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首页> 外文期刊>Journal of Applied Polymer Science >The effects of gas counter pressure and mold temperature variation on the surface quality and morphology of the microcellular polystyrene foams
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The effects of gas counter pressure and mold temperature variation on the surface quality and morphology of the microcellular polystyrene foams

机译:气体反压和模具温度变化对微孔聚苯乙烯泡沫塑料表面质量和形貌的影响

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In this study, we developed a foaming control system using the Gas Counter Pressure (GCP) combined with mold temperature control during the microcellular injection molding (MuCell) process and investigated its influence on the parts' surface quality and foams structures. The results revealed that under GCP control alone when GCP is greater than 10 MPa, part surface roughness for transparent polystyrene (PS) improved by 90%. When GCP increased, the skin thickness also increased, the weight reduction decreased and the average cell size reduced to about 30 μm. For black PS parts, when GCP is greater than 10 MPa, the part gloss reaches the same value as that molded by conventional injection molding. By increasing gas holding time, the cell density decreased and the cell size distribution became more uniform. The increase in amount of supercritical fluid foaming agent also increased the cell density. Applying mold temperature control alone with temperature in the range of 90-120°C (near T_g), the surface roughness improved by 65%. Increasing mold temperature decreased the skin thickness; however, the cell size distribution became significantly nonuniform. It was found that thin skin, small and uniform cell size as well as good surface quality can be achieved efficiently by simultaneous combining of GCP and mold temperature control. The proposed innovative approach may lead to a significant improvement and a more broad application for MuCell process.
机译:在这项研究中,我们开发了一种在微孔注塑(MuCell)过程中使用气体反压(GCP)结合模具温度控制的发泡控制系统,并研究了其对零件表面质量和泡沫结构的影响。结果表明,当GCP大于10 MPa时,仅在GCP控制下,透明聚苯乙烯(PS)的零件表面粗糙度提高了90%。当GCP增加时,皮肤厚度也增加,重量减少减少并且平均细胞大小减小至约30μm。对于黑色PS零件,当GCP大于10 MPa时,零件光泽达到与常规注塑成型相同的值。通过增加气体保持时间,泡孔密度降低并且泡孔尺寸分布变得更均匀。超临界流体发泡剂的量的增加也增加了孔密度。单独应用模具温度控制,温度范围在90-120°C(T_g附近),表面粗糙度提高了65%。模具温度升高降低了表皮厚度;然而,细胞大小分布变得明显不均匀。发现通过同时结合GCP和模具温度控制可以有效地实现皮肤薄,小且均匀的泡孔尺寸以及良好的表面质量。所提出的创新方法可能会导致MuCell工艺的重大改进和更广泛的应用。

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