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Design and Optimisation of Porous Supports for Asymmetric Ceria-Based Oxygen Transport Membranes

机译:不对称基于二氧化铈的氧气传输膜的多孔载体设计与优化

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摘要

The microstructure, mechanical properties and gas permeability of porous supports of Ce0.9Gd0.1O1.95−δ (CGO) were investigated as a function of sintering temperature and volume fraction of pore former for use in planar asymmetric oxygen transport membranes (OTMs). With increasing the pore former content from 11 vol% to 16 vol%, the gas permeabilities increased by a factor of 5 when support tapes were sintered to comparable densities. The improved permeabilities were due to a more favourable microstructure with larger interconnected pores at a porosity of 45% and a fracture strength of 47±2 MPa (m=7). The achieved gas permeability of 2.25×10−15 m2 for a 0.4 mm thick support will not limit the gas transport for oxygen production but in partial oxidation of methane to syngas at higher oxygen fluxes. For integration of the CGO support layer into a flat, asymmetric CGO membrane, the sintering activity of the CGO membrane was reduced by Fe2O3 addition (replacing Co3O4 as sintering additive).
机译:研究了Ce0.9Gd0.1O1.95-δ(CGO)多孔支撑体的微观结构,力学性能和透气性,其与烧结温度和用于平面不对称氧气传输膜(OTM)的成孔剂体积分数的关系。随着成孔剂的含量从11%(体积)增加到16%(体积),当将支撑带烧结到相当的密度时,气体渗透率增加了5倍。渗透率的提高归因于在孔隙度为45%时具有更大互连孔的更好的微观结构,断裂强度为47±2 MPa(m = 7)。对于0.4 mm厚的支撑体,达到的2.25×10-15 m2的气体渗透率不会限制产生氧气的气体传输,而是会在较高的氧气通量下将甲烷部分氧化为合成气。为了将CGO支撑层集成到平坦的不对称CGO膜中,可通过添加Fe2O3(代替Co3O4作为烧结添加剂)来降低CGO膜的烧结活性。

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