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聚乙烯中的 Mullins 效应及其对结晶度的依赖性:一种网络改变模型。

Mullins effect in polyethylene and its dependency on crystal content: A network alteration model.

机构信息

Mechanical Engineering Department, American University of Beirut, PO Box 11-0236, Beirut, Lebanon.

Mechanical Engineering Program, Texas A&M University at Qatar, Doha, Qatar; Industrial and Manufacturing Systems Engineering department, University of Michigan Dearborn, MI 48128, USA.

出版信息

J Mech Behav Biomed Mater. 2017 Nov;75:442-454. doi: 10.1016/j.jmbbm.2017.04.022. Epub 2017 Apr 27.

Abstract

This contribution is focused on the Mullins effect in polyethylene. An ultra-low-density polyethylene with 0.15 crystal content, a low-density polyethylene with 0.3 crystal content and a high-density polyethylene with 0.72 crystal content are subjected to cyclic stretching over a large strain range. Experimental observations are first reported to examine how the crystal content influences the Mullins effect in polyethylene. It is found that the cyclic stretching is characterized by a stress-softening, a hysteresis and a residual strain, whose amounts depends on the crystal content and the applied strain. A unified viscohyperelastic-viscoelastic-viscoplastic constitutive model is proposed to capture the polyethylene response over a large strain range and its crystal-dependency. The macro-scale polyethylene response is decomposed into two physically distinct sources, a viscoelastic-viscoplastic intermolecular part and a viscohyperelastic network part. The local inelastic deformations of the rubbery amorphous and crystalline phases are considered by means of a micromechanical treatment using the volume fraction concept. Experimentally-based material kinetics are designed by considering the Mullins effect crystal-dependency and are introduced into the constitutive equations to capture the experimental observations. It is shown that the model is able to accurately reproduce the Mullins effect in polyethylene over a large strain range. The inherent deformation mechanisms are finally presented guided by the proposed constitutive model.

摘要

这篇论文主要研究了聚乙烯中的 Mullins 效应。我们对三种不同的聚乙烯(超高分子量聚乙烯,结晶度为 0.15;低密度聚乙烯,结晶度为 0.3;高密度聚乙烯,结晶度为 0.72)进行了大应变循环拉伸实验,首次报道了结晶度对聚乙烯 Mullins 效应的影响。研究发现,循环拉伸表现出应力软化、滞后和残余应变等现象,其大小取决于结晶度和施加的应变。为了捕捉大应变范围内聚乙烯的响应及其结晶依赖性,我们提出了一个统一的黏超弹-黏弹-黏塑性本构模型。通过使用体积分数概念的细观力学处理,考虑了橡胶态非晶相和晶相的局部非弹性变形。基于实验的材料动力学通过考虑 Mullins 效应的结晶依赖性来设计,并引入本构方程以捕捉实验观察结果。结果表明,该模型能够准确地再现大应变范围内聚乙烯的 Mullins 效应。最后,根据所提出的本构模型,给出了内在的变形机制。

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