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Design of Economical and Achievable Aluminum Carbon Composite Aerogel for Efficient Thermal Protection of Aerospace

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Journal Gels
Date 2022 Aug 25
PMID 36005110
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Abstract

Insulation materials play an extremely important role in the thermal protection of aerospace vehicles. Here, aluminum carbon aerogels (AlCAs) are designed for the thermal protection of aerospace. Taking AlCA with a carbonization temperature of 800 °C (AlCA-800) as an example, scanning electron microscopy (SEM) images show an integrated three-dimensional porous frame structure in AlCA-800. In addition, the thermogravimetric test (TGA) reveals that the weight loss of AlCA-800 is only ca. 10%, confirming its desirable thermal stability. Moreover, the thermal conductivity of AlCA-800 ranges from 0.018 W m K to 0.041 W m K, revealing an enormous potential for heat insulation applications. In addition, ANSYS numerical simulations are carried out on a composite structure to forecast the thermal protection ability of AlCA-800 acting as a thermal protection layer. The results uncover that the thermal protective performance of the AlCA-800 layer is outstanding, causing a 1185 K temperature drop of the structure surface that is exposed to a heat environment for ten minutes. Briefly, this work unveils a rational fabrication of the aluminum carbon composite aerogel and paves a new way for the efficient thermal protection materials of aerospace via the simple and economical design of the aluminum carbon aerogels under the guidance of ANSYS numerical simulation.

Citing Articles

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

Wang C, Bai L, Xu H, Qin S, Li Y, Zhang G Gels. 2024; 10(5).

PMID: 38786203 PMC: 11121034. DOI: 10.3390/gels10050286.

References
1.
Gu W, Sheng J, Huang Q, Wang G, Chen J, Ji G . Environmentally Friendly and Multifunctional Shaddock Peel-Based Carbon Aerogel for Thermal-Insulation and Microwave Absorption. Nanomicro Lett. 2021; 13(1):102. PMC: 8021664. DOI: 10.1007/s40820-021-00635-1. View

2.
Zhang Q, Zhang D, Miao Z, Zhang X, Chou S . Research Progress in MnO -Carbon Based Supercapacitor Electrode Materials. Small. 2018; 14(24):e1702883. DOI: 10.1002/smll.201702883. View

3.
Padture N . Advanced structural ceramics in aerospace propulsion. Nat Mater. 2016; 15(8):804-9. DOI: 10.1038/nmat4687. View

4.
Eckmann A, Felten A, Mishchenko A, Britnell L, Krupke R, Novoselov K . Probing the nature of defects in graphene by Raman spectroscopy. Nano Lett. 2012; 12(8):3925-30. DOI: 10.1021/nl300901a. View

5.
Feng J, Zhang C, Feng J, Jiang Y, Zhao N . Carbon aerogel composites prepared by ambient drying and using oxidized polyacrylonitrile fibers as reinforcements. ACS Appl Mater Interfaces. 2011; 3(12):4796-803. DOI: 10.1021/am201287a. View