中国塑料 ›› 2012, Vol. 26 ›› Issue (01): 65-70 .DOI: 10.19491/j.issn.1001-9278.2012.01.012

• 加工与应用 • 上一篇    下一篇

高速微注射成型中熔体充填模式及裹气机理研究

张世勋 曹伟 叶曙兵 李倩 申长雨   

  1. 郑州大学橡塑模具国家工程研究中心
  • 收稿日期:2011-11-03 修回日期:1900-01-01 出版日期:2012-01-26 发布日期:2012-01-26

Study on Melt Filling Mode and Trapping Air Mechanism in High Speed Micro-injection Molding

Shixun ZHANG Wei CAO Shubing YE Qian LI Changyu SHEN   

  • Received:2011-11-03 Revised:1900-01-01 Online:2012-01-26 Published:2012-01-26
  • Contact: Shixun ZHANG

摘要: 塑料为了准确模拟聚合物熔体在型腔中的流动及前沿位置和形态,建立了熔体、气体两相流流动模型,构造了熔体流动的黏弹性本构关系,用无量纲方法建立了熔体流动前沿的气体、熔体流动的统一控制方程和本构方程,并采用水平集方法预测和跟踪熔体流动前沿,模拟了熔体在低速、中速、高速条件下的流动状态和充填模式,分析了高速微注射成型中气孔产生的原因和可能出现的位置,开展了实际产品的高速微注射成型实验,比较了模拟结果和实验结果。研究表明,熔体充填模式与注射速度、材料特性、型腔尺寸密切相关,在喷射充填模式下可能产生裹气。

关键词: 微注射成型, 两相流, 充填模式, 黏弹性模型

Abstract: In order to simulate the melt flow and melt front more precisely, mathematic models of coupled melt and air flows were formulated in terms of two phase flow theory. A viscoelastic model rather than conventional viscous model was employed to represent the relationship between stress and shear rate. To simplify the melt front simulation, a uniform mathematic model for melt and air flows at melt front was established using dimensionless parameters, and an iterative method was proposed to solve the viscoelastic flow problem. The melt front was tracked using level set method. Based on the proposed mathematic models and numerical methods, three type of flows and filling modes for low-, medium-, and high-speed micro-injection molding were investigated. In addition, the mechanism of air-trapping was analyzed and the possible location of trapped air was predicted. To verify the validity of the proposed method, a skew gear was designed and manufactured using high speed micro-injection molding. The actual trapped air location is in good agreement with the simulated results. This study showed that the filling mode depends on injection speed, material characters, and cavity size. The air-trapping was likely to occur at the jetting mode.

Key words: micro-injection moldiing, tow phase flow, filling mode, viscoelastic model