Comparison of Nanoclay and Carbon Nanofiber Particles on Rheology of Molten Polystyrene Nanocomposites Under Supercritical Carbon Dioxide

被引:6
作者
Guo, Zhihua [1 ]
Yeh, Shu-Kai [1 ]
Wingert, Maxwell J. [1 ]
Ellis, Jeffrey L. [1 ]
Tomasko, David L. [1 ]
Lee, L. James [1 ]
机构
[1] Ohio State Univ, William G Lowrie Dept Chem & Biomol Engn, Columbus, OH 43210 USA
基金
美国国家科学基金会;
关键词
rheology; nanoparticles; nanoclay; carbon nanofibers (CNFs); carbon dioxide; polystyrene; Couette rheometry; shear viscosity; shift factor; GLASS-TRANSITION TEMPERATURE; LIQUID-CRYSTALLINE POLYMER; FOAMS; CO2; PRESSURE; MELTS; VISCOSITIES; SUSPENSIONS; ADSORPTION; PREDICTION;
D O I
10.1002/app.31568
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The effects of nanoparticles and high-pressure carbon dioxide (CO2) on shear viscosity of polystyrene (PS) were studied. Master curves of PS, PS + 5 wt % carbon nanofibers (CNFs), and PS + 5 wt % nanoclay (Southern Clay 20A) without CO2 were created based on parallel-plate measurements. The results showed that addition of nanoparticles increased the viscosity of the neat polymer. Steady-state shear viscosity of PS in the presence Of CO2 and nanoparticles was measured by a modified Couette rheometer. The effect of supercritical CO2 Oil these systems was characterized by shift factors. It was found that under the same temperature and CO2 pressure, CO2 reduced the viscosity less for both PS-20A and PS-CNFs than neat PS. Between the two types of nanoparticles, CNFs showed a larger viscosity reduction than 20A, indicating a higher CO2 affinity for CNFs than 20A. However, the advantage of CNFs over 20A for larger viscosity reduction decreased with higher temperature. A gravimetric method (magnetic suspension balance) was used to measure the excess adsorption of CO2 onto CNFs and nanoclay, thus, CO2 showed a higher affinity for CNFs. (C) 2009 Wiley Periodicals, Inc. J Appl Polym Sci 116: 1068-1076, 2010
引用
收藏
页码:1068 / 1076
页数:9
相关论文
共 50 条
  • [31] Intrinsic Viscosity of Polystyrene in Toluene-Supercritical Carbon Dioxide Mixtures
    Masamichi Onishi
    Yo Nakamura
    Takashi Norisuye
    Polymer Journal, 2009, 41 : 477 - 481
  • [32] Steady-state fluorescence of polystyrene plasticized by supercritical carbon dioxide
    Li, M
    Bright, FV
    APPLIED SPECTROSCOPY, 1996, 50 (06) : 740 - 746
  • [33] Intrinsic Viscosity of Polystyrene in Toluene-Supercritical Carbon Dioxide Mixtures
    Onishi, Masamichi
    Nakamura, Yo
    Norisuye, Takashi
    POLYMER JOURNAL, 2009, 41 (06) : 477 - 481
  • [34] Flexible porous silicone rubber-nanofiber nanocomposites generated by supercritical carbon dioxide foaming for harvesting mechanical energy
    Shao, Yan
    Luo, Chen
    Deng, Bo-wen
    Yin, Bo
    Yang, Ming-bo
    NANO ENERGY, 2020, 67
  • [35] Carbon Dioxide Reduction with Hydrogen on Carbon-Nanotube-Supported Catalysts under Supercritical Conditions
    Bogdan, Victor, I
    Pokusaeva, Yana A.
    Koklin, Alexey E.
    Savilov, Sergei, V
    Chernyak, Sergei A.
    Lunin, Valery V.
    Kustov, Leonid M.
    ENERGY TECHNOLOGY, 2019, 7 (09)
  • [37] Synthesis of polyhedral particles by dispersion polymerization in supercritical carbon dioxide
    Eri Yoshida
    Colloid and Polymer Science, 2008, 286 : 1435 - 1442
  • [38] Comparison of the corrosion of materials in supercritical carbon dioxide, air, and argon environments
    Teeter, L.
    Adam, B.
    Wood, T.
    Tucker, J. D.
    CORROSION SCIENCE, 2021, 192
  • [39] Production of micro and nano particles of pharmaceutical by supercritical carbon dioxide
    Esfandiari, Nadia
    JOURNAL OF SUPERCRITICAL FLUIDS, 2015, 100 : 129 - 141
  • [40] Deactivation of isoamylase and β-amylase in the agitated reactor under supercritical carbon dioxide
    Wang, Steven S-S
    Lai, Jinn-Tsyy
    Huang, Ming-Shan
    Tai, Clifford Y.
    Liu, Hwai-Shen
    BIOPROCESS AND BIOSYSTEMS ENGINEERING, 2010, 33 (08) : 1007 - 1015