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High temperature two-phase thermal conductivity of ceramic sponges with stagnant fluid - Experimental results and correlation including thermal radiation

机译:滞留性陶瓷海绵的高温两相导热系数-实验结果及包括热辐射在内的相关性

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摘要

Experimental results for the two-phase thermal conductivity (often called "effective thermal conductivity") with stagnant fluid at temperatures up to 1200 K for different ceramic sponges (variation of material, porosity and cell density) are presented in this publication. A two-plate test facility was used for the experiments. Samples investigated have porosities higher than 75% and cell densities in the range of 10-45 ppi (pores per linear inch). They are made of alumina, mullite and oxidic-bonded silicon carbide. The two-phase thermal conductivity is strongly dependent on temperature, porosity and cell sizes of the sponge sample. A model based on the superposition of the two heat transfer mechanisms, thermal conduction and thermal radiation is used to predict the two-phase thermal conductivity of ceramic sponges. A model based on combination of thermal resistances is suggested for predicting the thermal conductivity. The so-called Rosseland equation is used as an initial model for predicting the part of thermal radiation on the two-phase thermal conductivity. Measurements of material properties are included in this work as model implementation requires an exact knowledge of sponge data. (C) 2015 Elsevier Masson SAS. All rights reserved.
机译:在此出版物中,给出了在不同陶瓷海绵的情况下,在高达1200 K的温度下,流体处于停滞状态的两相导热系数(通常称为“有效导热系数”)的实验结果。实验使用两板试验设备。所研究的样品的孔隙率高于75%,孔密度在10-45 ppi(每线性英寸的孔)范围内。它们由氧化铝,莫来石和氧化结合的碳化硅制成。两相热导率在很大程度上取决于海绵样品的温度,孔隙率和孔尺寸。基于热传导和热辐射这两种传热机制的叠加模型,可预测陶瓷海绵的两相热导率。建议使用基于热阻组合的模型来预测热导率。所谓的Rosseland方程用作预测热辐射在两相热导率上的部分的初始模型。材料性能的测量包含在这项工作中,因为模型实现需要对海绵数据有确切的了解。 (C)2015 Elsevier Masson SAS。版权所有。

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