Liu Ying, Zhu Tieli, Bi Jie, Hua Weijian, Yu Tongmin, Jin Yifei, Zhao Danyang
Engineering Research Center for Molding Product of Ministry of Education, Dalian University of Technology, Dalian 116024, Liaoning, China.
School of Mechanical Engineering, Dalian University of Technology, Dalian 116024, Liaoning, China.
Polymers (Basel). 2020 Nov 28;12(12):2828. doi: 10.3390/polym12122828.
Polymeric parts have been increasingly used in various engineering fields. The performance of polymeric parts is significantly affected by working-environment-induced aging. In this paper, an ultrasonic-vibration-assisted injection molding system was designed and utilized to fabricate polymeric parts from isotactic polypropylene (iPP) using different processing conditions. The natural aging experiments were performed to age the fabricated iPP parts for one year. The effects of key process parameters as well as ultrasound power on the microstructures and the mechanical properties of the iPP parts after aging were systematically investigated using X-ray diffraction analysis, Fourier transform infrared analysis, scanning electron microscope imaging, and tensile testing. It is found that both the microstructures and the tensile strength of the iPP parts deteriorate with the increasing aging time. In addition, the crystallinity and the tensile strength decrease with the increasing melt temperature but increase with the increasing mold temperature in a given range and holding pressure. The increase in ultrasound power leads to an increase in crystallinity. However, when the ultrasound power is over 200 W, the tensile strength of the aged iPP parts decreases, which indicates that high ultrasound power may not form optimal condensed microstructures with excellent anti-aging capacity.
聚合物部件在各个工程领域的应用日益广泛。聚合物部件的性能会受到工作环境导致的老化的显著影响。本文设计并利用了一种超声振动辅助注塑成型系统,采用不同的加工条件,用等规聚丙烯(iPP)制造聚合物部件。进行了自然老化实验,使制造出的iPP部件老化一年。使用X射线衍射分析、傅里叶变换红外分析、扫描电子显微镜成像和拉伸试验,系统地研究了关键工艺参数以及超声功率对老化后iPP部件微观结构和力学性能的影响。研究发现,iPP部件的微观结构和拉伸强度均随老化时间的增加而恶化。此外,在给定的保压压力下,结晶度和拉伸强度随熔体温度的升高而降低,但随模具温度的升高而增加。超声功率的增加会导致结晶度增加。然而,当超声功率超过200W时,老化iPP部件的拉伸强度会降低,这表明高超声功率可能无法形成具有优异抗老化能力的最佳致密微观结构。