A thermodynamic approach to model the caloric properties of semicrystalline polymers

被引:0
|
作者
Alexander Lion
Michael Johlitz
机构
[1] Universität der Bundeswehr München,Institute of Mechanics, Faculty of Aerospace Engineering
来源
关键词
Gibbs free energy; Crystallisation; Melting; Glass transition; Rigid amorphous fraction;
D O I
暂无
中图分类号
学科分类号
摘要
It is well known that the crystallisation and melting behaviour of semicrystalline polymers depends in a pronounced manner on the temperature history. If the polymer is in the liquid state above the melting point, and the temperature is reduced to a level below the glass transition, the final degree of crystallinity, the amount of the rigid amorphous phase and the configurational state of the mobile amorphous phase strongly depend on the cooling rate. If the temperature is increased afterwards, the extents of cold crystallisation and melting are functions of the heating rate. Since crystalline and amorphous phases exhibit different densities, the specific volume depends also on the temperature history. In this article, a thermodynamically based phenomenological approach is developed which allows for the constitutive representation of these phenomena in the time domain. The degree of crystallinity and the configuration of the amorphous phase are represented by two internal state variables whose evolution equations are formulated under consideration of the second law of thermodynamics. The model for the specific Gibbs free energy takes the chemical potentials of the different phases and the mixture entropy into account. For simplification, it is assumed that the amount of the rigid amorphous phase is proportional to the degree of crystallinity. An essential outcome of the model is an equation in closed form for the equilibrium degree of crystallinity in dependence on pressure and temperature. Numerical simulations demonstrate that the process dependences of crystallisation and melting under consideration of the glass transition are represented.
引用
收藏
页码:799 / 819
页数:20
相关论文
共 50 条
  • [1] A thermodynamic approach to model the caloric properties of semicrystalline polymers
    Lion, Alexander
    Johlitz, Michael
    CONTINUUM MECHANICS AND THERMODYNAMICS, 2016, 28 (03) : 799 - 819
  • [2] A micromechanical model for the elastic properties of semicrystalline thermoplastic polymers
    Guan, X
    Pitchumani, R
    POLYMER ENGINEERING AND SCIENCE, 2004, 44 (03): : 433 - 451
  • [3] An irreversible thermodynamic model for semicrystalline polymers submitted to multisequence loading at large strain
    Mrabet, K
    Rahouadj, R
    Cunat, C
    POLYMER ENGINEERING AND SCIENCE, 2005, 45 (01): : 42 - 51
  • [4] Elastic properties of semicrystalline polymers
    Zgaevskii, VE
    Smirnov, VS
    Kalmykov, YB
    Mikhailov, YM
    POLYMER SCIENCE SERIES A, 2002, 44 (05) : 497 - 501
  • [5] MORPHOLOGY AND PROPERTIES OF SEMICRYSTALLINE POLYMERS
    MANDELKERN, L
    JOURNAL OF POLYMER SCIENCE PART C-POLYMER SYMPOSIUM, 1975, (50): : 457 - 468
  • [6] A model for toughening of semicrystalline polymers
    Corte, Laurent
    Leibler, Ludwik
    MACROMOLECULES, 2007, 40 (15) : 5606 - 5611
  • [7] Micromechanical Modeling of the Elastic Properties of Semicrystalline Polymers: A Three-Phase Approach
    Sedighiamiri, A.
    Van Erp, T. B.
    Peters, G. W. M.
    Govaert, L. E.
    van Dommelen, J. A. W.
    JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2010, 48 (20) : 2173 - 2184
  • [8] MORPHOLOGY AND MECHANICAL-PROPERTIES IN SEMICRYSTALLINE POLYMERS
    ANDREWS, EH
    PURE AND APPLIED CHEMISTRY, 1974, 39 (1-2) : 179 - 194
  • [9] Formulation and implementation of a constitutive model for semicrystalline polymers
    Popa, C. M.
    Fleischhauer, R.
    Schneider, K.
    Kaliske, M.
    INTERNATIONAL JOURNAL OF PLASTICITY, 2014, 61 : 128 - 156
  • [10] Model for the viscoelastic and viscoplastic responses of semicrystalline polymers
    Drozdov, AD
    Christiansen, JD
    JOURNAL OF APPLIED POLYMER SCIENCE, 2003, 88 (06) : 1438 - 1450