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Preparation of Nanoporous Super Thermal Insulation Material Compounded with Xonotlite-SiO_2-Aerogel and Characterization of the Pore Structure

机译:用Xonotlite-SiO_2 - 气凝胶配混的纳米多孔超热绝热材料的制备及孔隙结构的表征

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Ultra-light calcium silicate material constructed with fibrous xonotlite crystals has an advantage of low-thermal conduction coefficient. But the microporous structure can hardly make a better performance in terms of super thermal insulation. Although nanoporous structure of SiO_2-aerogel satisfies the requirement, its tenacity is not strong enough to produce by itself blocky super thermal insulation material. This research, thus proposes to apply SiO_2-aerogel as nanoporous carrier in the process of preparation, with Ultra-light calcium silicate material constructed with fibrous xonotlite crystals as the matrix so as to prepare nanoporous super thermal insulation material compounded with Xonotlite-SiO_2-aerogel via so-gel method and ethanol supercritical drying. SEM and pore size distribution techniques were here applied to characterize the morphology and pore structure of the composite material. The results show that the SiO_2-aerogels were better distributed in pore of calcium silicate matrix, with the pore size distribution of composite ranging from 10 nanometers to 50 nanometers, and average pore size less then 20 nm.
机译:用纤维Xonotlite晶体构造的超光硅酸钙材料具有低热导通系数的优点。但微孔结构在超级绝热方面几乎不能更好地进行性能。尽管SiO_2-Airgel的纳米多孔结构满足了要求,但其韧度足以使其自身块状的超热绝缘材料产生。这项研究提出,在制备过程中,将SiO_2-Airgel作为纳米多孔载体应用,用纤维氧钛矿晶体构成为基质,以制备与Xonotlite-SiO_2-Airegel配混的纳米多孔超热绝缘材料通过SO-GEL方法和乙醇超临界干燥。这里施加SEM和孔径分布技术以表征复合材料的形态和孔结构。结果表明,在硅酸钙基质的孔中,SiO_2-aerogels在硅酸钙基质的孔中分布,复合材料的孔径分布范围为10纳米至50纳米,平均孔径小于20nm。

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