Effect of porous microstructure and fiber arrangement of thermal protection composites on effective thermal conductivity

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
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Abstract

The inclusions in a high-temperature resistant matrix can significantly influence the radiative heat transfer of composite materials at elevated temperatures; therefore, the microstructure design of composites for thermal protection during atmospheric re-entry require a more accurate prediction of thermal insulation performance. In this paper, the Rosseland approximation was used to investigate the radiative heat transfer within thermal protection materials, e.g., porous carbon-based material and ultra-high-temperature ceramics (e.g., ZrB2-SiC), and the discrete dipole scattering method was used to evaluate the extinction efficiency across the inclusions with different types of microstructures. The effect of inclusion parameters, such as inclusion size, shape coefficient, volume fraction, orientation, and size distribution, on the radiative and effective thermal conductivity (ETC) at various temperatures was analyzed in detail. Test results obtained from the existing literature were used to validate the ETC of porous ceramics predicted by the proposed model. The results indicated that the microstructures in thermal protection materials play a fundamental role in improving the heat-shielding properties. The present study deepens the understanding of the relationship between microstructures and thermal radiation properties and provides theoretical design guidelines for thermal protection materials with improved thermal insulation properties.

热防护复合材料的多孔微结构和纤维排列对有效导热率的影响
耐高温基体中的夹杂物会显著影响复合材料在高温下的辐射传热;因此,用于重返大气层期间热防护的复合材料的微结构设计需要对隔热性能进行更精确的预测。本文采用 Rosseland 近似法研究了热防护材料(如多孔碳基材料和超高温陶瓷(如 ZrB2-SiC))内部的辐射传热,并采用离散偶极子散射法评估了不同类型微结构夹杂物的消光效率。详细分析了夹杂物参数(如夹杂物尺寸、形状系数、体积分数、取向和尺寸分布)对不同温度下辐射热导率和有效热导率(ETC)的影响。从现有文献中获得的测试结果被用来验证所提出模型预测的多孔陶瓷的 ETC。结果表明,热防护材料中的微结构在提高热屏蔽性能方面起着根本性的作用。本研究加深了人们对微结构与热辐射性能之间关系的理解,并为提高隔热性能的热防护材料提供了理论设计指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mechanics of Materials
Mechanics of Materials 工程技术-材料科学:综合
CiteScore
7.60
自引率
5.10%
发文量
243
审稿时长
46 days
期刊介绍: Mechanics of Materials is a forum for original scientific research on the flow, fracture, and general constitutive behavior of geophysical, geotechnical and technological materials, with balanced coverage of advanced technological and natural materials, with balanced coverage of theoretical, experimental, and field investigations. Of special concern are macroscopic predictions based on microscopic models, identification of microscopic structures from limited overall macroscopic data, experimental and field results that lead to fundamental understanding of the behavior of materials, and coordinated experimental and analytical investigations that culminate in theories with predictive quality.
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