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A finite deformation thermomechanical constitutive model for triple shape polymeric composites based on dual thermal transitions

机译:基于双重热转变的三重形状聚合物复合材料的有限变形热力学本构模型

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Shape memory polymers (SMPs) have gained strong research interests recently due to their mechanical action that exploits their capability to fix temporary shapes and recover their permanent shape in response to an environmental stimulus such as heat, electricity, irradiation, moisture or magnetic field, among others. Along with interests in conventional ''dual-shape'' SMPs that can recover from one temporary shape to the permanent shape, multi-shape SMPs that can fix more than one temporary shapes and recover sequentially from one temporary shape to another and eventually to the permanent shape, have started to attract increasing attention. Two approaches have been used to achieve multi-shape shape memory effects (m-SMEs). The first approach uses polymers with a wide thermal transition temperature whilst the second method employs multiple thermal transition temperatures, most notably, uses two distinct thermal transition temperatures to obtain triple-shape memory effects (t-SMEs). Recently, one of the authors' group reported a triple-shape polymeric composite (TSPC), which is composed of an amorphous SMP matrix (epoxy), providing the system the rubber-glass transition to fix one temporary shape, and an interpenetrating crystallizable fiber network (PCL) providing the system the melt-crystal transition to fix the other temporary shape. A one-dimensional (1D) material model developed by the authors revealed the underlying shape memory mechanism of shape memory behaviors due to dual thermal transitions. In this paper, a three-dimension (3D) finite deformation thermomechanical constitutive model is presented to enable the simulations of t-SME under more complicated deformation conditions. Simple experiments, such as uniaxial tensions, thermal expansions and stress relaxation tests were carried out to identify parameters used in the model. Using an implemented user material subroutine (UMAT), the constitutive model successfully reproduced different types of shape memory behaviors exhibited in experiments designed for shape memory behaviors. Stress distribution analyses were performed to analyze the stress distribution during those different shape memory behaviors. The model was also able to simulate complicated applications, such as a twisted sheet and a folded stick, to demonstrate t-SME.
机译:形状记忆聚合物(SMP)最近因其机械作用而受到了广泛的研究兴趣,这种机械作用利用它们的固定能力来应对临时性形状并响应于环境刺激(例如热,电,辐射,湿气或磁场)恢复其永久形状。其他。随着人们对可以从一种临时形状恢复为永久形状的常规“双形” SMP的关注,可以固定多个临时形状并依次从一种临时形状恢复为另一种临时形状并最终恢复为永久形状的多形状SMP。永久的形状,已经开始引起越来越多的关注。已使用两种方法来实现多形状形状记忆效果(m-SME)。第一种方法使用具有宽热转变温度的聚合物,而第二种方法使用多个热转变温度,最显着的是,使用两个不同的热转变温度来获得三重形状记忆效应(t-SMEs)。最近,一组作者报告了一种三元形状的聚合物复合材料(TSPC),它由无定形的SMP基质(环氧树脂)组成,为系统提供了橡胶玻璃过渡以固定一种临时形状的作用,并提供了互穿的可结晶纤维。网络(PCL)为系统提供熔融晶体过渡,以固定其他临时形状。作者开发的一维(1D)材料模型揭示了由于双重热转变而引起的形状记忆行为的基本形状记忆机制。本文提出了三维(3D)有限变形热力学本构模型,以使在更复杂的变形条件下能够模拟t-SME。进行了简单的实验,例如单轴拉伸,热膨胀和应力松弛测试,以识别模型中使用的参数。使用实现的用户材料子例程(UMAT),本构模型成功地重现了为形状记忆行为设计的实验中展示的不同类型的形状记忆行为。进行应力分布分析以分析那些不同形状记忆行为期间的应力分布。该模型还能够模拟复杂的应用,例如扭曲的板料和折叠的棍棒,以演示t-SME。

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