Finite element model of thermal stress effects on stress distributions in rubber modified glassy polymers Part 1 - Single particle model

被引:4
作者
Jar, PYB [1 ]
Todo, M
Takahashi, K
Konishi, K
Shinmura, T
机构
[1] Univ Alberta, Dept Mech Engn, Edmonton, AB T6G 2G8, Canada
[2] Kyushu Univ, Appl Mech Res Inst, Kasuga, Fukuoka 8168580, Japan
[3] Chiba Plant, Dept Res & Dev, Chiba 290, Japan
关键词
D O I
10.1179/146580101101541507
中图分类号
TB33 [复合材料];
学科分类号
摘要
A single particle finite element model has been used to analyse the effects of thermal stresses on the stress distributions near the interface between the rubber particle and the matrix in rubber modified polymers. The thermal stresses are due to the mismatch of thermal contraction between the rubber particle and the matrix during cooling. The study is to determine whether the thermal stresses are significant enough to affect the distribution of normal stress and von Mises stress at the particle/matrix interface. Results from the single particle model show that a temperature decrease of 60 K, i.e. from 100 to 40 degreesC. can generate a circumferential compressive stress at the particle/ matrix interface, which is of the same magnitude as the tensile stress required to cause failure in most of the glassy polymers. Although the effect on the circumferential normal stress is significant, its effect on the von Mises stress is very small. The results also show that when the cavitation occurs in the rubber particle, the thermal stress effect is drastically reduced. This study provides encouraging evidence for the importance of thermal stresses in determining the stress distributions in rubber modified polymers and suggests that thermal stresses should be considered in the deformation analysis of these materials. (C) 2001 IoM Communications Ltd.
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页码:101 / 109
页数:9
相关论文
共 29 条
[1]  
ARGON AS, 1990, ADV POLYM SCI CRAZIN, V2
[2]   Fracture behaviour of an ABS-toughened SMI/SAN blend under izod impact and tensile tests [J].
BenJar, PY ;
Wu, RY ;
Kuboki, T ;
Takahashi, K ;
Shinmura, T .
JOURNAL OF MATERIALS SCIENCE LETTERS, 1997, 16 (18) :1489-1494
[3]   NEW MECHANISM FOR CRAZE TOUGHENING OF GLASSY-POLYMERS [J].
BROWN, HR ;
ARGON, AS ;
COHEN, RE ;
GEBIZLIOGLU, OS ;
KRAMER, EJ .
MACROMOLECULES, 1989, 22 (02) :1002-1004
[4]   A MODEL FOR PARTICLE CAVITATION IN RUBBER-TOUGHENED PLASTICS [J].
BUCKNALL, CB ;
KARPODINIS, A ;
ZHANG, XC .
JOURNAL OF MATERIALS SCIENCE, 1994, 29 (13) :3377-3383
[5]  
BUCKNALL CB, 1977, TOUGHENED PLASTICS, pCH7
[6]   Micromechanics of rubber-toughened polymers [J].
Chen, XH ;
Mai, YW .
JOURNAL OF MATERIALS SCIENCE, 1998, 33 (14) :3529-3539
[7]   MODELING THE PROPERTIES OF RUBBER-MODIFIED EPOXY POLYMERS [J].
GUILD, FJ ;
KINLOCH, AJ .
JOURNAL OF MATERIALS SCIENCE, 1995, 30 (07) :1689-1697
[8]   THE INFLUENCE OF MATERIAL PROPERTIES ON THE PREDICTED BEHAVIOR OF RUBBER-TOUGHENED POLYMERS [J].
GUILD, FJ ;
YOUNG, RJ ;
LOVELL, PA .
JOURNAL OF MATERIALS SCIENCE LETTERS, 1994, 13 (01) :10-14
[9]   THE ROLE OF PLASTIC VOID GROWTH IN THE FRACTURE OF RUBBER-TOUGHENED EPOXY POLYMERS [J].
HUANG, Y ;
KINLOCH, AJ .
JOURNAL OF MATERIALS SCIENCE LETTERS, 1992, 11 (08) :484-487
[10]  
Jar PYB, 1998, J APPL POLYM SCI, V69, P513, DOI 10.1002/(SICI)1097-4628(19980718)69:3<513::AID-APP11>3.0.CO