STATISTICAL THERMODYNAMICS OF POLYMER CRYSTAL AND MELT

被引:30
作者
SIMHA, R
JAIN, RK
机构
关键词
POLYMER MELTS;
D O I
10.1002/pol.1978.180160812
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
A crystalline-state theory recently developed by Midha and Nanda is commented on and applied to the isobars of polyethylene, poly(vinylidene fluoride), and poly(chlorotrifluoroethylene) at atmospheric pressure, and to an isotherm of polyethylene. Satisfactory agreement with experimental results. This includes the volume change at the melting point T//m and the volume difference DELTA V between crystal and melt below T//m, when crystal and the earlier liquid-state theory are combined. An inverse proportionality between T//m and alpha //l, the expansivity of the melt at T//m, derived much earlier for low-molecular-weight solids, is recovered with an identical numerical coefficient. The thermodynamic functions of polyethylene are investigated in both phases. An additional temperature-dependent term in the entropy and free energy is introduced and tentatively attributed to a volume- and temperature-dependent short-range ordering. Good agreement with experiment, including the entropy and temperature of fusion, ensues.
引用
收藏
页码:1471 / 1489
页数:19
相关论文
共 34 条
[21]   Strain-Induced Orientation States and Nucleation of Line Disclinations in a Thermotropic Liquid Crystalline Polymer Melt [J].
Institut für Kunststofftechnologie, Universität Stuttgart, Böblinger Str. 70, Stuttgart ;
D-70199, Germany .
Chemical Engineering and Technology, 1998, 21 (02) :157-160
[22]   Modeling of the three-dimensional flow of polymer melt in a convergent channel of rectangular cross-section [J].
Koshelev, K. B. ;
Pyshnograi, G. V. ;
Tolstykh, M. Yu. .
FLUID DYNAMICS, 2015, 50 (03) :315-321
[23]   CONSTITUTIVE-EQUATIONS FROM GAUSSIAN SLIP-LINK NETWORK THEORIES IN POLYMER MELT RHEOLOGY [J].
WAGNER, MH ;
SCHAEFFER, J .
RHEOLOGICA ACTA, 1992, 31 (01) :22-31
[24]   Predicting High-Density Polyethylene Melt Rheology Using a Multimode Tube Model Derived Using Non-Equilibrium Thermodynamics [J].
Konstantinou, Pavlina C. ;
Stephanou, Pavlos S. .
POLYMERS, 2023, 15 (15)
[25]   Evaluation of Temperature-strain rate Dependent Uniaxial and Planar Elongational Viscosities for Branched LDPE Polymer Melt [J].
Zatloukal, Martin .
NOVEL TRENDS IN RHEOLOGY V, 2013, 1526 :184-193
[26]   Planar Extensional Viscosity Measurements for LDPE Polymer Melt by Using Novel Orifice Die Design and Cogswell Model [J].
Zatloukal, Martin .
NOVEL TRENDS IN RHEOLOGY IV, 2011, 1375
[27]   Multiscale simulation of polymer melt viscoelasticity: Expanded-ensemble Monte Carlo coupled with atomistic nonequilibrium molecular dynamics [J].
Baig, Chunggi ;
Mavrantzas, Vlasis G. .
PHYSICAL REVIEW B, 2009, 79 (14)
[28]   Tension thickening, molecular shape, and flow birefringence of an H-shaped polymer melt in steady shear and planar extension [J].
Baig, Chunggi ;
Mavrantzas, Vlasis G. .
JOURNAL OF CHEMICAL PHYSICS, 2010, 132 (01)
[29]   Measurements and modeling of temperature-strain rate dependent uniaxial and planar extensional viscosities for branched LDPE polymer melt [J].
Zatloukal, Martin .
POLYMER, 2016, 104 :258-267
[30]   An experimental study on the criteria for failure of polymer melts in uniaxial extension: The test case of a polyisobutylene melt in different deformation regimes [J].
Barroso, V. C. ;
Andrade, R. J. ;
Maia, J. M. .
JOURNAL OF RHEOLOGY, 2010, 54 (03) :605-618