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Simulation of the plug-assisted thermoforming of polypropylene using a large strain thermally coupled constitutive model

机译:大应变热耦合本构模型模拟聚丙烯的插塞辅助热成型

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Thermoforming is widely employed in industry for the manufacture of lightweight, thin-walled products from pre-extruded plastic sheet and its largest application is in packaging. Over many years attempts have been made to simulate the process and thereby exploit modern computational tools for process optimisation. However, progress in this area has been greatly hampered by insufficient knowledge of the response of polymer materials under thermoforming conditions and an inability to measure this and other processing phenomena accurately. In recent years some address has been made to these problems through advances in measurement technologies, and in particular, the development of high speed, high strain, biaxial testing machines that are designed to replicate the conditions in thermoforming processes. In this work the development of an advanced finite element-based thermoforming process simulation is presented. At its heart is a sophisticated large strain thermally coupled (LSTC) material model for polypropylene, which has been developed after several years of research and is founded directly on biaxial test results at elevated temperatures. This material model has been demonstrated to provide an excellent fit to the biaxial data and to offer a very stable computational platform for the process simulation. The performance of the working simulation was validated through comparison with matching experimental test results, and this enabled investigation of the sensitivity of the process output (in the form of part wall thickness distribution) to changes in a range of other processing parameters. This work confirmed that the process is most sensitive to the parameters controlling plug/sheet contact friction. Heat transfer parameters were also shown to be significant and the requirement for the model to be fully thermo-mechanically coupled has been clearly established.
机译:热成型在工业中被广泛采用,用于由预挤出的塑料片材制造轻质薄壁产品,其最大的应用领域是包装。多年来,人们一直在尝试模拟过程,从而利用现代计算工具进行过程优化。但是,由于对聚合物材料在热成型条件下的响应的了解不足,并且无法准确地测量这种和其他加工现象,因此极大地阻碍了该领域的进展。近年来,通过测量技术的进步,特别是高速,高应变,双轴测试机的发展,已经针对这些问题做出了一些解决方案,这些机器旨在复制热成型工艺中的条件。在这项工作中,提出了一种基于有限元的先进热成型过程仿真的开发。它的核心是用于聚丙烯的复杂的大应变热耦合(LSTC)材料模型,该模型是经过几年的研究开发的,直接基于高温下的双轴测试结果。该材料模型已被证明可以很好地拟合双轴数据,并为过程仿真提供非常稳定的计算平台。通过与匹配的实验测试结果进行比较,验证了工作模拟的性能,这使得能够研究过程输出(以零件壁厚分布的形式)对其他一系列加工参数变化的敏感性。这项工作证实了该过程对控制塞/片接触摩擦的参数最为敏感。还显示出传热参数很重要,并且已经明确建立了模型完全热机械耦合的要求。

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