Mechanisms of brittle-ductile transition in toughened thermoplastics

被引:17
|
作者
VuKhanh, T
Yu, Z
机构
[1] Dept. de Génie Mecan., Fac. des Sciences Appliquées, Université de Sherbrooke, Sherbrooke
关键词
D O I
10.1016/S0167-8442(96)00047-X
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The objective of this work was to investigate the mechanism of brittle-ductile transition in toughened polymers. Two systems, namely, a rubber-toughened nylon 66 (Zytel ST-801) and a high impact polystyrene (HIPS), were chosen for this study. The samples were prepared by injection molding and were tested in three-point bending under various loading rates and temperatures. The brittle-ductile transition temperature (Tb-d) was determined from the observed fracture behavior as a function of temperature. Molecular relaxation temperatures of the polymers were measured by mechanical spectroscopy at various frequencies. The correlation between temperature and loading rate was estimated using the Arrhenius equation. The results show that Tb-d of Zytel ST-801 is only slightly affected by the loading rate, whereas Tb-d of HIPS strongly increases with deformation rate. It is found that for the former, within the experimental errors, an increase in Tb-d. With loading rate corresponds to the shift in the secondary relaxation temperature T-b of the nylon 66 matrix. For the latter however, the increase in Tb-d is related to the glass/rubber relaxation of the polystyrene matrix. It seems that the type of molecular relaxation controlling the brittle-ductile transition corresponds to that with lower activation energy.
引用
收藏
页码:177 / 183
页数:7
相关论文
共 50 条
  • [41] Brittle-ductile transition in γ-TiAl single crystals
    Univ of Oxford, Oxford, United Kingdom
    Acta Mater, 3 (1045-1053):
  • [42] Quantification of notch effects -: In brittle-ductile transition
    Tóth, L
    TRANSFERABILITY OF FRACTURE MECHANICAL CHARACTERISTICS, 2002, 78 : 323 - 336
  • [43] Microfracturing in the brittle-ductile transition in Berea sandstone
    Muhuri, SK
    Scott, TE
    Stearns, DW
    PACIFIC ROCKS 2000: ROCK AROUND THE RIM, 2000, : 1177 - 1184
  • [44] Introducing brittle-ductile transition and interfacial debonding
    George, A
    SOLID STATE PHENOMENA, 1998, 60 : 251 - 272
  • [45] Ductile-Brittle Transition in Mechanisms of Slow Crack Growth in Engineering Thermoplastics
    Chudnovsky, Alexander
    Zhou, Zhenwen
    Zhang, Haiying
    Sehanobish, K.
    11TH INTERNATIONAL CONFERENCE ON THE MECHANICAL BEHAVIOR OF MATERIALS (ICM11), 2011, 10 : 1473 - 1478
  • [46] Study on microcosmic mechanics for brittle-ductile transition of marble
    Zhu, Zhen-De
    Zhang, Yong
    Wang, Chun-Juan
    Meitan Xuebao/Journal of the China Coal Society, 2005, 30 (01): : 31 - 35
  • [47] Brittle-ductile transition in reactive PBT/SAN blends
    Lumlong, S
    Kuboyama, K
    Chiba, T
    Ougizawa, T
    MACROMOLECULAR SYMPOSIA, 2006, 233 : 17 - 25
  • [48] Dislocation simulation of brittle-ductile transition in ferritic steels
    S. J. Noronha
    N. M. Ghoniem
    Metallurgical and Materials Transactions A, 2006, 37 : 539 - 544
  • [49] A New Criterion for Brittle-Ductile Transition of Polymer Blends
    郑文革
    漆宗能
    施良和
    Science in China,SerB, 1993, Ser.B1993 (08) : 920 - 926
  • [50] Numerical modelling of brittle-ductile transition with the MUFITS simulator
    Afanasyev, Andrey
    COMPUTATIONAL GEOSCIENCES, 2020, 24 (04) : 1651 - 1662