Relationships between linear and nonlinear shear response of polymer nano-composites

被引:0
|
作者
Hojjat Mahi Hassanabadi
Denis Rodrigue
机构
[1] Université Laval,Department of Chemical Engineering and CERMA
来源
Rheologica Acta | 2012年 / 51卷
关键词
Nano-composites; Stress overshoot; Particle geometry; Fractal structure;
D O I
暂无
中图分类号
学科分类号
摘要
Rheological analysis was used to understand the structure–property relations of polymer nano-composites based on ethylene vinyl acetate. Two geometrically different nano-particles (sphere of CaCO3 and platelet of montmorillonite) having the same energetic attractions with ethylene vinyl acetate were studied for concentrations between 2.5 and 15 wt%. Three phenomena were studied: the appearance of a solid-like behavior in the linear viscoelastic domain, the limits of linear viscoelasticity, and the presence of stress overshoot in step shear tests. In particular, stress overshoot was investigated based on the tube concept of polymeric chains. Also, differences related to nano-particle geometry (platelet vs. spherical) were investigated based on a filler-network mechanism. Due to higher physical contacting probability, platelet particles can better interact and create a network structure, which dominates the rheological response. On the other hand, although spherical particles can limit the motion of polymeric chains under flow, a strong physical network was not formed. For platelets, scaling behavior was well described by fractal model which considers direct aggregation, and such scaling was not observed for spherical particles. The filler-network mechanism was validated by image analysis.
引用
收藏
页码:991 / 1005
页数:14
相关论文
共 50 条
  • [1] Relationships between linear and nonlinear shear response of polymer nano-composites
    Hassanabadi, Hojjat Mahi
    Rodrigue, Denis
    RHEOLOGICA ACTA, 2012, 51 (11-12) : 991 - 1005
  • [2] Polymer Clay Nano-composites
    Leporatti, Stefano
    POLYMERS, 2019, 11 (09)
  • [3] Effect of interphase properties on the damping response of polymer nano-composites
    Patel, R. K.
    Bhattacharya, B.
    Basu, Sumit
    MECHANICS RESEARCH COMMUNICATIONS, 2008, 35 (1-2) : 115 - 125
  • [4] Processing and properties of polymer nano-composites
    Wang, H
    Elkovitch, M
    Lee, LJ
    Koelling, KW
    ANTEC 2000: SOCIETY OF PLASTICS ENGINEERS TECHNICAL PAPERS, CONFERENCE PROCEEDINGS, VOLS I-III, 2000, : 2402 - 2406
  • [5] Novel inorganic/conjugated polymer nano-composites
    Kingston Univ, Surrey, United Kingdom
    Synth Met, 1-3 (289-292):
  • [6] Novel inorganic conjugated polymer nano-composites
    Hill, PG
    Foot, PJS
    Davis, R
    SYNTHETIC METALS, 1996, 76 (1-3) : 289 - 292
  • [7] Positron Annihilation Studies In Polymer Nano-Composites
    Chen, H. M.
    Awad, Somia
    Jean, Y. C.
    Yang, J.
    Lee, L. James
    APPLICATION OF ACCELERATORS IN RESEARCH AND INDUSTRY: TWENTY-FIRST INTERNATIONAL CONFERENCE, 2011, 1336 : 444 - 447
  • [8] Reinforcing mechanisms in amorphous polymer nano-composites
    Kalfus, Jan
    Jancar, Josef
    COMPOSITES SCIENCE AND TECHNOLOGY, 2008, 68 (15-16) : 3444 - 3447
  • [9] Feasibility study of conjugated polymer nano-composites for thermoelectrics
    Feng, J
    Ellis, TW
    SYNTHETIC METALS, 2003, 135 (1-3) : 55 - 56
  • [10] Effect of Filler Concentration on Breakdown in Polymer Nano-composites
    Elanseralathan, K.
    Dharani, M.
    Arularasi, E.
    Vaitheeshwari, N. Vinola
    Manimaran, P.
    2016 3RD INTERNATIONAL CONFERENCE ON ELECTRICAL ENERGY SYSTEMS (ICEES), 2016, : 302 - 305