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首页> 外文期刊>Journal of Applied Polymer Science >Indentation test as a tool for monitoring the solidification process during injection molding
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Indentation test as a tool for monitoring the solidification process during injection molding

机译:压痕测试作为监控注塑过程中凝固过程的工具

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An inline method for monitoring the solidification process during the injection molding of semicrystalline polymers is demonstrated. The method has been applied to various poly(ethylene terephthalate) (PET) and poly(buthylene terephthalate) (PBT) samples. The technique is based on a simple device by which an additional ejector pin is pushed onto the injection-molded part with a fixed force at different times during the solidification phase while the mold remains closed. The residual deformation (the so-called indentation depth) due to the applied load is measured offline after ejection. By the performance of indentation at different times during the cooling phase, an indentation depth profile, that is, the residual deformation as a function of time, is obtained. With a simplified solid/liquid two-phase model, the evolution of the solidification front in the mold as a function of the cooling time can be determined from the indentation curve. The obtained experimental results agree well with calculations based on the classical theory of heat penetration. Descriptions of several materials (including PET and PBT) with variations in the molecular weight (PET) have been obtained under different operating conditions (various mold temperatures, holding pressures, and indentation pressures). The results show that the indentation test may be regarded as a powerful tool for monitoring the solidification process during injection molding and, therefore, for optimizing injection-molding processing conditions according to material characteristics. (C) 2003 Wiley Periodicals, Inc. [References: 36]
机译:演示了一种在线方法,用于监控半结晶聚合物注塑过程中的固化过程。该方法已应用于各种聚对苯二甲酸乙二醇酯(PET)和聚对苯二甲酸丁二醇酯(PBT)样品。该技术基于一种简单的设备,通过该设备,在凝固阶段,模具保持闭合状态时,可以在不同的时间以固定的力将附加的顶针推入注塑件上。在弹出后,离线测量由于施加的载荷引起的残余变形(所谓的压痕深度)。通过在冷却阶段的不同时间进行压痕,可以获得压痕深度曲线,即残余变形随时间的变化。使用简化的固/液两相模型,可以根据压痕曲线确定模具中凝固前沿随冷却时间的变化。获得的实验结果与基于经典热渗透理论的计算结果非常吻合。在不同的操作条件(不同的模具温度,保压压力和压痕压力)下,已经获得了分子量(PET)变化的几种材料(包括PET和PBT)的描述。结果表明,压痕测试可以作为监测注塑过程中凝固过程的有力工具,因此可以根据材料特性优化注塑工艺条件。 (C)2003 Wiley Periodicals,Inc. [参考:36]

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