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首页> 外文期刊>Advances in Engineering Software >Computational efficiency and accuracy of sequential nonlinear cyclic analysis of carbon nanotube nanocomposites
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Computational efficiency and accuracy of sequential nonlinear cyclic analysis of carbon nanotube nanocomposites

机译:碳纳米管纳米复合材料的顺序非线性循环分析的计算效率和准确性

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摘要

The accuracy and efficiency of a numerical strategy for sequential nonlinear cyclic analyses of carbon nanotube nanocomposites are investigated. The computational approach resorts to a nonlinear 3D finite element implementation that seeks to solve the cyclic hysteretic response of the nanocomposite. A variant of the Newton-Raphson method within a time integration scheme is proposed whereby the elastic tangent matrix is chosen as iteration matrix without paying the price of its iterative update. This is especially rewarding in the context of the employed mechanical model which exhibits hysteresis manifested through a discontinuous change in the stiffness at the reversal points where the loading direction is reversed. Key implementation aspects - such as the integration of the nonlinear 3D equations of motion, the numerical accuracy/efficiency as a function of the time step or the mesh size - are discussed. In particular, efficiency is regarded as performing fast computations especially when the number of cyclic analyses becomes large. By making use of laptop CPU cores, a good speed of computations is achieved not only through parallelization but also employing a caching procedure for the iteration matrix.
机译:研究了碳纳米管纳米复合材料的顺序非线性循环分析数值策略的准确性和效率。该计算方法求助于非线性3D有限元实现,该实现试图解决纳米复合材料的循环滞后响应。提出了牛顿-拉夫森方法在时间积分方案中的一种变体,其中选择弹性正切矩阵作为迭代矩阵,而无需付出其迭代更新的代价。在所采用的机械模型的情况下,这尤其有益,该机械模型表现出通过在载荷方向相反的反向点处的刚度的不连续变化而表现出的磁滞现象。讨论了关键的实现方面,例如非线性3D运动方程的积分,数值精度/效率随时间步长或网格尺寸的变化。尤其是,当循环分析的数量变多时,效率被视为执行快速计算。通过使用笔记本电脑的CPU内核,不仅可以通过并行化还可以为迭代矩阵采用缓存过程,从而可以实现良好的计算速度。

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