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A variable order fractional constitutive model of the viscoelastic behavior of polymers

机译:聚合物粘弹性行为的分数阶本构模型

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The multiple timescale evolution of polymers' microstructure due to an applied load is a well-known challenge in building models that accurately predict its mechanical behavior during deformation. Here, a constitutive model involving a variable order fractional derivative with piecewise definition is presented to describe the viscoelasticity of polymers under the condition of uniaxial loading at constant strain rates. It is shown that our model requires three parameters for small strains while five parameters are defined for large deformations. By comparing the predictions made by the proposed model with published experimental data and an existing model for polymers, we demonstrate that our model has higher accuracy while it benefits from its simple form of linearly decreasing order function to predict large deformations. An illustration based on the mechanism of molecular chain resistance indicates that the hardening process and the rate dependence of polymers are captured by the variation of fractional order. We conclude that the evolution of microstructure and mechanical properties of polymers during deformation is well represented by the variable order fractional constitutive model.
机译:由于要施加载荷,聚合物微观结构在多个时间尺度上的演化是在精确预测变形过程中其机械行为的建筑模型中的一项众所周知的挑战。在这里,提出了一个具有分段定义的可变阶分数导数的本构模型,用于描述在恒定应变速率下单轴载荷条件下聚合物的粘弹性。结果表明,对于小应变,我们的模型需要三个参数,而对于大变形,则需要定义五个参数。通过将所提出的模型与已发布的实验数据以及现有的聚合物模型进行比较,我们证明了我们的模型具有更高的准确性,而它受益于线性递减阶函数的简单形式来预测大变形。基于分子链抗性机理的图示表明,聚合物的硬化过程和速率依赖性通过分数阶的变化来捕获。我们得出的结论是,在变形过程中,聚合物的微观结构和力学性能的演化可以很好地表示为可变阶分数本构模型。

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