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Modeling Morphology Evolution during Injection Molding of Thermoplastic Polymers

机译:热塑性聚合物注塑成型过程中的形态演化

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The effect of temperature, pressure and flow on relaxation time (or spectrum), crystallization time, nucleation density and rate, spherulite growth rate, the interrelation among these quantities and the distributions of deformation rate and cooling time during the process all together determine the morphology distribution in the final object. A simple model linking all these quantities was developed to describe morphology evolution during polymer processing. The effect of flow on nucleation density and growth rate of an isotactic polypropylene (iPP) is described on the basis of a molecular stretch parameter and the stretch evolution is described by a simple nonlinear Maxwell model, whose relaxation time, in its turn, is determined by the molecular stretch and, obviously, temperature pressure and crystallinity [1]. The model is applied to the description of morphology evolution during the injection molding process of a very accurately characterized iPP as far as rheology, quiescent crystallization and effect of flow on nucleation and spherulitic growth rates. Main characteristics of final morphology are reproduced by the simulations.
机译:温度,压力和流动对弛豫时间(或光谱),结晶时间,成核密度和速率,球晶生长速率,这些数量的相互关系以及在过程中的变形率和冷却时间的分布在一起确定了形态分布在最终对象中。开发了一种简单的模型,所有这些数量都开发以描述聚合物加工过程中的形态学。基于分子拉伸参数描述了流动对等立方聚丙烯(IPP)的成核密度和生长速率的影响,并且通过简单的非线性麦克斯韦模型描述了一种简单的非线性麦克斯韦模型,其弛豫时间在其转弯时确定通过分子拉伸,明显,温度压力和结晶度[1]。该模型应用于在非常精确地表征IPP的注射成型过程中的形态演化描述,如流变学,静止结晶和流动对成核和球晶生长速率的影响。模拟转载了最终形态的主要特征。

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