Numerical simulation and experimental verification of heat build-up for rubber compounds

被引:55
作者
Li, Fanzhu [1 ]
Liu, Jun [1 ]
Yang, Haibo [2 ]
Lu, Yonglai [2 ]
Zhang, Liqun [1 ,2 ]
机构
[1] Beijing Univ Chem Technol, State Key Lab Organ Inorgan Composites, Beijing 100029, Peoples R China
[2] Beijing Univ Chem Technol, Key Lab Beijing City Preparat & Proc Novel Polyme, Beijing 100029, Peoples R China
关键词
Rubber compounds; Viscoelasticity; Heat build-up; CLAY AQUEOUS SUSPENSION; MECHANICAL-PROPERTIES; NANOCOMPOSITES; PREDICTION; VISCOELASTICITY; DEFORMATION; NETWORKS; FATIGUE; SILICA; TIRES;
D O I
10.1016/j.polymer.2016.08.065
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Based on nonlinear viscoelastic theory and coupled thermo-mechanical approach, heat build-up analysis of a rubber specimen under cyclic loading was performed through finite element analysis. The determination of the rubber material properties attracted particular attention. The thermo-mechanical coupling approach can be divided into three major parts: deformation, dissipation, and thermal modules. In the deformation module, uniaxial, planar, and equibiaxial tensile tests were used to determine the hyperelastic constitutive equation. In the dissipation module, an analytical method for calculating the energy dissipation rate was established. The dynamic properties were updated as a function of the strain and temperature based on the modified Kraus model. Creep effect and dynamic property softening effect on the viscoelastic properties were firstly considered. In the thermal module, the dependence of thermal parameters on temperature was established. A highly sophisticated equipment which can measure the temperature rise curves both on the surface and at the heart of the rubber specimen was used to verify the calculated results. The comparison between numerical results and experimental data shows that the proposed analysis method provides a satisfactory way to predict heat build-up for rubber compounds. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:199 / 207
页数:9
相关论文
共 44 条
  • [1] Akcora P, 2009, NAT MATER, V8, P354, DOI [10.1038/NMAT2404, 10.1038/nmat2404]
  • [2] The new interpretation for the heat build-up phenomena of rubbery materials during deformation
    Akutagawa, Keizo
    Hamatani, Satoshi
    Nashi, Takayuki
    [J]. POLYMER, 2015, 66 : 201 - 209
  • [3] Bauman J.T., 2012, Fatigue, Stress, and Strain of Rubber Components: Guide for Design Engineers, P9
  • [4] Bonet J., 1997, NONLINEAR CONTINUUM, P57
  • [5] Constitutive models of rubber elasticity: A review
    Boyce, MC
    Arruda, EM
    [J]. RUBBER CHEMISTRY AND TECHNOLOGY, 2000, 73 (03): : 504 - 523
  • [6] Browne A., 1980, Tire Science and Technology, V8, P37, DOI DOI 10.2346/1.2151020
  • [7] A multiscale mechanical model for the effective interphase of SWNT/epoxy nanocomposite
    Choi, Joonmyung
    Shin, Hyunseong
    Cho, Maenghyo
    [J]. POLYMER, 2016, 89 : 159 - 171
  • [8] Mapping the real micro/nanostructures for the prediction of elastic moduli of polypropylene/clay nanocomposites
    Dong, Yu
    Bhattacharyya, Debes
    [J]. POLYMER, 2010, 51 (03) : 816 - 824
  • [9] Ebbott T.G., 1999, Tire Sci. Technol, V27, P2
  • [10] DEFORMATION INDEX - CONCEPT FOR HYSTERETIC ENERGY-LOSS PROCESS
    FUTAMURA, S
    [J]. RUBBER CHEMISTRY AND TECHNOLOGY, 1991, 64 (01): : 57 - 64