Crystallinity and mechanical properties of polypropylene products foamed by microcellular injection molding process

Author:

Yu Shengrui1ORCID,Song Senzhen1,Gao Huang2ORCID,Wang Kai1,Xu Lei1,Guo Hao3,Han Wen1,You Jing4,Liu Zhihuan1,Zhou Huamin2

Affiliation:

1. School of Mechanical and Electronic Engineering Jingdezhen Ceramic University Jingdezhen China

2. State Key Lab of Material Processing and Die & Mold Technology Huazhong University of Science and Technology Wuhan China

3. Institute of marine equipment and technology Jiangsu university of science and technology Zhenjiang China

4. Teaching and Research Guarantee Center, Radar Sergeant School of Air Force Early Warning Academy Wuhan China

Abstract

AbstractMicrocellular injection molding (MIM) is a pivotal technique for lightweight molding. Polypropylene (PP) is widely used in MIM due to light weight and easy processing. The crystallinity of foamed PP products influences the load‐bearing structures and consequently mechanical properties. To address the deterioration of mechanical properties caused by internal porous structure, a novel method is proposed to regulate the crystallinity by optimizing process parameters, thereby improving mechanical properties. Wide‐angle x‐ray diffraction, mechanical testing, and melt flow simulation are applied to investigate the influence of process parameters on crystallinity and mechanical properties. Parameters are further optimized by establishing a multivariate nonlinear regression model for process parameters and crystallinity. The results show that increasing melt temperature, injection rate, mold temperature, and cooling time stimulate crystallization, enhancing strength and decreasing elongation at break. Conversely, high injection ratio of supercritical fluid obstructs crystallization, reducing strength, and increasing elongation at break. The crystallinity increases by 20.81%; the corresponding tensile, flexural, and shear strength and corresponding modulus increases by 5.39% and 10.28%, 7.60% and 18.50%, 5.00% and 11.37%, and elongation at break decreased by 5.19% through the optimization of regression model. The proposed method is feasible to upgrade the mechanical properties of foamed PP products.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangxi Province

Foundation of Jiangxi Educational Commission

Jingdezhen Science and Technology Bureau

Publisher

Wiley

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