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Micromechanical analysis of the effective elastic properties of carbon nanotube reinforced composites

机译:碳纳米管增强复合材料有效弹性的微力学分析

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Effective elastic properties for carbon nanotube reinforced composites are obtained through a variety of micromechan-ics techniques. Using the in-plane elastic properties of graphene, the effective properties of carbon nanotubes are calculated utilizing a composite cylinders micromechanics technique as a first step in a two-step process. These effective properties are then used in the self-consistent and Mori-Tanaka methods to obtain effective elastic properties of composites consisting of aligned single or multi-walled carbon nanotubes embedded in a polymer matrix. Effective composite properties from these averaging methods are compared to a direct composite cylinders approach extended from the work of Z. Hashin and B. Rosen [1964. The elastic moduli of fiber-reinforced materials. Journal of Applied Mechanics 31, 223-232] and R. Christensen and K. Lo [1979. Solutions for effective shear properties in three phase sphere and cylinder models. Journal of the Mechanics and Physics of Solids 27, 315-330]. Comparisons with finite element simulations are also performed. The effects of an interphase layer between the nanotubes and the polymer matrix as result of functionalization is also investigated using a multi-layer composite cylinders approach. Finally, the modeling of the clustering of nanotubes into bundles due to interatomic forces is accomplished herein using a tessellation method in conjunction with a muiti-phase Mori-Tanaka technique. In addition to aligned nanotube composites, modeling of the effective elastic properties of randomly dispersed nanotubes into a matrix is performed using the Mori-Tanaka method, and comparisons with experimental data are made.
机译:碳纳米管增强复合材料的有效弹性性能是通过多种微机械技术获得的。使用石墨烯的面内弹性特性,使用复合圆柱体微力学技术作为两步过程的第一步,计算出碳纳米管的有效特性。然后,将这些有效特性用于自洽和Mori-Tanaka方法中,以获得由嵌入聚合物基体中的对齐的单壁或多壁碳纳米管组成的复合材料的有效弹性特性。将这些求平均值方法的有效复合材料性能与Z.Hashin和B.Rosen [1964。纤维增强材料的弹性模量。应用力学学报31,223-232]和R. Christensen和K. Lo [1979。三相球体和圆柱体模型中有效剪切特性的解决方案。固体力学和物理学杂志27,315-330]。还进行了与有限元模拟的比较。还使用多层复合圆柱体方法研究了纳米管和聚合物基质之间的相间层作为功能化的结果。最后,在本文中使用细分方法结合多相森-田中技术完成了由于原子间力导致的纳米管簇成束的建模。除了排列的纳米管复合材料外,还使用Mori-Tanaka方法对随机分散的纳米管在基质中的有效弹性特性进行建模,并与实验数据进行比较。

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