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Thin-wall injection molding of polypropylene using molds with different laser-induced periodic surface structures

机译:聚丙烯的薄壁注射成型使用具有不同激光诱导的周期性表面结构的模具

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摘要

In injection molding, high pressure is required to completely replicate the mold geometry, due to the viscosity of thermoplastic polymers, the reduced thickness of the cavity, and the low mold temperature. The reduction of the drag required to fill a thin-wall injection molding cavity can be promoted by inducing the strong slip of the polymer melt over the mold surface, which occurs within the first monolayer of macromolecules adsorbed at the wall. In this work, the effects of different laser-induced periodic surface structures (LIPSS) topographies on the reduction of the melt flow resistance of polypropylene were characterized. Ultrafast laser processing of the mold surface was used to manufacture nano-scale ripples with different orientation and morphology. Moreover, the effects of those injection molding parameters that mostly affect the interaction between the mold surface and the molten polymer were evaluated. The effect of LIPSS on the slip of the polymer melt was modeled to understand the effect of the different treatments on the pressure required to fill the thin-wall cavity. The results show that LIPPS can be used to treat injection mold surfaces to promote the onset of wall slip, thus reducing the injection pressure up to 13%. POLYM. ENG. SCI., 2019. (c) 2019 Society of Plastics Engineers
机译:在注塑成型中,由于热塑性聚合物的粘度,腔的厚度减小和低模压,需要高压来完全复制模具几何形状。通过诱导在模具表面上诱导聚合物熔体的强滑移,可以促进填充薄壁注射成型腔所需的阻力的减少,这发生在吸附在壁上的第一单层的大分子中。在这项工作中,表征了不同激光诱导的周期性表面结构(嘴唇)在聚丙烯的熔体流动性降低降低的地形。模具表面的超快激光加工用于制造具有不同取向和形态的纳米级涟漪。此外,评价主要影响模塑表面与熔融聚合物之间的相互作用的注射成型参数的影响。唇缘对聚合物熔体滑动的影响被建模以了解不同处理对填充薄壁腔的压力的影响。结果表明,Lipps可用于治疗注塑模具,以促进壁板的发作,从而将注射压力降低至13%。聚合物。 eng。 SCI。,2019年。(c)2019塑料工程师协会

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