Fatigue of rubber-modified epoxies: Effect of particle size and volume fraction

被引:76
|
作者
Azimi, HR [1 ]
Pearson, RA [1 ]
Hertzberg, RW [1 ]
机构
[1] LEHIGH UNIV,MAT RES CTR,POLYMER INTERFACES CTR,DEPT MAT SCI & ENGN,BETHLEHEM,PA 18015
关键词
D O I
10.1007/BF00352793
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A change in crack-tip plastic zone/rubber particle interactions induces a transition in the fatigue crack propagation (FCP) behaviour of rubber-modified epoxy polymers. The transition occurs at a specific K level, K-T which corresponds to the condition where the size of the plastic zone is of the order of the size of the rubber particles. At Delta K>Delta K-T, rubber-modified epoxies exhibit improved FCP resistance compared to the unmodified epoxy,This is because the size of the plastic zone becomes large compared to the size of the rubber particles and, consequently, rubber cavitation/shear banding and plastic void growth mechanisms become active. At Delta K<Delta K-T, both neat and rubber-modified epoxies exhibit similar FCP resistance because the plastic zone size is smaller than the size of the rubber particles and hence, the rubber cavitation/shear banding and plastic void growth mechanisms are not operating. As a result of these interactions, the use of smaller 0.2 mu m rubber particles in place of 1.5 mu m rubber particles results in about one order of magnitude improvement in FCP resistance of the rubber-modified system, particularly near the threshold regime. Such mechanistic understanding of FCP behaviour was employed to model the FCP behaviour of rubber-modified epoxies. It is shown that the near threshold FCP behaviour is affected by the rubber particle size and blend morphology but not by the volume fraction of the modifiers. On the other hand, the slope of the Paris-Erdogan power law depends on the volume fraction of the modifiers and not on the particle size or blend morphology.
引用
收藏
页码:3777 / 3789
页数:13
相关论文
共 50 条
  • [31] THE USE OF LATEX RUBBER-MODIFIED POLYSTYRENE AS A MODEL SYSTEM FOR HIPS - EFFECT OF PARTICLE-SIZE
    COOK, DG
    RUDIN, A
    PLUMTREE, A
    JOURNAL OF APPLIED POLYMER SCIENCE, 1993, 48 (01) : 75 - 84
  • [32] Modelling mechanical properties of core-shell rubber-modified epoxies
    Wang, XM
    Xiao, KQ
    Ye, L
    Mai, YW
    Wang, CH
    Rose, LRF
    ACTA MATERIALIA, 2000, 48 (02) : 579 - 586
  • [33] RUBBER-MODIFIED EPOXIES .2. MORPHOLOGY AND MECHANICAL-PROPERTIES
    MANZIONE, LT
    GILLHAM, JK
    MCPHERSON, CA
    JOURNAL OF APPLIED POLYMER SCIENCE, 1981, 26 (03) : 907 - 919
  • [34] Void nucleation models and their implications for the material behavior of rubber-modified epoxies
    Jeong, HY
    FRACTURE AND STRENGTH OF SOLIDS, PTS 1 AND 2, 2000, 183-1 : 1195 - 1200
  • [35] RUBBER-TOUGHENED POLYFUNCTIONAL EPOXIES - DIFFERENT MOLECULAR-WEIGHTS OF RUBBER-MODIFIED BROMINATED EPOXIES FOR GRAPHITE COMPOSITES
    NIR, Z
    GILWEE, WJ
    KOURTIDES, DA
    PARKER, JA
    PLASTICS ENGINEERING, 1983, 39 (03) : 49 - 49
  • [36] EFFECT OF NOTCH SEVERITY ON FATIGUE FRACTURE IN A RUBBER-MODIFIED GLASSY POLYMER
    RINK, M
    GUIDETTI, B
    FRASSINE, R
    CASTELLANI, L
    JOURNAL OF MATERIALS SCIENCE, 1994, 29 (11) : 3071 - 3079
  • [37] Particle cavitation in rubber toughened epoxies: the role of particle size
    F. J. Guild
    A. J. Kinloch
    A. C. Taylor
    Journal of Materials Science, 2010, 45 : 3882 - 3894
  • [38] RUBBER-MODIFIED THERMOSETS - PREDICTION OF THE PARTICLE-SIZE DISTRIBUTION OF DISPERSED DOMAINS
    VAZQUEZ, A
    ROJAS, AJ
    ADABBO, HE
    BORRAJO, J
    WILLIAMS, RJJ
    POLYMER, 1987, 28 (07) : 1156 - 1164
  • [39] Particle cavitation in rubber toughened epoxies: the role of particle size
    Guild, F. J.
    Kinloch, A. J.
    Taylor, A. C.
    JOURNAL OF MATERIALS SCIENCE, 2010, 45 (14) : 3882 - 3894
  • [40] EFFECT OF RUBBER PARTICLE-PLASTIC ZONE INTERACTIONS ON FATIGUE-CRACK PROPAGATION BEHAVIOR OF RUBBER-MODIFIED EPOXY POLYMERS
    AZIMI, HR
    PEARSON, RA
    HERTZBERG, RW
    JOURNAL OF MATERIALS SCIENCE LETTERS, 1994, 13 (20) : 1460 - 1464