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Modelling of morphology evolution and macroscopic behaviour of intercalated PET-clay nanocomposites during semi-solid state processing

机译:半固态加工过程中插层式PET-粘土纳米复合材料的形态演变和宏观行为建模

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摘要

Morphology evolution and macroscopic stress-strain behaviour of initially intercalated PET-clay nanocomposites during semi-solid state processing were predicted using a nonlinear two-dimensional computational model. The model combined different nanocomposite length scales into a computationally-efficient, continuum and nonlinear finite element framework. The main feature of the model is its nonlinear cohesive law proposed here to describe the gallery behaviour and the phenomenon of clay platelet slippage. Our model predicted: (1) shift in the onset of macroscopic strain-stiffening caused by the increased tactoid aspect ratio and processing temperature, and (2) quantified tactoid reorientation and clay platelet slippage as a function of applied strains and processing temperatures. Our predictions were found to be in a good agreement with experimental results, and therefore the model can be used in the optimisation of the processing of PET-clay nanocomposites.
机译:使用非线性二维计算模型预测了初始插层的PET-粘土纳米复合材料在半固态加工过程中的形貌演变和宏观应力-应变行为。该模型将不同的纳米复合材料长度尺度组合成一个计算有效的,连续的和非线性的有限元框架。该模型的主要特征是这里提出的非线性内聚定律,用于描述滑道行为和粘土血小板滑移现象。我们的模型预测:(1)由于触针长宽比和加工温度升高而引起的宏观应变刚度的转变,以及(2)定量的触针取向和粘土血小板滑移是所施加应变和加工温度的函数。我们的预测与实验结果非常吻合,因此该模型可用于优化PET粘土纳米复合材料的加工。

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