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Warpage control of headlight lampshades fabricated using external gas-assisted injection molding

机译:使用外部气体辅助注塑成型制造的前照灯灯罩的翘曲控制

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Headlight lampshades with an uneven part thickness and large-area complicated geometry often exhibit uneven shrinkage and considerable deformation when fabricated using injection molding. Conventional strategies for controlling shrinkage and warpage involve optimizing the gate number and location, cooling system, and mold conditions and performing annealing in a secondary process; however, conventional strategies are limited in improving the quality of injection molding. This study involved employing conventional approaches and external gas-assisted injection molding (eGAIM) to control part shrinkage and warpage effectively. The research consisted of three stages: (1) using computer simulations to optimize the mold design and molding conditions and, thus, reduce the shrinkage and warpage of headlight lampshades; (2) verifying the performance experimentally using a miniaturized geometry of the one use in (1); (3) applying eGAIM to show the potential of further improving part warpage. Simulation and experimental results indicated that optimizing the gate location facilitates improving the flow balance and reducing the filling pressure, leading to a reduction in part deformation. An optimal layout of cooling channels combined with two-stage holding conditions contributed to a superior cooling effect and low volumetric shrinkage. Parts fabricated using eGAIM exhibited less volumetric shrinkage than did parts fabricated using conventional injection molding. Moreover, annealing treatment can further reduce the deformation of molded parts. This case study investigated headlight lampshade deformation and was systematically conducted; the experimental results showed the feasibility of using eGAIM to minimize part warpage.
机译:使用注塑成型制造时,具有不均匀的零件厚度和大面积复杂几何形状的前照灯灯罩通常会出现不均匀的收缩和明显的变形。控制收缩和翘曲的常规策略包括优化浇口数量和位置,冷却系统和模具条件,并在第二步工艺中进行退火。然而,常规策略在提高注射成型质量方面受到限制。这项研究涉及采用常规方法和外部气体辅助注射成型(eGAIM)来有效控制零件的收缩和翘曲。研究包括三个阶段:(1)使用计算机模拟来优化模具设计和成型条件,从而减少前照灯灯罩的收缩和翘曲; (2)使用(1)中一种用途的小型几何结构通过实验验证性能; (3)应用eGAIM展示进一步改善零件翘曲的潜力。仿真和实验结果表明,优化浇口位置有助于改善流动平衡并降低填充压力,从而减少零件变形。冷却通道的最佳布局与两阶段的保持条件相结合,带来了出色的冷却效果和较低的体积收缩率。使用eGAIM制造的零件比使用常规注塑成型的零件表现出较小的体积收缩率。此外,退火处理可以进一步减少成型部件的变形。该案例研究调查了前照灯灯罩的变形并进行了系统的研究。实验结果表明,使用eGAIM可以最大程度地减少零件翘曲。

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