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Thermal Failure Analysis of Fiber-Reinforced Silica Aerogels under Liquid Nitrogen Thermal Shock

机译:液氮热冲击下纤维增强二氧化硅气凝胶的热失效分析

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摘要

Aerogel materials are recognized as promising candidates for the thermal insulator and have achieved great successes for the aerospace applications. However, the harsh environment on the exoplanet, especially for the tremendous temperature difference, tends to affect the tenuous skeleton and performances of the aerogels. In this paper, an evaluation method was proposed to simulate the environment of exoplanet and study the influence on the fiber-reinforced silica aerogels with different supercritical point drying (SPD) technology. Thermal conductivity, mechanical property and the microstructure were characterized for understanding the thermal failure mechanism. It was found that structure and thermal property were significantly influenced by the adsorbed water in the aerogels under the thermal shocks. The thermal conductivity of CO2-SPD aerogel increased 35.5% after the first shock and kept in a high value, while that of the ethanol-SPD aerogel increased only 19.5% and kept in a relatively low value. Pore size distribution results showed that after the first shock the peak pore size of the CO2-SPD aerogel increased from 18 nm to 25 nm due to the shrinkage of the skeleton, while the peak pore size of the ethanol-SPD aerogel kept at ~9 nm probably induced by the spring-back effect. An 80 °C treatment under vacuum was demonstrated to be an effective way for retaining the good performance of ethanol-SPD aerogels under the thermal shock. The thermal conductivity increases of the ethanol-SPD aerogels after 5 shocks decreased from ~30 to ~0% via vacuum drying, while the increase of the CO2-SPD aerogels via the same treatments remains ~28%. The high-strain hardening and low-strain soften behaviors further demonstrated the skeleton shrinkage of the CO2-SPD aerogel.
机译:气凝胶材料被公认为是绝热材料的有前途的候选材料,并在航空航天应用中取得了巨大的成功。然而,系外行星的恶劣环境,尤其是巨大的温差,往往会影响气凝胶的脆弱骨架和性能。本文提出了一种评估方法,以模拟系外行星的环境,并研究不同超临界点干燥(SPD)技术对纤维增强二氧化硅气凝胶的影响。表征了热导率,机械性能和微观结构,以了解热破坏机理。发现在热冲击下气凝胶中吸附的水会显着影响结构和热性能。第一次冲击后,CO2-SPD气凝胶的热导率增加了35.5%,并保持较高的值,而乙醇-SPD气凝胶的热导率仅增加了19.5%,并保持在较低的值。孔径分布结果表明,第一次冲击后,由于骨架的收缩,CO2-SPD气凝胶的峰值孔径从18 nm增加到25 nm,而乙醇SPD气凝胶的峰值孔径保持在〜9。可能是由回弹效应引起的。事实证明,在真空下80°C处理是在热冲击下保持乙醇SPD气凝胶良好性能的有效方法。经过5次电击后,乙醇SPD气凝胶的热导率增加通过真空干燥从〜30%降低到〜0%,而通过相同处理的CO2-SPD气凝胶的导热率保持约28%。高应变硬化和低应变软化行为进一步证明了CO2-SPD气凝胶的骨架收缩。

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