来确定TB-WS周期的循环(ETA(循环))和太阳能 - 燃料能量转换(ETA(太阳能 - 燃料))效率。得到的结果表明ETA(循环)周期和ETA(太阳能 - 燃料)随着惰性冲洗气体和热还原温度(T-H)的氧分压降低而增加。还意识到,水分解反应器和淬火单元释放的热量的回收进一步提高了太阳能反应器效率。在T-H = 2280K时,通过施加60%热恢复,可以获得39.0%和TB-WS循环的39.0%和ETA(太阳能 - 燃料)的最大ETA(循环)。

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