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Pore-level engineering of macroporous media for increased performance of solar-driven thermochemical fuel processing

机译:大孔介质的孔级工程可提高太阳能驱动热化学燃料处理的性能

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The performance of high-temperature solar reactors incorporating porous ceramic materials that serve as radiative absorbers and chemical reaction sites can be improved significantly by tailoring their pore structure. We investigated the changes in their effective heat and mass transport properties with increasing mass loading of porous ceramics fabricated by the replica method. We applied a methodology consisting of the experimental characterization of the structure via 3D tomographic techniques coupled to pore-level direct numerical simulations for the determination of the effective transport properties. This approach was extended by using digital image processing on the structure data to allow for artificial changes in the morphological characteristics - corresponding to actual variations in the fabrication process. We derived transport correlations of porous ceria foam with varying mass loading, i.e. reticulate to dense foams with porosity from 0.85 to 0.45. We observed that the correlations proposed in literature do not accurately describe the behavior of low-porosity foams. The numerical findings of this study provide guidance for pore-level engineering of materials used in solar reactors and other high-temperature heat and mass transfer applications.
机译:包含多孔陶瓷材料的高温太阳能反应器的性能可以通过调整其孔结构而显着提高,该多孔陶瓷材料用作辐射吸收剂和化学反应部位。我们研究了通过复制方法制造的多孔陶瓷的有效载荷随多孔陶瓷质量载荷的增加而发生的变化。我们应用了一种方法,该方法包括通过3D层析成像技术对结构进行实验表征,再结合孔隙水平直接数值模拟来确定有效的传输性能。通过对结构数据使用数字图像处理来扩展此方法,以允许形态特征的人为更改-对应于制造过程中的实际变化。我们得出了具有不同质量载荷的多孔二氧化铈泡沫的运输相关性,即网状到孔隙率为0.85至0.45的致密泡沫。我们观察到文献中提出的相关性不能准确地描述低孔隙度泡沫的行为。这项研究的数值发现为太阳能反应堆和其他高温传热传质应用中材料的孔隙水平工程设计提供了指导。

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