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高温气凝胶综述:组成、机理与性能

A Review of High-Temperature Aerogels: Composition, Mechanisms, and Properties.

作者信息

Wang Conghui, Bai Letian, Xu Hongxin, Qin Shengjian, Li Yanfang, Zhang Guanglei

机构信息

School of Materials Science and Engineering, Engineering Research Center of Matamaterials and Microdevices, Shijiazhuang Tiedao University, Shijiazhuang 050043, China.

National Engineering Research Center for Colloidal Materials, School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, China.

出版信息

Gels. 2024 Apr 23;10(5):286. doi: 10.3390/gels10050286.

Abstract

High-temperature aerogels have garnered significant attention as promising insulation materials in various industries such as aerospace, automotive manufacturing, and beyond, owing to their remarkable thermal insulation properties coupled with low density. With advancements in manufacturing techniques, the thermal resilience of aerogels has considerable improvements. Notably, polyimide-based aerogels can endure temperatures up to 1000 °C, zirconia-based aerogels up to 1300 °C, silica-based aerogels up to 1500 °C, alumina-based aerogels up to 1800 °C, and carbon-based aerogels can withstand up to 2500 °C. This paper systematically discusses recent advancements in the thermal insulation performance of these five materials. It elaborates on the temperature resistance of aerogels and elucidates their thermal insulation mechanisms. Furthermore, it examines the impact of doping elements on the thermal conductivity of aerogels and consolidates various preparation methods aimed at producing aerogels capable of withstanding temperatures. In conclusion, by employing judicious composition design strategies, it is anticipated that the maximum tolerance temperature of aerogels can surpass 2500 °C, thus opening up new avenues for their application in extreme thermal environments.

摘要

高温气凝胶因其卓越的隔热性能以及低密度,在航空航天、汽车制造等众多行业作为极具潜力的隔热材料而备受关注。随着制造技术的进步,气凝胶的热弹性有了显著提升。值得注意的是,聚酰亚胺基气凝胶可耐受高达1000℃的温度,氧化锆基气凝胶可达1300℃,二氧化硅基气凝胶可达1500℃,氧化铝基气凝胶可达1800℃,而碳基气凝胶可承受高达2500℃。本文系统地讨论了这五种材料在隔热性能方面的最新进展。阐述了气凝胶的耐温性并阐明了其隔热机制。此外,研究了掺杂元素对气凝胶热导率的影响,并总结了旨在制备耐高温气凝胶的各种制备方法。总之,通过采用明智的成分设计策略,预计气凝胶的最高耐受温度可超过2500℃,从而为其在极端热环境中的应用开辟新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0727/11121034/d27d38bf7d56/gels-10-00286-g001.jpg

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