Fatigue failure mechanisms of short glass-fiber reinforced nylon 66 based on nonlinear dynamic viscoelastic measurement

被引:62
作者
Noda, K
Takahara, A
Kajiyama, T [1 ]
机构
[1] Kyushu Univ, Fac Engn, Dept Appl Chem, Higashi Ku, Fukuoka 8128581, Japan
[2] Asahi Chem Ind Co Ltd, Kawasaki Ku, Kawasaki, Kanagawa 2100863, Japan
[3] Kyushu Univ, Inst Fundamental Res Organ Chem, Higashi Ku, Fukuoka 8128581, Japan
关键词
fatigue failure mechanisms; glass-fiber; viscoelastic;
D O I
10.1016/S0032-3861(00)00897-1
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The fatigue behavior of short glass-fiber reinforced nylon 66 under stress controlled fatigue tests was studied on the basis of the nonlinear dynamic viscoelasticity measurements. In order to analyze the effect of nonlinear viscoelasticity on the fatigue behavior, quantitative measurements of nonlinear viscoelasticity have been carried out based on Fourier analysis. It was found that the nonlinear viscoelastic behavior that was closely related to the irreversible structural change appeared markedly during fatigue process. The failure models in fatigue process were proposed based on the cross-section morphology under optical microscopic observation before final failure of the specimens. The fatigue behavior could be classified into the two failure mechanisms, depending on whether the fatigue test was carried out below or above glass transition temperature of the matrix nylon 66. The fatigue process proceeded with the following steps:(l) the damage started with void formation at fiber ends; (2) the microcracks propagated around the fiber ends (T less than or equal to T-g) or the microcracks propagated bring accompanied with debonding along the fiber sides and also, forming the crack walls(T > T-g); (3) the cracks propagated between the fiber ends(T greater than or equal to T-g) in a brittle manner, or the crack walls dominantly remained being connected by bridges(T > T-g) in a ductile manner; (4) the fast crack propagation occurred, after the crack reached to a critical size, and finally, the specimen failed. (C) 2001 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:5803 / 5811
页数:9
相关论文
共 18 条
[1]  
Handa K, 1999, J APPL POLYM SCI, V72, P1783, DOI 10.1002/(SICI)1097-4628(19990624)72:13<1783::AID-APP14>3.0.CO
[2]  
2-B
[3]  
Hertzberg RW, 1980, FATIGUE ENG PLASTICS
[4]   Mechanisms of fatigue in short glass fiber reinforced polyamide 6 [J].
Horst, JJ ;
Spoormaker, JL .
POLYMER ENGINEERING AND SCIENCE, 1996, 36 (22) :2718-2726
[5]   EFFECT OF CRYSTALLINE RELAXATION ON FATIGUE BEHAVIOR OF THE ORIENTED HIGH-DENSITY POLYETHYLENE BASED ON NONLINEAR VISCOELASTIC MEASUREMENTS [J].
JO, NJ ;
TAKAHARA, A ;
KAJIYAMA, T .
POLYMER JOURNAL, 1994, 26 (09) :1027-1036
[6]   Effect of aggregation structure on nonlinear dynamic viscoelastic characteristics of oriented high-density polyethylenes under cyclic fatigue [J].
Jo, NJ ;
Takahara, A ;
Kajiyama, T .
POLYMER, 1997, 38 (20) :5195-5201
[7]   ANALYSIS OF FATIGUE BEHAVIOR OF HIGH-DENSITY POLYETHYLENE BASED ON NONLINEAR VISCOELASTIC MEASUREMENT UNDER CYCLIC FATIGUE [J].
JO, NJ ;
TAKAHARA, A ;
KAJIYAMA, T .
POLYMER JOURNAL, 1993, 25 (07) :721-729
[8]   FATIGUE CRACK-PROPAGATION IN SHORT AND LONG FIBER-REINFORCED INJECTION-MOLDED PA-6.6 COMPOSITES [J].
KARGERKOCSIS, J ;
FRIEDRICH, K .
COMPOSITES, 1988, 19 (02) :105-114
[9]   MECHANISMS OF FATIGUE FRACTURE IN SHORT GLASS FIBER-REINFORCED POLYMERS [J].
LANG, RW ;
MANSON, JA ;
HERTZBERG, RW .
JOURNAL OF MATERIALS SCIENCE, 1987, 22 (11) :4015-4030
[10]   Effects of main chain rigidity on nonlinear dynamic viscoelasticity and fatigue performance for polymeric fibres [J].
Liang, T ;
Takahara, A ;
Saito, K ;
Kajiyama, T .
POLYMER, 1998, 39 (22) :5387-5392