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The influence of processing parameters on thin-wall gas assisted injection molding of thermoplastic materials

机译:工艺参数对热塑性材料薄壁气体辅助注射成型的影响

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Thin-wall gas assisted injection molding of thermoplastics has become an important process in industry because of its light weight, relatively lower resin cost per part, and faster cycle time. This report is devoted to investigate the effects of different processing parameters on the length of gas penetration in thin-wall gas assisted injection molded parts. The first part of this report is to find ways to optimize the gas penetration of molded parts. An L'18 experimental matrix design based on the Taguchi method was conducted to investigate the processing parameters that affect the length of gas penetration in thin-wall gas assisted injection molded parts. The second part of this report is to identify the relative significance of each processing parameter on the gas penetration of molded products. Two material were used in the study: an amorphous acrylonitrile-butadiene-styrene (ABS), and a semi-crystalline polypropylene (PP). Experiments were carried out on an 80-ton reciprocating injection molding machine equipped with a high pressure gas injection unit. A plate cavity of various thicknesses (0.6, 1.2 and 2.0 mm) with a gas channel across the center was used for the experiments. After molding,t he length of gas penetration in the molded parts was determined. For ABS materials, melt temperature and gas pressure were found to be the principal parameters affecting the thin-wall gas assisted injection molded parts, while for PP materials, the gas pressure and gas injection delay time were found to be the key processing parameters. In addition, warpage of molded parts was found to decrease with the length of gas penetration.
机译:热塑性薄壁气体辅助注塑成型因其重量轻,每件树脂成本相对较低以及循环时间较短而已成为工业上的重要工艺。该报告致力于研究不同工艺参数对薄壁气体辅助注射成型零件中气体渗透长度的影响。本报告的第一部分是寻找优化成型零件的气体渗透的方法。进行了基于Taguchi方法的L'18实验矩阵设计,以研究影响薄壁气体辅助注射成型零件中气体渗透长度的加工参数。该报告的第二部分是确定每种加工参数对模塑产品气体渗透的相对重要性。研究中使用了两种材料:无定形丙烯腈-丁二烯-苯乙烯(ABS)和半结晶聚丙烯(PP)。实验是在配备有高压气体注射装置的80吨往复式注射成型机上进行的。实验使用了各种厚度(0.6、1.2和2.0毫米)的板腔,该板腔具有穿过中心的气体通道。成型后,确定气体在成型部件中的渗透长度。对于ABS材料,发现熔融温度和气压是影响薄壁气体辅助注射成型零件的主要参数,而对于PP材料,发现气压和气体喷射延迟时间是关键的加工参数。另外,发现成型零件的翘曲随着气体渗透的长度而减小。

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