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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >A thermo-elasto-viscoplastic constitutive model for polymers
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A thermo-elasto-viscoplastic constitutive model for polymers

机译:聚合物的热弹-粘塑性本构模型

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In this study, a thermo-elasto-viscoplastic model is developed for a low density cross linked polyethylene (XLPE) in an attempt to describe the combined effects of temperature and strain rate on the stress-strain response and the self-heating of the material at elevated strain rates. The proposed model consists of two parts. On the one side, Part A models the thermo-elastic and thermo-viscoplastic response, and incorporates an elastic Hencky spring in series with two Ree-Eyring dashpots. The two Ree-Eyring dashpots represent the effects of the main alpha relaxation and the secondary beta relaxation processes on the plastic flow. Part B, on the other side, consists of an eight chain spring capturing the entropic strain hardening due to alignment of the polymer chains during deformation. The constitutive model was implemented in a nonlinear finite element (FE) code using a semi-implicit stress update algorithm combined with sub-stepping and a numerical scheme to calculate the consistent tangent operator. After calibration to available experimental data, FE simulations with the constitutive model are shown to successfully describe the stress-strain curves, the volumetric strain, the local strain rate and the self-heating observed in the tensile tests. In addition, the FE simulations adequately predict the global response of the tensile tests, such as the force-displacement curves and the deformed shape of the tensile specimen. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在这项研究中,为低密度交联聚乙烯(XLPE)开发了一种热弹-粘塑性模型,试图描述温度和应变速率对材料的应力-应变响应和自热的综合影响。在高应变率下。提出的模型包括两个部分。一方面,A部分模拟了热弹和热粘塑性响应,并结合了一个弹性的Hencky弹簧和两个Ree-Eyring阻尼器。两个Ree-Eyring阻尼器代表主要的α弛豫和次要的β弛豫过程对塑性流动的影响。另一方面,B部分由一个八链弹簧组成,该八链弹簧捕获了由于变形过程中聚合物链的对准而引起的熵应变硬化。本构模型是在非线性有限元(FE)代码中使用半隐式应力更新算法结合子步长和数值方案来计算一致的切线算子而实现的。在对可用的实验数据进行校准之后,使用本构模型进行的有限元模拟可以成功地描述拉伸试验中观察到的应力-应变曲线,体积应变,局部应变率和自热。此外,有限元模拟可以充分预测拉伸试验的整体响应,例如力-位移曲线和拉伸试样的变形形状。 (C)2018 Elsevier Ltd.保留所有权利。

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