4.6 Article

Effect of microstructure induced by microcellular injection molding on electromagnetic interference shielding properties

Journal

JOURNAL OF APPLIED POLYMER SCIENCE
Volume 138, Issue 22, Pages -

Publisher

WILEY
DOI: 10.1002/app.50532

Keywords

foams; mechanical properties; rheology; thermoplastics; viscosity and viscoelasticity

Funding

  1. National Natural Science Foundation of China [51975329, 51675307]

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Lightweight carbon fiber reinforced polypropylene composite foams with high-performance electromagnetic interference shielding materials were fabricated using microcellular injection molding technology. The introduction of foaming process enhanced the electrical conductivity and EMI shielding properties, achieving the highest EMI shielding effectiveness value through the MIM technology.
Preparing lightweight and versatile products is the unremitting goal of industry to save resources and energy. Lightweight carbon fiber reinforced polypropylene (CF/PP) composite foams with high-performance electromagnetic interference (EMI) shielding materials were fabricated by microcellular injection molding (MIM) technology. The average length and distribution of CF in CF/PP composite foams were examined. Thanks to the introduction of foaming process, the average CF length of composite foams was 33.98% longer than that of solids, which effectively enhanced the electrical conductivity and EMI shielding properties. The effect of shot size, gas content, and injection rate on the electrical conductivity and EMI properties was investigated. With melt shot size of 2/3 of the cavity volume, gas content of 0.5 wt% N-2 and injection rate of 100 mm/s, optimal cellular structure of the composite material was obtained. The EMI shielding effectiveness (SE) reaches 36.94 dB, which is the highest value achieved by using MIM technology to the best of the authors' knowledge. In addition, the mechanical properties of cellular structure can still maintain good values, with the tensile strength and impact strength improved by 15.3% and 14.03%, respectively.

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