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首页> 外文期刊>Cryogenics >Analytical heat conduction model of particle reinforced tertiary composite materials based on complete spatial randomness of fillers in base matrix and its application in the development of cryosorption pump
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Analytical heat conduction model of particle reinforced tertiary composite materials based on complete spatial randomness of fillers in base matrix and its application in the development of cryosorption pump

机译:基于碱基基质填料完全空间随机性的粒子增强叔复合材料的分析热传导模型及其在低温泵开发中的应用

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摘要

In this article, we propose an analytical heat conduction model within a stochastic frame work which estimates the thermal conductivity (TC) value of particle reinforced composite materials comprising of three parent elements i.e. a base matrix along with two different filler element particles randomly distributed in it. The spatial distribution of the filler particles in a sample of specific dimension has been estimated by applying bivariate Poisson distribution. This distribution is then used to arrive at the TC value of the composite. This concept has been applied to predict the TC of the tertiary composite comprised of epoxy as the base matrix, aluminium and zinc particles as filler elements. The TC values obtained from this model for different volume fractions of fillers were extensively compared with experimental results. The model is found to predict the results fairly well with less aberrations up to the total filler volume fraction of similar to 20%. The developed model for TC prediction has been used in the design of high efficiency cryosorption pump where the adhesive material used is Epoxy-Aluminium - Zinc composite.
机译:在本文中,我们提出了一种随机框架工作中的分析热传导模型,其估计颗粒增强复合材料的导热率(Tc)值,所述复合材料包括三个亲子元素,即基质基质以及随机分布的两个不同的填料元件颗粒。通过施加二元泊松分布估计了特定尺寸样品中的填充颗粒的空间分布。然后使用该分布到达复合材料的TC值。已经应用了该概念以预测由环氧基质,铝和锌颗粒作为填料元件的环氧树脂组成的叔复合材料的Tc。与实验结果相比,从该模型获得的不同体积分数的TC值。发现该模型将结果相当良好地预测,较少的像差达到与20%相似的总填充体积分数。用于TC预测的开发模型已经用于设计高效低温泵,其中使用的粘合材料是环氧树脂 - 铝 - 锌复合材料。

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