Plasticity Mechanism for Glassy Polymers: Computer Simulation Picture

被引:0
|
作者
E. F. Oleinik
M. A. Mazo
I. A. Strel’nikov
S. N. Rudnev
O. B. Salamatina
机构
[1] Russian Academy of Sciences,Semenov Institute of Chemical Physics
来源
Polymer Science, Series A | 2018年 / 60卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
This review summarizes the data published over the past two and a half decades on the mechanism of plastic deformation of bulk isotropic linear glassy polymers in uniaxial tension, compression, and shear at low deformation temperatures (Тdef < 0.6Тg) and moderate loading rates. The main attention is focused on studies concerning the numerical computer simulations of plasticity of organic polymer glasses. The plastic behavior of glassy polymers at nano-, micro-, and macrolevels in the range of macroscopic strains up to ≈100% is discussed. Plasticity mechanisms are compared for organic, inorganic, metallic, polymer, and nonpolymer glasses with different chemical structures and types of interparticle interactions. The general common mechanism of plasticity of glassy compounds, the nucleation of plasticity carriers in them, and the structure of such carriers and their dynamics are covered. Within the framework of the common plasticity mechanism, the specific features of deformation in glassy polymers are analyzed. Specifically, the participation of conformational transformations in macromolecules in the deformation response of polymer glasses, change in intensity of the yield peak with the thermomechanical prehistory of the sample, and the role of van der Waals interactions in the accumulation of excess potential energy by the sample under loading are considered. The role of free volume and structural and dynamic heterogeneities in the plasticity of glasses is also discussed.
引用
收藏
页码:1 / 49
页数:48
相关论文
共 50 条
  • [31] DEFORMATIONAL MECHANISM IN PARTICULATE-FILLED GLASSY POLYMERS
    LAVENGOO.RE
    NICOLAIS, L
    NARKIS, M
    JOURNAL OF APPLIED POLYMER SCIENCE, 1973, 17 (04) : 1173 - 1185
  • [32] On the molecular mechanism of self-healing of glassy polymers
    Yuri M. Boiko
    Colloid and Polymer Science, 2016, 294 : 1237 - 1242
  • [33] ATOMISTIC SIMULATION OF DILATATION AND CAVITATION OF GLASSY-POLYMERS
    MOTT, PH
    ARGON, AS
    SUTER, W
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1992, 203 : 575 - POLY
  • [34] Crash simulation with glassy polymers - constitutive model and application
    Pyttel, T
    Weyer, S
    INTERNATIONAL JOURNAL OF CRASHWORTHINESS, 2003, 8 (05) : 433 - 442
  • [35] Stepwise mechanism of the nucleation of plastic deformation in glassy polymers
    E. F. Oleinik
    S. N. Rudnev
    O. B. Salamatina
    Doklady Physical Chemistry, 2015, 465 : 259 - 262
  • [36] On the molecular mechanism of self-healing of glassy polymers
    Boiko, Yuri M.
    COLLOID AND POLYMER SCIENCE, 2016, 294 (07) : 1237 - 1242
  • [37] Stepwise mechanism of the nucleation of plastic deformation in glassy polymers
    Oleinik, E. F.
    Rudnev, S. N.
    Salamatina, O. B.
    DOKLADY PHYSICAL CHEMISTRY, 2015, 465 : 259 - 262
  • [38] Coupling of diffusion and crazing in a toughening mechanism for glassy polymers
    Nealey, PF
    Cohen, RE
    Argon, AS
    XIITH INTERNATIONAL CONGRESS ON RHEOLOGY, PROCEEDINGS, 1996, : 349 - 350
  • [39] Computer simulation of polymers for dielectric applications
    Ahmed, S.
    Allen, S.A.
    Kohl, P.
    Ludovice, P.J.
    Journal of Engineering and Applied Science, 1996, 2 : 2179 - 2182
  • [40] Computer simulation of network formation in polymers
    Dakin, VI
    JOURNAL OF APPLIED POLYMER SCIENCE, 1998, 70 (13) : 2569 - 2574