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Numerical simulation of stress-induced crystallization of injection molded semicrystalline thermoplastics.

机译:注塑半结晶热塑性塑料应力诱导结晶的数值模拟。

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摘要

Injection molded semicrystalline plastic products exhibit variable morphology along their thickness directions. The processing conditions have a significant effect on the crystallinity distribution in the final parts. However, because of the lack of sound theoretical models for stress-induced crystallization kinetics in thermoplastics, simulations of the injection molding process of semicrystalline plastics with the consideration of stress-induced crystallization have been scarce.; A stress-induced crystallization model for semicrystalline plastics is proposed based on the theory that stress induced orientation of polymer chains increase the melting temperature of the plastics, and hence, the supercooling which is the driving force for crystallization. By assuming that the effect of stress on crystallization is only by increasing the equilibrium melting temperature, the basic quiescent state crystallization equation can be directly applied to model stress-induced crystallization kinetics. A simple experimental technique such as rotational rheometric measurement, can be used to determine the melting temperature shift. The model predicts the most prominent features of stress-induced crystallization: with the application of shear stress, crystallization rate becomes higher, the crystallization temperature range is broadened and the peak of crystallization rate shifts to higher temperatures. The main advantage of the model is that the parameters in the quiescent state crystallization model do not change and the parameters in the equilibrium melting temperature shift model are easy to determine. And the unknown constants are kept to a minimum.; The injection molding process of semicrystalline plastics was simulated with the proposed stress-induced crystallization model. A pseudo-concentration method was used to track the melt front advancement. The simple Maxwell stress relaxation model in combination with WFL equation was used to investigate the importance of stress relaxation on the development of crystallinity during the injection molding. Simulations were carried out under different processing conditions to investigate the effect of processing parameters on the crystallinity of the final part. Other results such as skin layer build-up and mold pressure were also simulated. The simulation results reproduced most of the features that were obtained by the experiments reported in the literature.
机译:注射成型的半结晶塑料产品沿其厚度方向呈现出不同的形态。加工条件对最终零件的结晶度分布有重大影响。但是,由于缺乏合理的理论模型来模拟热塑性塑料中的应力诱发的结晶动力学,因此很少考虑到应力诱发的结晶来模拟半结晶塑料的注射成型过程。提出了一种基于应力诱导的半结晶塑料结晶模型,该模型基于应力诱导的聚合物链取向增加了塑料的熔融温度,因此过冷是结晶的驱动力。通过假设应力对结晶的影响仅是通过增加平衡熔化温度来完成的,基本静态结晶方程可以直接应用于应力诱导的结晶动力学模型。可以使用简单的实验技术(例如旋转流变测量)来确定熔融温度的变化。该模型预测了应力诱发结晶的最显着特征:随着剪切应力的施加,结晶速率变高,结晶温度范围变宽,并且结晶速率的峰值移至更高的温度。该模型的主要优点是静态结晶模型中的参数不变,并且平衡熔融温度变化模型中的参数易于确定。并且未知常数保持最小。利用所提出的应力诱导结晶模型模拟了半结晶塑料的注射成型过程。使用伪浓缩法来跟踪熔体前沿的发展。简单的麦克斯韦应力松弛模型结合WFL方程用于研究应力松弛对注塑成型过程中结晶度发展的重要性。在不同的加工条件下进行了仿真,以研究加工参数对最终零件结晶度的影响。还模拟了其他结果,例如表皮层堆积和霉菌压力。仿真结果重现了文献报道的实验所获得的大多数功能。

著录项

  • 作者

    Guo, Jianxin.;

  • 作者单位

    New Jersey Institute of Technology.;

  • 授予单位 New Jersey Institute of Technology.;
  • 学科 Engineering Mechanical.; Plastics Technology.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;整形外科学(修复外科学);
  • 关键词

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