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用于设计仿生准有序莫来石纤维气凝胶作为极端条件隔热材料的纤维沉降和逐层组装策略

Fiber Sedimentation and Layer-By-Layer Assembly Strategy for Designing Biomimetic Quasi-Ordered Mullite Fiber Aerogels as Extreme Conditions Thermal Insulators.

作者信息

Li Wenjie, Jiang Yuncong, Liu Hang, Wang Chen, Zhou Xin, Jiang Siyi, Mu Yuwen, Wang Linyan, He Xiaodong, Li Mingwei, He Fei

机构信息

National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, Harbin Institute of Technology, Harbin 150001, PR China.

Department of materials engineering, Taiyuan Institute of Technology, Taiyuan 030024, PR China.

出版信息

ACS Appl Mater Interfaces. 2023 Oct 4;15(39):46010-46021. doi: 10.1021/acsami.3c09418. Epub 2023 Sep 22.

Abstract

Ceramic fiber aerogels are attractive thermal insulating materials. In a thermomechanical coupling environment, however, they often show limited mechanical strength and considerably increased heat transfer which can lead to thermal runaway. In this paper, inspired by bird's nest and nacre, we demonstrate a sample strategy combining fiber sedimentation and layer-by-layer assembly to fabricate ultrastrong mullite fiber aerogels (MFAs) with quasi-ordered structures. The fibrous layers and fiber bridges are constructed in a fiber sedimentation self-assembly process. The fiber sedimentation technique optimizes the structure of the MFAs by regulating the fiber orientation. Owing to the quasi-ordered structure, the fabricated MFAs exhibit the integrated properties of high compression fatigue resistance, temperature-invariant compression resilience from -196 to 1300 °C, and low thermal conductivity (0.034 W·m·K). By deliberately pressing multilayer MFAs into a thin paper, we substantially enhance the load-bearing capacity of the MFAs and achieve large temperature differences (563 °C) between the cold and hot surfaces by using a thin layer of MFAs (3-5 mm) under the simulated high-temperature (685 °C) and high-pressure (0.9 MPa) environment test. The combination of compression resistance, mechanical flexibility, and excellent thermal insulation provides an appealing material for efficient thermal insulation in extreme environments.

摘要

陶瓷纤维气凝胶是很有吸引力的隔热材料。然而,在热机械耦合环境中,它们通常表现出有限的机械强度和显著增加的热传递,这可能导致热失控。在本文中,受鸟巢和珍珠母的启发,我们展示了一种结合纤维沉降和逐层组装的样品策略,以制备具有准有序结构的超强莫来石纤维气凝胶(MFA)。在纤维沉降自组装过程中构建纤维层和纤维桥。纤维沉降技术通过调节纤维取向来优化MFA的结构。由于具有准有序结构,所制备的MFA具有高抗压缩疲劳性、在-196至1300°C范围内温度不变的压缩回弹性以及低导热率(0.034W·m·K)等综合性能。通过有意将多层MFA压制成薄纸,我们大幅提高了MFA的承载能力,并在模拟高温(685°C)和高压(0.9MPa)环境测试中,使用3-5mm的薄层MFA实现了冷热表面之间的大温差(563°C)。抗压性、机械柔韧性和优异隔热性的结合为极端环境下的高效隔热提供了一种有吸引力的材料。

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