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Experiment and simulation of foaming injection molding of polypropylene/nano-calcium carbonate composites by supercritical carbon dioxide 被引量:5

Experiment and simulation of foaming injection molding of polypropylene/nano-calcium carbonate composites by supercritical carbon dioxide
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摘要 Microcellular injection molding of neat isotactic polypropylene(iPP) and isotactic polypropylene/nano-calcium carbonate composites(i PP/nano-CaCO_3) was performed using supercritical carbon dioxide as the physical blowing agent. The influences of filler content and operating conditions on microstructure morphology of i PP and i PP/nano-CaCO_3 microcellular samples were studied systematically. The results showed the bubble size of the microcellular samples could be effectively decreased while the cell density increased for i PP/nano-CaCO_3 composites, especially at high CO_2 concentration and back pressure, low mold temperature and injection speed, and high filler content. Then Moldex 3D was applied to simulate the microcellular injection molding process, with the application of the measured ScCO_2 solubility and diffusion data for i PP and i PP/nano-Ca CO_3 composites respectively. For neat i PP, the simulated bubble size and density distribution in the center section of tensile bars showed a good agreement with the experimental values. However, for i PP/nano-CaCO_3 composites, the correction factor for nucleation activation energy F and the pre-exponential factor of nucleation rate f_0 were obtained by nonlinear regression on the experimental bubble size and density distribution. The parameters F and f_0 can be used to predict the microcellular injection molding process for i PP/nano-CaCO_3 composites by Moldex 3D. Microcellular injection molding of neat isotactic polypropylene(iPP) and isotactic polypropylene/nano-calcium carbonate composites(i PP/nano-CaCO_3) was performed using supercritical carbon dioxide as the physical blowing agent. The influences of filler content and operating conditions on microstructure morphology of i PP and i PP/nano-CaCO_3 microcellular samples were studied systematically. The results showed the bubble size of the microcellular samples could be effectively decreased while the cell density increased for i PP/nano-CaCO_3 composites, especially at high CO_2 concentration and back pressure, low mold temperature and injection speed, and high filler content. Then Moldex 3D was applied to simulate the microcellular injection molding process, with the application of the measured ScCO_2 solubility and diffusion data for i PP and i PP/nano-Ca CO_3 composites respectively. For neat i PP, the simulated bubble size and density distribution in the center section of tensile bars showed a good agreement with the experimental values. However, for i PP/nano-CaCO_3 composites, the correction factor for nucleation activation energy F and the pre-exponential factor of nucleation rate f_0 were obtained by nonlinear regression on the experimental bubble size and density distribution. The parameters F and f_0 can be used to predict the microcellular injection molding process for i PP/nano-CaCO_3 composites by Moldex 3D.
出处 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2016年第1期180-189,共10页 中国化学工程学报(英文版)
基金 Supported by the National High Technology Research and Development Program of China(2012AA040211) the National Natural Science Foundation of China(21306043) the Research Fund for the Doctoral Program of Higher Education of China(20120074120019 20130074110013) the Fundamental Research Funds for the Central Universities
关键词 PP复合材料 超临界二氧化碳 发泡聚丙烯 纳米碳酸钙 实验值 发泡成型 模拟 注射成型工艺 Microcellular injection molding Isotactic polypropylene/nano-calcium carbonate Cell morphology Nucleation activation energy Numerical simulation
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  • 1N.P. Suh, Innovation in polymer processing, Hanser/Gardner Publications, New York, 1996.
  • 2D.L Collais, D.G. Baird, Tensile toughness of microcellular foams of polystyrene, styrene-acrylonitrile copolymer, and polycarbonate, and the effect of dissolved gas on the tensile toughness of the same polymer matrices and microcellular foams, Polym. Eng. ScL 35 (1995) 1167-1177.
  • 3A. Zhang, Q. Zhang, H. Bai, L. Li, J. Li, Polymeric nanoporous materials fabricated with supercritical C02 and CO2-expanded liquids, Chem. Soc. Rev. 43 (2014) 6938-6953.
  • 4M. Sauceau, J. Fages, A. Common, C. Nikitine, E. Rodier, New challenges in polymer foaming: A review of extrusion processes assisted by supercritical carbon dioxide, Prog. Polym. Sci. 36 (2011) 749-766.
  • 5M. Yuan, LS. Turng, Microstructure and mechanical properties of microcellular injection molded polyamide-6 nanocomposites, Polymer 46 (2005) 7273-7292.
  • 6J.C. Feng, M.C. then, Z.T. Huang, Assessment of efficacy of trivalent lanthanum complex as surface modifier of calcium carbonate, J. Appl. Polym. Sci. 82 (2001) 1339-1345.
  • 7J. Zhang, Q.J. Ding, N.L Zhou, Studies on crystal morphology and crystallization kinetics of polypropylene filled with CaC03 of different size and size distribution, J. Appl. Polym. Sci. 101 (2006) 2437-2444.
  • 8T. Labour, C Gauthier, R. Seguela, Influence of the β crystalline phase on the mechanical properties of unfilled and CaCO3-fiUed polypropylene. 1. Structural and mechanical characterisafion, Polymer 42 (2001) 7127-7135.
  • 9C.M. than, J. Wu, J.X. Li, Polypropylene/calcium carbonate nanocomposites, Polymer 43 (2002) 2981-2992.
  • 10J. Bing, W.H. Ma. F.J. Song, Q. Zhong, Effect of nano-calcium carbonate on microcellular foaming of polypropylene, J. Mater. Sci. 48 (2013) 2504-2511.

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