气体-水-辅助注塑成型充填过程的数值模拟研究
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刘天(1995—),男,硕士研究生,研究方向为聚合物成型工艺。E-mail:614458897@qq.com。

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TQ320.66+2

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国家自然科学基金项目(51763016);江西省自然科学基金项目(20181BAB206014);江西省科技厅重点研发计划项目(20203BBE53065)


Numerical Simulation of the Filling Stage of Gas-Water-Assisted Injection Molding Process
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    摘要:

    针对气体-水-辅助注塑成型(GWAIM)这一新型工艺,采取数值模拟技术对其充填过程进行研究。 建立该工艺充填过程的数值模拟模型,采用 Cross-WLF 黏度模型,利用流体体积法实现对自由界面的追踪,系统研究了穿透过程及温度演变、工艺参数对 GWAIM 工艺制件残余壁厚的影响及工艺优化。 结果表明:GWAIM 工艺直管制件的残留壁厚均匀且波动范围较小,制件注气前与注水后的温度差较大;增加注气延迟时间,残余壁厚有增加的趋势;增加注水延迟时间,制品的残余壁厚小幅度增加并趋于稳定;增加注气速度和模具温度,制件的残余壁厚越小;增加注水速度和熔体注射温度,制件的残余壁厚小幅度减小;通过正交实验极差分析,得出注气延迟时间为影响制件残余壁厚的最主要因素,以及最优的工艺参数组合,即注气延迟时间 3 s、注水延迟时间 3 s、注气速度 3 m/s、注水速度 2 m/s、模具温度 320 K、熔体注射温度 503 K。

    Abstract:

    Numerical simulation technology was used to study the filling stage of gas -water -assisted injection molding (GWAIM) process which is an innovative technology. The numerical simulation model of the filling process was established. The Cross-WLF viscosity model was used and the volume of fluid was adopted to track the free interfaces. The penetration process, temperature evolution, the effects of process parameters on the residual wall thickness of the GWAIM process and process optimization were systematically studied. The results showed that the residual wall thickness was uniform and the fluctuation range was small, and the temperature difference between the parts before gas injection and after water injection was large. The residual wall thickness tended to increase with the increase of gas injection delay time. The residual wall thickness of the product increased slightly and tended to be stable with the increase of water injection delay time. With the increase of gas injection speed and mold temperature, the residual wall thickness became smaller. With the increase of water injection velocity and melt injection temperature, the residual wall thickness of the parts decreased in a small range.Through orthogonal experimental range analysis, it is concluded that the gas injection delay time is the most important factor affecting the residual wall thickness of the parts, and the optimal combination of process parameters is gas injection delay time of 3 s, water injection delay time of 3 s, gas injection speed of 3 m/s, water injection speed of 2 m/s, mold temperature of 320 K and melt injection temperature of 503 K.

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刘天,匡唐清,赖家美,柳和生,王彦卿.气体-水-辅助注塑成型充填过程的数值模拟研究[J].华东交通大学学报,2021,38(3):102-110.

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  • 在线发布日期: 2021-08-02
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