Effects of stress and physical ageing on nonlinear creep behavior of poly(methyl methacrylate)

Rong-guo Zhao , Chao-zhong Chen , Qi-fu Li , Wen-bo Luo

Journal of Central South University ›› 2010, Vol. 15 ›› Issue (Suppl 1) : 582 -588.

PDF
Journal of Central South University ›› 2010, Vol. 15 ›› Issue (Suppl 1) :582 -588. DOI: 10.1007/s11771-008-0426-8
Article

Effects of stress and physical ageing on nonlinear creep behavior of poly(methyl methacrylate)

Author information +
History +
PDF

Abstract

The effects of stress, ageing time and ageing temperature on creep behavior of poly(methyl methacrylate) were studied. After annealing above its glass transition temperature for a period of time to eliminate the stress and thermal history, the specimens were quenched and aged at various ageing temperatures for different ageing time, and then the short-term creep tests under different stress levels were carried out at room temperature. The creep strains were modeled by means of time-ageing time equivalence and time-stress equivalence, and the master creep curves were constructed via ageing time shift factors and stress shift factors. The results indicate that the creep rate increases with stress, while decreases with ageing time, and the ageing temperature history obviously affects the creep rate. For linear viscoelastic material, the ageing shift rate is independent on imposed stress, while for nonlinear viscoelastic material, the ageing shift rate decreases with increasing stress. The unified master creep curve up to 540 d at reference state was constructed by shifting the creep curves horizontally along the logarithmic time axis to overlap each other. It is demonstrated that the time-stress equivalence, united with the time-ageing time equivalence, provides an effective accelerated characterization technique in the laboratory to evaluate the long-term creep behavior of physical ageing polymers.

Keywords

creep / time-stress equivalence / time-ageing time equivalence / physical ageing / polymer

Cite this article

Download citation ▾
Rong-guo Zhao, Chao-zhong Chen, Qi-fu Li, Wen-bo Luo. Effects of stress and physical ageing on nonlinear creep behavior of poly(methyl methacrylate). Journal of Central South University, 2010, 15(Suppl 1): 582-588 DOI:10.1007/s11771-008-0426-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

StruikL. C. E.Physical aging in amorphous polymers and other materials [M], 1978, Amsterdam, Elsevier

[2]

HutchinsonJ. M.. Physical aging of polymers [J]. Progress in Polymer Science, 1995, 20(4): 703-760

[3]

HutchinsonJ. M., SmithS., HorneB., GourlayG. M.. Physical aging of polycarbonate: enthalpy relaxation, creep response, and yielding behavior [J]. Macromolecules, 1999, 32(15): 5046-5061

[4]

TomlinsP. E., ReadB. E.. Creep and physical ageing of polypropylene: A comparison of models [J]. Polymer, 1998, 39(2): 355-367

[5]

VlasveldD. P. N., BerseeH. E. N., PickenS. J.. Creep and physical aging behaviour of PA6 nanocomposites [J]. Polymer, 2005, 46(26): 12539-12545

[6]

ZhengS. F., WengJ. G.. A new constitutive equation for the long-term creep of polymers based on physical aging [J]. European Journal of Mechanics A/Solids, 2002, 21(3): 411-421

[7]

DeanG. D., TomlinsP. E., ReadB. E.. A model for nonlinear creep and physical aging in poly(vinyl chloride) [J]. Polymer Engineering and Science, 1995, 35(16): 1282-1289

[8]

HoC. H., Vu-khanhT.. Effects of time and temperature on physical aging of polycarbonate [J]. Theoretical and Applied Fracture Mechanics, 2003, 39(2): 107-116

[9]

DrozdovA. D.. Physical aging and nonlinear viscoelasticity of amorphous glassy polymer [J]. Computational Materials Science, 2001, 21(2): 197-213

[10]

KimJ., LeeW., TsaiS. W.. Modeling of mechanical property degradation by short-term aging at high temperatures [J]. Composites Part B: Engineering, 2002, 33(7): 531-543

[11]

WilliamsM. L., LandelR. F., FerryJ. D.. The temperature dependence of relaxation mechanisms in amorphous polymers and other glass-forming liquid [J]. The Journal of the American Chemical Society, 1955, 77(14): 3701-3707

[12]

LuoW.-b., YangT.-q., AnQ.-li.. Time-temperature-stress equivalence and its application to nonlinear viscoelastic materials [J]. Acta Mechanica Solida Sinica, 2001, 14(3): 195-199

[13]

GuedesR. M., MoraisJ. J. L., MarquesA. T., CardonA. H.. Prediction of long-term behaviour of composite materials [J]. Computers and Structures, 2000, 76(1/3): 183-194

[14]

LuoW.-b., WangC.-h., ZhaoR.-guo.. Application of time-temperature-stress superposition principle to nonlinear creep of poly(methyl methacrylate) [J]. Key Engineering Materials, 2007, 340/341: 1091-1096

[15]

JazouliS., LuoW., BremandF., Vu-khanhT.. Application of time-stress equivalence to nonlinear creep of polycarbonate [J]. Polymer Testing, 2005, 24(4): 463-467

[16]

JazouliS., LuoW., BremandF., Vu-khanhT.. Nonlinear creep behavior of viscoelastic polycarbonate [J]. Journal of Materials Science, 2006, 41(2): 531-536

[17]

JonesD. I. G., FrenchR. M., BagleyR. L.. A renewal theory of small-strain thermo-mechanical response [J]. Mechanics of Materials, 1996, 23(2): 155-164

[18]

ZhaoR.-g., LuoW.-b., WangC.-h., TangX.. Effect of stress-induced damage evolution on long-term creep behavior of nonlinear viscoelastic polymer [J]. Key Engineering Materials, 2006, 324/325: 731-734

PDF

95

Accesses

0

Citation

Detail

Sections
Recommended

/