Influence of Scattering Phase Function on Estimated Thermal Properties of Al2O3 Ceramic Foams

被引:0
|
作者
Shuyuan Zhao
Xinyang Sun
Quanqing Que
Wenjiao Zhang
机构
[1] Harbin Institute of Technology,Science and Technology on Advanced Composites in Special Environments Laboratory
[2] Harbin Institute of Technology,School of Aeronautics and Astronautics
[3] Northeast Agricultural University,Engineering College
来源
International Journal of Thermophysics | 2019年 / 40卷
关键词
Anisotropic scattering; Ceramic foams; Inverse method; Phase function; Thermal properties;
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中图分类号
学科分类号
摘要
Open ceramic foams are usually constituted of three-dimensional networks with randomly interconnected solid struts and fluid within pores. The heat transport within this material can be understood as the coupling of conduction, convection as well as radiation. The cooperative control of different heat transfer mechanisms is critical to successful design and optimization of components working at high temperatures. An answer to this problem usually requires good knowledge and understanding of the corresponding thermal properties in a wide range of temperatures. In the present paper, an inverse identification method was developed to determine coupled thermal properties from transient thermal measurements at temperatures up to 900 K for full description of conduction/radiation heat transports of foam media with absorbing, emitting, and anisotropic scattering effects. The influence of postulated phase function on the identified equivalent extinction coefficient, scattering albedo, anisotropic scattering factor, and two-phase thermal conductivity was discussed for better understanding of thermal behavior within ceramic foams. The estimated thermal properties under each postulated phase function of the sample at transient temperature profiles were used to calculate equivalent thermal conductivities, which were then compared with the measured results at more than 1000 K. The accordance between them indicated that linear anisotropic scattering phase function demonstrates superiority in description of radiation behavior within Al2O3 ceramic foam.
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