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Additive-Manufactured Ordered Porous Structures Made of Ceria for Concentrating Solar Applications

机译:用于集中太阳能应用的二氧化铈制成的添加制造有序多孔结构

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Porous structures made of redox active ceria are attractive for high-temperature concentrating solar applications and particularly for the thermochemical splitting of H2O and CO2 as their enhanced heat and mass transport properties lead to fast reaction rates, especially with regard to the absorption of concentrated solar radiation during the endothermic reduction step. Hierarchically ordered porous structures, fabricated by the Schwartzwald replica method on 3D-printed polymer scaffolds, are experimentally assessed for their ability to volumetrically absorb high-flux irradiation of up to 670 suns. Temperature distributions across the porosity-gradient path are measured (peak 1724 K) and compared with that obtained for a reticulated porous ceramic (RPC) structure with a uniform porosity. To assist the analysis, a Monte Carlo ray-tracing model is developed for pore-level numerical simulations of the ordered geometries and applied to analyze the absorbing-emitting-scattering exchange and determine the radiation attenuation and the temperature distribution at a radiative equilibrium. In contrast to the Bouguer's law exponential-decay attenuation of incident radiation observed for the RPC, the ordered structures with a porosity gradient exhibit a step-wise radiative attenuation that leads to a more uniform temperature distribution across the structure. This in turn predicts a superior redox performance.
机译:氧化还原活性二氧化铈制成的多孔结构对于高温浓缩太阳能应用是有吸引力的,特别是对于H2O和CO2的热化学分裂,因为它们的增强的热量和大规模运输性能导致快速反应速率,特别是关于浓缩太阳辐射的吸收方案在吸热还原步骤中。由Schwartzwald Replica方法在3D印刷的聚合物支架上制造的分层有序的多孔结构,通过实验评估它们能够在高达670个太阳的高达670℃的高通量照射的能力进行评估。测量孔隙率梯度路径的温度分布(峰值1724k),并与具有均匀孔隙率的网状多孔陶瓷(RPC)结构获得的。为了协助分析,开发了一个蒙特卡罗射线跟踪模型,用于有序几何形状的孔径数值模拟,并应用于分析吸收发射散射交换,并确定辐射平衡下的辐射衰减和温度分布。与对RPC观察到的入射辐射的Bouger的幂指数衰减相比,具有孔隙率梯度的有序结构表现出逐步的辐射衰减,其在整个结构上导致更均匀的温度分布。这反过来预测了卓越的氧化还原性能。

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