Alireza Moradi, Reza Ansari, Mohammad Kazem Hassanzadeh-Aghdam, Jamaloddin Jamali
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引用次数: 0
摘要
当代文献报道了富含空心球复合材料的最佳性能,但对其热性能的关注较少。为此,我们系统地开发了一种基于有限元法(FEM)的微机械模型,以研究基体内嵌入空心球对单向纤维增强混合复合材料的热导率和热膨胀系数(CTE)的影响。在此过程中,代表体积元素(RVE)的概念考虑了由环氧树脂基体、E-玻璃纤维和 E-玻璃空心球组成的微结构,假设各组分之间完美粘合(理想界面),并修改了近似周期性边界条件。通过计算均匀热通量产生的纵向和横向温度梯度,以及温度升高导致的 RVE 几何变化,分别确定了热导率和 CTE。我们进行了综合评估,以研究微结构层面的特征(包括纤维体积含量和取向,以及中空球体的体积含量和厚度)对假多孔三元 E 玻璃/环氧树脂复合材料的有效热导率和 CTE 的影响。
Numerical prediction of thermal conductivity and thermal expansion coefficient of glass fiber-reinforced polymer hybrid composites filled with hollow spheres
The optimal performance of composites enriched with hollow spheres has been reported in contemporary literature, whereas their thermal properties have received less attention. In this regard, a finite element method (FEM)-based micromechanical model has been developed systematically to investigate the role of intra-matrix embedding of hollow spheres on the thermal conductivity and coefficient of thermal expansion (CTE) of unidirectional fiber-reinforced hybrid composites. In so doing, the concept of representative volume element (RVE) considers microstructures comprising an epoxy matrix, E-glass fiber, and E-glass hollow spheres, assuming perfect bonding (ideal interface) between the components and modified approximate periodic boundary conditions. By computing the longitudinal and transverse temperature gradients generated due to the application of uniform heat flux as well as the geometrical variation in RVE owing to temperature enhancement, thermal conductivity and CTE have been respectively determined. Comprehensive evaluations have been conducted to examine the effects of microstructural-level features, including fiber volume content and orientation, plus volume content and thickness of hollow spheres, on the effective thermal conductivity and CTE of pseudo-porous ternary E-glass/epoxy composites.
期刊介绍:
Consistently ranked in the top 10 of the Thomson Scientific JCR, the Journal of Composite Materials publishes peer reviewed, original research papers from internationally renowned composite materials specialists from industry, universities and research organizations, featuring new advances in materials, processing, design, analysis, testing, performance and applications. This journal is a member of the Committee on Publication Ethics (COPE).