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Thermomechanical Modeling of Amorphous Glassy Polymer Undergoing Large Viscoplastic Deformation: 3-Points Bending and Gas-Blow Forming

机译:经历大的粘塑性变形的非晶态玻璃态聚合物的热力学建模:三点弯曲和吹气成型

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摘要

Polymeric products are mostly manufactured by warm mechanical processes, wherein large viscoplastic deformation and the thermomechanical coupling effect are highly involved. To capture such intricate behavior of the amorphous glassy polymers, this paper develops a finite-strain and thermomechanically-coupled constitutive model, which is based on a tripartite decomposition of the deformation gradient into elastic, viscoplastic, and thermal components. Constitutive equations are formulated with respect to the spatial configuration in terms of the Eulerian Hencky strain rate and the Jaumann rate of Kirchhoff stress. Hyperelasticity, the viscoplastic flow rule, strain softening and hardening, the criterion for viscoplasticity, and temperature evolution are derived within the finite-strain framework. Experimental data obtained in uniaxial tensile tests and three-point bending tests of polycarbonates are used to validate the numerical efficiency and stability of the model. Finally, the proposed model is used to simulate the gas-blow forming process of a polycarbonate sheet. Simulation results demonstrate well the capability of the model to represent large viscoplastic deformation and the thermomechanical coupling effect of amorphous glassy polymers.
机译:聚合物产品大部分是通过热机械工艺制造的,其中涉及很大的粘塑性变形和热机械耦合作用。为了捕获无定形玻璃态聚合物的这种复杂行为,本文建立了一个有限应变和热机械耦合的本构模型,该模型基于将变形梯度分解为弹性,粘塑性和热组分的三方分解。关于空间构型,根据欧拉·亨克应变率和基尔霍夫应力的乔曼率来构造本构方程。超弹性,粘塑性流动规律,应变软化和硬化,粘塑性准则和温度演变在有限应变框架内得出。在聚碳酸酯的单轴拉伸试验和三点弯曲试验中获得的实验数据用于验证模型的数值效率和稳定性。最后,将所提出的模型用于模拟聚碳酸酯板的吹气成型过程。仿真结果很好地证明了该模型能够代表大的粘塑性变形以及非晶态玻璃状聚合物的热机械耦合效应。

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