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Interphase layer theory and application in the mechanics of composite materials

机译:相间层理论及其在复合材料力学中的应用

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摘要

In the present research work the interphase layer model is developed as a continuum media with local cohesion and adhesion effects. By the model it was found that these effects can help to understand/predict macro/micro mechanics of the material, if the boundary conditions and phase effects are modeled across the length scales. This paper describes the kinematics of continuum media, the formulation of governing equations (fundamentals) and the statement of boundary conditions for multi-scale modeling of the material. An approach and the model has been validated to predict some basic mechanical properties of a polymeric matrix reinforced with nanoscale particles/fibres/tubes (including carbon nanotubes) as a function of size and also dispersion of nanoparticles. Presented mathematical model of an interphase layer allows estimating an interaction around and nearby interfaces of nanoparticle and material matrix. Using these approaches the prediction methodology and modeling tools have been developed by numerical simulations and analysis of the mechanical properties across the length scales. Results of the work will provide a platform for the development and understanding of nanoparticle-reinforced materials that are light-weight, vibration and shock resistant.
机译:在当前的研究工作中,将相间层模型开发为具有局部内聚和粘附效应的连续介质。通过该模型发现,如果在长度范围内对边界条件和相效应进行建模,则这些效应可以帮助理解/预测材料的宏观/微观力学。本文介绍了连续介质的运动学,控制方程(基本原理)的制定以及材料多尺度建模的边界条件声明。一种方法和模型已经过验证,可以预测纳米级颗粒/纤维/管(包括碳纳米管)增强的聚合物基体的一些基本机械性能随尺寸以及纳米颗粒分散性的变化。提出的相间层的数学模型允许估计纳米颗粒和材料基质周围和附近界面之间的相互作用。使用这些方法,通过数值模拟和跨长度标尺的机械性能分析,开发了预测方法和建模工​​具。这项工作的结果将为开发和理解轻质,抗振动和抗冲击的纳米颗粒增强材料提供一个平台。

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