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气体反压对微孔注塑与传统注塑聚丙烯部件之间的表面粗糙度、形态及拉伸强度的影响

Effect of Gas Counter Pressure on the Surface Roughness, Morphology, and Tensile Strength between Microcellular and Conventional Injection-Molded PP Parts.

作者信息

Ren Jianping, Lin Long, Jiang Jing, Li Qian, Hwang Shyh-Shin

机构信息

Mould Research Institute, Taizhou Vocational College of Science and Technology, Taizhou 318020, China.

National International Joint Research Center Micro-Nano Molding Technology, Zhengzhou University, Zhengzhou 450001, China.

出版信息

Polymers (Basel). 2022 Mar 8;14(6):1078. doi: 10.3390/polym14061078.

Abstract

Microcellular injection-molded parts have surface defect problems. Gas counter pressure (GCP) is one of the methods to reduce surface defects. This study investigated the effect of GCP on the surface roughness, morphology, and tensile strength of foamed and conventional injection-molded polypropylene (PP) products. GCP is generated by filling up the mold cavity with nitrogen during the injection-molding (IM) process. It can delay foaming and affect flow characteristics of microcellular and conventional injection-molding, which cause changes in the tensile strength, flow length, cell morphology, and surface quality of molded parts. The mechanism was investigated through a series of experiments including tuning of GCP and pressure holding duration. Surface roughness of the molded parts decreased with the increase in GCP and pressure holding duration. Compared to microcellular IM, GCP-assisted foaming exhibited much better surface quality and controllable skin layer thickness.

摘要

微注塑成型零件存在表面缺陷问题。气体反压(GCP)是减少表面缺陷的方法之一。本研究调查了气体反压对发泡和传统注塑聚丙烯(PP)产品的表面粗糙度、形态和拉伸强度的影响。气体反压是在注塑过程中通过向模具型腔充入氮气产生的。它可以延迟发泡,并影响微注塑和传统注塑的流动特性,从而导致成型零件的拉伸强度、流动长度、泡孔形态和表面质量发生变化。通过一系列实验,包括调整气体反压和保压时间,对其机理进行了研究。成型零件的表面粗糙度随着气体反压和保压时间的增加而降低。与微注塑相比,气体反压辅助发泡表现出更好的表面质量和可控的皮层厚度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aaed/8955146/6f7fdc44b594/polymers-14-01078-g001.jpg

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