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Prediction of thermomechanical behavior of acrylonitrile butadiene styrene using a newly developed nonlinear damage-reliability model

机译:使用新开发的非线性损伤-可靠性模型预测丙烯腈-丁二烯-苯乙烯的热机械行为

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The aim of this work was to evaluate the influence of temperature on the mechanical behavior of an amorphous polymer, namely acrylonitrile butadiene styrene (ABS), based on a series of uniaxial tensile tests on smooth specimens at different temperatures. The results demonstrate that the behavior of the polymers is strongly dependent on the temperature. Its influence on the physical characteristics during the study of polymer behaviors cannot be denied, particularly when the processes of shaping are investigated, which require significant contributions of heat and mechanical effort. For this reason, this study consists of predicting the evolution of ABS damage in two main zones. The first is the industrial zone, in which the configuration of macromolecular chains is largely immobile, and the temperature is below the glass temperature (Tg = 110°C). In this zone, a damage model based on the obtained experimental results allowed us to determine three stages of damage evolution, and then to specify the critical fraction of life, at which the material becomes unstable and defective, for the purpose of predictive maintenance. The second zone is that of thermoforming, in which the temperature is above the glass temperature, Tg. In this zone, the macromolecular chains tend to move more freely as the temperature increases. The same damage model was adopted to follow the flow process according to the fraction of life that represents the critical material parameter. This study also includes a comparison between the static (experimental) damage models and unified theory (theoretical) damage models.
机译:这项工作的目的是基于在不同温度下对光滑试样进行的一系列单轴拉伸试验,评估温度对无定形聚合物即丙烯腈丁二烯苯乙烯(ABS)的机械性能的影响。结果表明,聚合物的行为强烈依赖于温度。在聚合物行为研究中,它对物理特性的影响不可否认,尤其是在研究成型过程时,这需要热量和机械作用的显着贡献。因此,本研究包括预测两个主要区域中ABS损伤的演变。第一个是工业区,其中大分子链的构型在很大程度上不动,温度低于玻璃温度(Tg = 110°C)。在该区域中,基于获得的实验结果的损伤模型使我们能够确定损伤演化的三个阶段,然后指定寿命的关键部分,在该关键部分,材料变得不稳定和有缺陷,以进行预测性维护。第二个区域是热成型区域,其中温度高于玻璃温度Tg。在该区域,随着温度的升高,大分子链趋于自由移动。根据代表关键材料参数的寿命分数,采用相同的损伤模型跟踪流动过程。该研究还包括静态(实验)损伤模型与统一理论(理论)损伤模型之间的比较。

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