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Prediction of mechanical and thermal properties of particle reinforced hydrogel composites using the structural genome approach

机译:使用结构基因组方法预测颗粒增强水凝胶复合材料的机械和热性能

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摘要

In this paper, the structural genome approach is used for multiscale analyses to predict the mechanical and thermal properties of particle reinforced hydrogel composites. First, the structure genome model of particle reinforced hydrogel composites is created by the random sequential adsorption algorithm. Then the mechanical properties and equivalent thermal conductivity of hydrogel composites are numerically studied by the structural genome approach. The effects of particles with different volume fractions and material properties on their mechanical and thermal properties are investigated. From the simulation results, it can be found that within a certain range of volume fraction, the mechanical properties and equivalent thermal conductivity of hydrogel composites are positively correlated with the volume fractions of particles. We also find that with the increase of the mechanical properties and thermal conductivity of particles, the properties of hydrogel can be improved and eventually reach stabilization. The structural genome approach shows excellent efficiency in multiscale structure analysis. It is a convenient method for the simulation of complex soft material composites.
机译:本文,结构基因组方法用于多尺度分析,以预测颗粒增强水凝胶复合材料的机械和热性能。首先,通过随机顺序吸附算法产生颗粒增强水凝胶复合材料的结构基因组模型。然后通过结构基因组方法对水凝胶复合材料的机械性能和等效导热率进行数值研究。研究了具有不同体积分数和材料性质对其机械和热性质的颗粒的影响。从模拟结果中,可以发现,在一定范围内的体积分数内,水凝胶复合材料的机械性能和等效导热率与颗粒的体积分数正相关。我们还发现,随着颗粒的机械性能和导热率的增加,水凝胶的性质可以改善并最终达到稳定性。结构基因组方法在多尺度结构分析中显示出优异的效率。它是模拟复杂软材料复合材料的方便方法。

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