Constitutive modelling of strain-induced crystallisation in rubber

被引:0
|
作者
Loos, K. [1 ]
Aydogdu, A. [1 ]
Lion, A. [1 ]
Johlitz, M. [1 ]
Calipel, J. [2 ]
机构
[1] Univ Bundeswehr Munich, Fac Aerosp Engn, Inst Mech, Neubiberg, Germany
[2] MICHELIN Technol Ctr, Clermont Ferrand, France
来源
CONSTITUTIVE MODELS FOR RUBBER XI | 2019年
关键词
MICRO-SPHERE MODEL; ELASTICITY;
D O I
暂无
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 phenomenon of strain-induced crystallisation (SIC) is still challenging nowadays in the context of material modelling. The focus of the presented constitutive equations is to depict the stress response of unfilled natural rubber when uni-axially stretched. Here, the capture of the hysteresis is of highest interest, where SIC is the main hysteresis source for unfilled natural rubber. he paper is based on a thermomechanical approach presented in former publications which uses an additive split of the hybrid free energy. The model uses a multiphase approach, i.e. one rubber fibre includes three different contributions: a crystalline phase and an amorphous phase which is compounded by a crystallisable amorphous part and a noncrystallisable amorphous part. Thus, different hyperelastic material models for each part are used for the formulation of the stress and the strain energy, which are an essential part of the first order differential equation of crystallinity. The presented model is based on the concept of representative directions and is therefore formulated one dimensional. The model is validated via the time dependence of the material in two ways; stress relaxation simulations and simulations of uniaxial cycles with varying stretch rate. The constitutive equations are physically and chemically motivated and ensure the thermodynamic consistency.
引用
收藏
页码:36 / 41
页数:6
相关论文
共 50 条
  • [1] Comprehensive study on temperature-induced crystallisation and strain-induced crystallisation behaviours of natural rubber/isoprene rubber blends
    Sun, Shuquan
    Lu, Yonglai
    Hsiao, Benjamin S.
    Wang, Dong
    Zhang, Liqun
    PLASTICS RUBBER AND COMPOSITES, 2017, 46 (07) : 290 - 300
  • [2] STRAIN-INDUCED CRYSTALLIZATION IN NATURAL RUBBER
    ANDREWS, EH
    POLYMER, 1964, 5 (07) : 379 - 379
  • [3] Strain-induced crystallization and strength of rubber
    Gent, AN
    Zhang, LQ
    RUBBER CHEMISTRY AND TECHNOLOGY, 2002, 75 (05): : 923 - 933
  • [4] Strain-Induced Crystallization in Natural Rubber
    Albouy, Pierre-Antoine
    Sotta, Paul
    POLYMER CRYSTALLIZATION II: FROM CHAIN MICROSTRUCTURE TO PROCESSING, 2017, 277 : 167 - 205
  • [5] STRAIN-INDUCED CRYSTALLIZATION OF NATURAL RUBBER
    LUCH, D
    YEH, GSY
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1971, 16 (03): : 366 - &
  • [6] Strain-induced crystallisation in natural rubber: a thermodynamically consistent model of the material behaviour using a multiphase approach
    Loose, Klara
    Aydogdu, Ahmet B.
    Lion, Alexander
    Johlitz, Michael
    Calipel, Jerome
    CONTINUUM MECHANICS AND THERMODYNAMICS, 2020, 32 (02) : 501 - 526
  • [7] Strain-induced crystallisation in natural rubber: a thermodynamically consistent model of the material behaviour using a multiphase approach
    Klara Loos
    Ahmet B. Aydogdu
    Alexander Lion
    Michael Johlitz
    Jérôme Calipel
    Continuum Mechanics and Thermodynamics, 2020, 32 : 501 - 526
  • [8] Strain-induced crystallisation in natural rubber: a thermodynamically consistent model of the material behaviour using a serial connection of phases
    Loos, Klara
    Aydogdu, Ahmet B.
    Lion, Alexander
    Johlitz, Michael
    Calipel, Jerome
    CONTINUUM MECHANICS AND THERMODYNAMICS, 2021, 33 (04) : 1107 - 1140
  • [9] Strain-induced crystallisation of reinforced elastomers using surface calorimetry
    Le Cam, Jean-Benoit
    Kyei-Manu, William Amoako
    Tayeb, Adel
    Albouy, Pierre -Antoine
    Busfield, James J. C.
    POLYMER TESTING, 2024, 131
  • [10] Strain-induced crystallisation in natural rubber: a thermodynamically consistent model of the material behaviour using a serial connection of phases
    Klara Loos
    Ahmet B. Aydogdu
    Alexander Lion
    Michael Johlitz
    Jérôme Calipel
    Continuum Mechanics and Thermodynamics, 2021, 33 : 1107 - 1140