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首页> 外文期刊>Polymer engineering and science >Numerical Simulation of the Thermodependant Viscohyperelastic Behavior of Polyethylene Terephthalate Near the Glass Transition Temperature: Prediction of the Self-Heating During Biaxial Tension Test
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Numerical Simulation of the Thermodependant Viscohyperelastic Behavior of Polyethylene Terephthalate Near the Glass Transition Temperature: Prediction of the Self-Heating During Biaxial Tension Test

机译:接近玻璃化温度的聚对苯二甲酸乙二酯热依赖性粘超弹性行为的数值模拟:双轴拉伸试验中自热的预测

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The poly ethylene terephthalate near the glass transition temperature highlights a strongly non linear elastic and viscous behaviour when biaxially stretched at high strain rates representative of the injection stretch blow moulding process. A non linear visco-hyperelastic model, where characteristics are coupled to the temperature, has already been identified from equi-biaxial tension experimental results. The weak form of the mechanical part of the model is presented and implemented into a finite element code developed in the Matlab environment and validated by comparing numerical simulation of equi-biaxial testing with the analytical solution in the isothermal case. Considering the thermal aspects, an experimental study, where PET sheets are heated using infrared (IR for short) lamps is also presented. The modeling of the IR radiation of the sheet helps to identify the thermal properties of the PET. The thermal model is then implemented in the finite element code, coupled to the 2D viscoelastic model. A discussion is made to justify the accuracy of the assumption made on homogeneity of the temperature field through the thickness. The simulation of the 2D plane stress equibiaxial test shows the important influence of the thermal aspects and the coupled thermo-mechanical software is used to quantify the self-heating phenomenon in the case of the biaxial elongations of PET sheets at high strain rates.
机译:当在代表注射拉伸吹塑工艺的高应变速率下双轴拉伸时,接近玻璃化转变温度的聚对苯二甲酸乙二酯突出显示出强烈的非线性弹性和粘性。已经从等双轴拉伸实验结果中确定了一个将特性与温度耦合的非线性粘超弹性模型。提出了模型机械部分的弱形式,并将其实现为在Matlab环境中开发的有限元代码,并通过将等双轴试验的数值模拟与等温情况下的解析解进行比较来进行验证。考虑到热方面,还提出了一项实验研究,其中使用红外(简称IR)灯加热PET板。片材的IR辐射的建模有助于识别PET的热性能。然后,将热模型以有限元代码的形式实现,并与2D粘弹性模型耦合。进行讨论以证明通过厚度对温度场均匀性所作假设的准确性。二维平面应力等双轴试验的仿真显示了热方面的重要影响,并且在高应变速率下,PET板的双轴伸长情况下,使用耦合的热机械软件来量化自热现象。

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