Modelling the viscoplastic response of polyethylene in uniaxial loading-unloading tests

被引:19
作者
Drozdov, AD
Christiansen, JD
机构
[1] W Virginia Univ, Dept Chem Engn, Morgantown, WV 26505 USA
[2] Univ Aalborg, Dept Prod, DK-9220 Aalborg, Denmark
关键词
low-density polyethylene; viscoplasticity; cyclic loading;
D O I
10.1016/S0093-6413(03)00040-5
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Two series of uniaxial cyclic tests are performed on low-density polyethylene at room temperature. In the first series of experiments, injection-molded specimens are stretched to several maximal strains epsilon(max) in the region of sub-yield deformations with a constant cross-head speed, epsilon = 10 mm/min, and retracted down to the zero stress with the same strain rate. In the other series, loading-unloading tests are carried out with the maximal strain epsilon(max) = 0.10 and crosshead speeds ranging from 5 to 200 mm/min. A constitutive model is derived for the viscoplastic behavior of a semicrystalline polymer at small strains. A polymer is modelled as an equivalent network of chains bridged by permanent junctions (entanglements, physical cross-links on the surfaces of crystallites and lamellar blocks). The network is treated as an ensemble of meso-regions connected by links (crystalline lamellae). Deformation of a specimen induces sliding of junctions with respect to their reference positions both at active loading and unloading (this process reflects sliding of junctions in amorphous regions and fine slip of crystalline lamellae). At retraction, sliding of junctions is accompanied by mutual displacements of meso-domains (that reflects coarse slip and fragmentation of lamellar blocks). The constitutive equations are determined by 5 adjustable parameters that are found by matching the experimental stress-strain curves. (C) 2003 Elsevier Ltd. All rights reserved.
引用
收藏
页码:431 / 442
页数:12
相关论文
共 28 条
[1]   Constitutive modeling of ultra-high molecular weight polyethylene under large-deformation and cyclic loading conditions [J].
Bergström, JS ;
Kurtz, SM ;
Rimnac, CM ;
Edidin, AA .
BIOMATERIALS, 2002, 23 (11) :2329-2343
[2]   THE EFFECT OF STRAIN RATE ON THE DEFORMATION AND RELAXATION BEHAVIOR OF 6/6 NYLON AT ROOM-TEMPERATURE [J].
BORDONARO, CM ;
KREMPL, E .
POLYMER ENGINEERING AND SCIENCE, 1992, 32 (16) :1066-1072
[3]   Constitutive model for the finite deformation stress-strain behavior of poly(ethylene terephthalate) above the glass transition [J].
Boyce, MC ;
Socrate, S ;
Llana, PG .
POLYMER, 2000, 41 (06) :2183-2201
[4]  
Brooks NW, 1997, J POLYM SCI POL PHYS, V35, P545, DOI 10.1002/(SICI)1099-0488(199703)35:4<545::AID-POLB2>3.0.CO
[5]  
2-P
[6]  
Brooks NWJ, 1998, J POLYM SCI POL PHYS, V36, P2177, DOI 10.1002/(SICI)1099-0488(19980915)36:12<2177::AID-POLB15>3.0.CO
[7]  
2-X
[8]   Hot-drawing of poly(ethylene terephthalate) under biaxial stress: Application of a three-dimensional glass-rubber constitutive model [J].
Buckley, CP ;
Jones, DC ;
Jones, DP .
POLYMER, 1996, 37 (12) :2403-2414
[9]   A model for the elastoplastic behavior of isotactic poly(propylene) below the yield point [J].
Drozdov, AD ;
Christiansen, JD .
MACROMOLECULAR MATERIALS AND ENGINEERING, 2003, 288 (02) :164-174
[10]   The effect of strain rate on the viscoplastic behavior of isotactic polypropylene at finite strains [J].
Drozdov, AD ;
Christiansen, JD .
POLYMER, 2003, 44 (04) :1211-1228