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Efficient method for predicting the effective thermal conductivity of various types of two-component heterogeneous materials

机译:用于预测各种类型双组分异质材料有效导热率的有效方法

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摘要

A new method for modelling the effective thermal conductivity of a two-component heterogeneous material is proposed. The model is intended to apply, in general, for any thermal conductivity ratio (K) between the two components, and for any geometry in which the higher conductivity material forms at least one continuous pathway. The model combines the resistances for the energy carriers inside the continuous path in K - infinity and K - 1 regimes in a novel way. As a result, the modelling of complex geometries becomes possible with reasonable efforts. The validity of the model was tested with six different basic geometric structures ranging from closed cell structures to randomly oriented fibers. By variating aspect ratios and volume fractions of the basic structures, in overall 43 different geometrical cases were analyzed, all within thermal conductivity ratio range 1.2 = K = 40000. Typically, the standard mixing rules and models do not sufficiently take into account the change in direction of energy carriers when conductivity ratio K is altered. As a result of this, it was found that these models are usually valid only within the range K = 4. For almost all structures the overall performance of the new model was instead significantly better. An exception was the Kelvin foam structure for which the new model and Maxwell equation resulted in an accuracy of the same order of magnitude.
机译:提出了一种建模双组分异质材料的有效导热率的新方法。该模型通常用于两种部件之间的任何导热率(k),以及较高导电性材料形成至少一个连续途径的任何几何形状。该模型结合了K - &GT中连续路径内的能量载体的电阻。无限和k - & 1个以新颖的方式制定。结果,具有合理的努力,复杂几何形状的建模成为可能。用六种不同的基本几何结构测试模型的有效性,范围从闭孔结构到随机取向纤维。通过改变纵横比和基本结构的体积分数,在总体上分析了不同的几何案例,所有在导热率比范围内1.2℃。通常,标准混合规则和模型不充分地进入在改变电导率k时能量载体方向的变化。结果,发现这些模型通常仅在k& = 4范围内有效。对于几乎所有结构的新模型的整体性能都显着更好。一个例外是新模型和麦克斯韦方程的开尔文泡沫结构,其精度是相同数量级的准确性。

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