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Micromechanical Constitutive Equations for the Effective Thermoelastic Properties of Carbon Nanotube-Reinforced Composites

机译:碳纳米管增强复合材料有效热弹性性能的微机械组成方程

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摘要

Predicting thermomechanical properties of composites containing carbon nanotubes (CNTs) is significantly depending on the assumed microstructural parameters (MSPs) of CNTs and CNT/matrix morphology. These MSPs include geometry, dispersion and orientation. On the other hand, CNT/matrix morphology refers to two microstructural observations. The first is whether or not an interphase exists between CNTs and matrix, whereas the second is whether or not voids exist due to, for example, debonding of CNTs. In this work, the aim is to propose micromechanical constitutive equations, which are based on the micromechanics principles of Eshelby and Mori-Tanaka models, for considering all of these MSPs altogether in addition to the other well-known MSPs. Accordingly, these equations can be used for modeling realistic nanocomposites to predict their effective thermomechanical properties in different directions. The obtained computational results are compared with other results of both experimental and theoretical investigations found in the literature, and good agreement is obtained.
机译:预测含有碳纳米管(CNT)的复合材料的热机械性质显着取决于CNT和CNT /矩阵形态的假定微结构参数(MSP)。这些MSP包括几何,色散和方向。另一方面,CNT /矩阵形态是指两个微观结构观察。首先是CNT和矩阵之间是否存在间隔,而第二个是由于例如CNT的剥离而存在无效。在这项工作中,目的是提出基于Eshelby和Mori-Tanaka模型的微机械原理的微机械本构方程,除了其他众所周知的MSP之外,还考虑所有这些MSP。因此,这些等式可用于建模逼真的纳米复合材料以预测其不同方向的有效热机械性能。将获得的计算结果与文献中发现的实验和理论调查的其他结果进行了比较,并且获得了良好的一致性。

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