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首页> 外文期刊>Theoretical and Applied Fracture Mechanics >Investigation of stress-strain behavior of single walled carbon nanotube/rubber composites by a multi-scale finite element method
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Investigation of stress-strain behavior of single walled carbon nanotube/rubber composites by a multi-scale finite element method

机译:多壁有限元方法研究单壁碳纳米管/橡胶复合材料的应力应变行为

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摘要

The excellent properties of carbon nanotubes have generated technological interests in the development of nanotube/rubber composites. This paper describes a finite element formulation that is appropriate for the numerical prediction of the mechanical behavior of rubber-like materials which are reinforced with single walled carbon nanotubes. The considered composite material consists of continuous aligned single walled carbon nanotubes which are uniformly distributed within the rubber material. It is assumed that the carbon nanotubes are imperfectly bonded with the matrix. Based on the micromechanical theory, the mechanical behavior of the composite may be predicted by utilizing a representative volume element. Within the representative volume element, the reinforcement is modeled according to its atomistic microstructure. Therefore, non-linear spring-based line elements are employed to simulate the discrete geometrical structure and behavior of the single-walled carbon nanotube. On the other hand, the matrix is modeled as a continuum medium by utilizing solid elements. In order to describe its behavior an appropriate constitutive material model is adopted. Finally, the interfacial region is simulated via the use of special joint elements of variable stiffness which interconnect the two materials in a discrete manner. Using the proposed multi-scale model, the stress-strain behavior for various values of reinforcement volume fraction and interfacial stiffness is extracted. The influence of the single walled carbon nanotube addition within the rubber is clearly illustrated and discussed.
机译:碳纳米管的优异性能已引起了纳米管/橡胶复合材料开发的技术兴趣。本文介绍了一种有限元公式,适用于用单壁碳纳米管增强的橡胶状材料的机械性能的数值预测。所考虑的复合材料由均匀排列在橡胶材料内的连续排列的单壁碳纳米管组成。假定碳纳米管与基质不完美地结合。基于微力学理论,可以通过利用代表性的体积元素来预测复合材料的机械性能。在具有代表性的体积元素内,根据其原子微观结构对钢筋进行建模。因此,基于非线性弹簧的线元素可用于模拟单壁碳纳米管的离散几何结构和行为。另一方面,通过利用实体元素将矩阵建模为连续介质。为了描述其行为,采用了适当的本构材料模型。最后,通过使用可变刚度的特殊关节元件模拟界面区域,这些关节元件以离散方式互连两种材料。使用提出的多尺度模型,提取了各种不同的钢筋体积分数和界面刚度值的应力-应变行为。橡胶中单壁碳纳米管添加的影响得到清楚地说明和讨论。

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