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首页> 外文期刊>Journal of Composite Materials >INFLUENCE OF VOID SHAPE, VOID VOLUME AND MATRIX ANISOTROPY ON EFFECTIVE THERMAL CONDUCTIVITY OF A THREE-PHASE COMPOSITE
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INFLUENCE OF VOID SHAPE, VOID VOLUME AND MATRIX ANISOTROPY ON EFFECTIVE THERMAL CONDUCTIVITY OF A THREE-PHASE COMPOSITE

机译:空隙形状,空隙体积和各向异性对三相复合材料有效导热系数的影响

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By using high conductivity carbon fibers in a graphitizable carbon matrix, very high values for the thermal conductivity of a composite can be obtained in the direction parallel to the fibers. The carbon matrix of this material exhibits anisotropy and is oriented in the direction of the fibers. Thermal conductivity of the matrix material is of the same order as that of the carbon fibers. The processing of such materials invariably introduces voids up to 25% giving rise to a three phase system of fibers, matrix and voids. The void volume, shape and distribution will have a significant impact on the overall or effective thermal conductivity of the composite. Current empirical or simplified models do not show clearly this effect and experimental measurements are non-existent. Hence, we have adopted a numerical approach consisting of a unit cell to explore the influence of void volume and shape on the effective conductivity of a unidirectional sample. The effective conductivity of a composite consisting of spherical, oval and crack-type voids up to 25% in the direction transverse and parallel to the fiber is calculated and compared with electric circuit analogies and a generalized dispersion formulation for effective thermal conductivity, The results clearly show that the effect of porosity on thermal conductivity cannot be described solely by void volume. The shape and the distribution of the voids affect the effective thermal conductivity which is not captured by any existing models. The finite element models developed should prove useful for the estimation of effective thermal conductivity and hence provide a tool for evaluating analytical continuum models. [References: 12]
机译:通过在可石墨化的碳基质中使用高导电率的碳纤维,可以在平行于纤维的方向上获得非常高的复合材料的热导率值。这种材料的碳基体表现出各向异性,并沿纤维方向取向。基体材料的热导率与碳纤维的热导率相同。此类材料的加工始终会引入高达25%的空隙,从而形成纤维,基质和空隙的三相体系。空隙体积,形状和分布将对复合材料的整体或有效导热率产生重大影响。当前的经验模型或简化模型不能清楚地表明这种效果,并且不存在实验测量结果。因此,我们采用了一种由晶胞组成的数值方法,以研究空隙体积和形状对单向样品有效电导率的影响。计算了由球形,椭圆形和裂纹型空隙组成的复合材料在横向和平行于纤维的方向上的有效电导率,最高可达25%,并与电路类似物和有效导热率的通用分散体配方进行了比较,结果显而易见表明孔隙率对导热系数的影响不能仅用空隙体积来描述。空隙的形状和分布会影响有效的热导率,这是任何现有模型都无法捕获的。所开发的有限元模型应该证明对有效导热系数的估计有用,因此提供了一种评估连续谱模型的工具。 [参考:12]

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