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Investigation of thermal insulation performance of glass/carbon fiber-reinforced silica aerogel composites

机译:玻璃/碳纤维增强二氧化硅气凝胶复合材料隔热性能的研究

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Silica aerogels have been widely used as thermal insulators, but their fragility has hindered the potential applications. In this work, a novel way of improving aerogel skeletal structure was proposed where composites were reinforced by three functional layers of glass fiber (GF)/ carbon fiber (CF). Heat insulation performance of fiber-reinforced aerogel composites was also investigated in a simulated solar radiation system. Composites composed of three layers of fiber were prepared by a sol-gel process under ambient pressure drying. The results showed that, as three layers were all GF blankets, the composite heat conductivity increased with increasing glass fiber content. Flexural strength increased initially and reached a maximum at 20% glass fiber content before decreasing. To find a balance between promoting heat insulation performance and strengthening the composite structure, two layers of 5% glass fiber blankets were used as structure strengthening layers and one carding 5% carbon fiber as the heat insulation layer were recommended. Under these conditions, the composite showed extremely low thermal conductivity (0.031 W/m K), almost comparable to that of pure aerogel (0.036 W/m K) while maintaining high flexural strength (2.846 MPa), superior than previous studies. Composites with other ratios of glass/carbon fibers with sandwiched alignments also demonstrated better flexural strength and lower thermal conductivity than GF aerogel composites. This work provided an alternative way to prepare robust and sustainable heat insulation aerogel composites for practical uses.
机译:二氧化硅气凝胶已被广泛用作热绝缘体,但其脆弱性阻碍了其潜在的应用。在这项工作中,提出了一种改进气凝胶骨架结构的新方法,其中复合材料由三层功能层玻璃纤维(GF)/碳纤维(CF)增强。在模拟太阳辐射系统中研究了纤维增强气凝胶复合材料的隔热性能。采用溶胶-凝胶法在常压干燥条件下制备了三层纤维复合材料。结果表明,由于三层均为玻璃纤维毡,复合材料的导热系数随玻璃纤维含量的增加而增加。弯曲强度最初增加,在玻璃纤维含量为20%时达到最大值,然后降低。为了在提高隔热性能和加强复合材料结构之间找到平衡,建议使用两层5%的玻璃纤维毯作为结构加强层,一层梳理5%的碳纤维作为隔热层。在这些条件下,复合材料表现出极低的热导率(0.031 W/m K),几乎与纯气凝胶(0.036 W/m K)相当,同时保持较高的弯曲强度(2.846 MPa),优于之前的研究。与GF气凝胶复合材料相比,具有其他夹层排列的玻璃纤维/碳纤维比例的复合材料也表现出更好的弯曲强度和更低的导热性。这项工作为制备实用的坚固、可持续的隔热气凝胶复合材料提供了另一种方法。

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