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Advanced nanoindentation simulations for carbon nanotube reinforced nanocomposites

机译:用于碳纳米管增强纳米复合材料的先进的纳米indentation模拟

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摘要

Mechanical properties of Carbon Nanotube (CNT) reinforced composites are obtained utilizing finite element (FE) method-based indentation simulations considering large strain elasto-plastic behavior of elements. This study includes nanoindentation simulations for chemically non-bonded CNT/matrix interface, including the length scale effect of nanocomposites. In order to investigate the mechanical properties of CNT reinforced nanocomposites, a number of FE models for nanoindentation tests have been simulated. Sample nanocomposites are examined to determine the suitable types of CNTs and their effectiveness as a reinforcement of different potential matrices. The Parametric study is conducted to obtain the influence of wall thickness, relative positioning, and volume fraction of CNT and strain hardening parameter of matrix on the mechanical properties of nanocomposites. The obtained results indicate that, properties such as modulus of elasticity and hardness of the nanocomposites are largely dependent on wall thickness of CNT and strain hardening parameter of the matrix. This study also suggests, the minimum wall thickness of CNT to avoid local buckling in nanocomposite which is required to be at least 0.2 nm for a diameter to thickness ratio of 5.0. Moreover, a matrix having a value of strain hardening parameter near 0.1 is expected to be significantly effective for nanocomposite.
机译:碳纳米管(CNT)加强复合材料的机械性能利用有限元(Fe)方法的凹口模拟,考虑到大规模的菌株元素的塑性塑性行为。该研究包括用于化学非键合CNT /基质界面的纳米indentation模拟,包括纳米复合材料的长度尺度效应。为了研究CNT增强纳米复合材料的机械性能,已经模拟了许多用于纳米凸缘测试的Fe模型。检查样品纳米复合材料以确定合适类型的CNT和它们作为不同潜在矩阵的加强的有效性。进行参数化研究以获得基质CNT和应变硬化参数的壁厚,相对定位和体积分数对纳米复合材料的力学性能的影响。所得结果表明,纳米复合材料的弹性模量和硬度等性质主要取决于基质的CNT和应变硬化参数的壁厚。本研究还表明,CNT的最小壁厚,以避免纳米复合材料的局部屈曲,其需要为直径为5.0的直径为至少0.2nm。此外,预期具有邻近0.1附近的应变硬化参数值的基质对于纳米复合材料是显着的。

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