The present state of fatigue life assessment of composite materials is largely empirical. This paper discusses how the discipline of damage mechanics can elevate this status to a mechanisms-based methodology. Specific topics addressed are mechanisms of fatigue damage, characterization of damage and its evolution, criticality of damage and prediction of fatigue life. Data and analysis results for cross ply laminates are used to illustrate and discuss the topics.
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References
1.
Akshantala, N. V. and Talreja, R., 1998, "A Mechanistic Model for Fatigue Damage Evolution in Composite Laminates,"Mechanics of Materials, 29, pp. 123-140.
2.
Akshantala, N. V. and Talreja, R., 1999, "A Micromechanics Based Model for Predicting Fatigue Life of Composite Laminates,"Materials Science and Engineering, to appear.
3.
Diao, X. , Ye, L. and Mai, Y-W., 1995, "A Statistical Model of Residual Strength and Fatigue Life of Composite Laminates,"Composites Science and Technology, 54, pp. 329-336.
4.
Diao, X. , Ye, L. and Mai, Y-W., 1996, "Simulation of Fatigue Performance of Cross-Ply Laminates,"Applied Composite Materials, 3, pp. 391-406.
5.
Gamstedt, E. K. and Talreja, R., 1999, "Fatigue Damage Mechanisms in Unidirectional Carbon-Fibre-Reinforced Plastics,"Journal of Materials Science, 34, pp. 2535-2546.
6.
Jamison, R. D. , Schulte, K., Reifsnider, K. L. and Stinchcomb, W. W., 1984, "Characterization and Analysis of Damage Mechanisms in Tension-Tension Fatigue of Graphite/Epoxy Laminates," in Effects of Defects in Composite Materials, ASTM STP 836, American Society for Testing and Materials, Philadelphia, pp. 21-55.
7.
Kachanov, L. M. , 1958, "Time of the Rupture Process in Creep Conditions,"Izv. Akad. Nauk SSROtd Tekh. Nauk, Vol. 8, pp. 26-31.
8.
Ladeveze, P. , 1994, "Inelastic Strains and Damage,"Damage Mechanics of Composite Materials, R. Talreja, Ed., Elsevier Science, Amsterdam, Vol. 9, pp. 117-138.
9.
Liu, S. and Nairn, J. A., 1990, "A Fracture Mechanics Analysis of Composite Microcracking Fatigue Experiments,"Proc. of the 5th Meeting of the American Society of Composites, p. 287.
10.
Nairn, J. A. and Hu, S., 1994, "Micromechanics of Damage: A Case Study of Matrix Microcracking," in Damage Mechanics of Composite Materials, R. Talreja, Ed., Elsevier Science, Amsterdam, Vol. 9, pp. 187-243.
11.
Reifsnider, K. L. , Case, S. and Xu, Y. L., 1996, "A Micro-Kinetic Approach to Durability Analysis: The Critical Element Method,"Progress in Durability Analysis of Composite Systems, A. H. Cardon, H. Fukuda and K. Reifsnider, Eds., A. A. Balkema, Rotterdam, pp. 3-11.
12.
Rice, J. , 1971, "Inelastic Constitutive Relations for Solids: An Internal Variable Theory and Its Application to Metal Plasticity,"J. Mech. Phys. Solids, Vol. 19, pp. 433-455.
13.
Talreja, R. , 1981, "Fatigue of Composite Materials: Damage Mechanisms and Fatigue Life Diagrams,,"Proc. R. Soc. Lond., A378, pp. 461-475.
14.
Talreja, R. , 1985a, "A Continuum Mechanics Characterization of Damage in Composite Materials,"Proc. R. Soc. Lond., A399, pp. 195-216.
15.
Talreja, R. , 1985b, "On Design Criteria for Composite Structures Under Static and Fatigue Loads,"Structural Safety and Reliability, I. Konishiet al., Eds., International Association for Structural Safety and Reliability, New York, Vol. 1, pp. 425-434.
16.
Talreja, R. , 1986, "A Failure Reliability Model for Composite Laminates,"Composites '86, Recent Advances in Japan and the United States, K. Kawataet al., Eds., Japan Society for Composite Materials, Tokyo, pp. 109-116.
17.
Talreja, R. , 1990, "Internal Variable Damage Mechanics of Composite Materials,"Yielding, Damage and Failure of Anisotropic Solids, EGF5, J. P. Boehler, Ed., Mechanical Engineering Publications, London, pp. 509-533.
18.
Talreja, R. , 1994, "Damage Characterization by Internal Variables,"Damage Mechanics of Composite Materials, R. Talreja, Ed., Elsevier Science, Amsterdam, Vol. 9, pp. 53-78.