An Analytical Crack-Tip Element for Layered Elastic Structures

Author:

Davidson B. D.1,Hu Hurang1,Schapery R. A.2

Affiliation:

1. Department of Mechanical, Aerospace, and Manufacturing Engineering, Syracuse University, Syracuse, NY 13244

2. Department of Aerospace Engineering and Engineering Mechanics, University of Texas, Austin, TX 78712

Abstract

A previously developed linear elastic crack-tip element analysis is reviewed briefly, and then extended and refined for practical applications. The element provides analytical expressions for total energy release rate and mode mix in terms of plate theory force and moment resultants near the crack tip. The element may be used for cracks within or between homogeneous isotropic or orthotropic layers, as well as for delamination of laminated composites. Classical plate theory is used to derive the equations for total energy release rate and mode mix; a “mode mix parameter,” Ω, as obtained from a separate continuum analysis is necessary to complete the mode mix decomposition. This parameter depends upon the elastic and geometrical properties of the materials above and below the crack plane, but not on the loading. A relatively simple finite element technique for determining the mode-mix parameter is presented and convergence in terms of mesh refinement is studied. Specific values of Ω are also presented for a large number of cases. For those interfaces where a linear elastic solution predicts an oscillatory singularity, an approach is described which allows a unique, physically meaningful value of fracture mode ratio to be defined. This approach is shown to provide predictions of crack growth between dissimilar homogeneous materials that are equivalent to those obtained from the oscillatory field solution. Application of the approach to delamination in fiber-reinforced laminated composites is also discussed.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference27 articles.

1. Biot, M. A., 1972, “Nonlinear Effect of Initial Stress on Crack Propagation Between Similar and Dissimilar Orthotropic Media,” Quarterly of Applied Mathematics, Vol. 30.

2. Broek, D., 1982, Elementary Engineering Fracture Mechanics, Martinus Nijhoff.

3. Chai H. , 1984, “The Characterization of Mode I Delamination Failure in Non-Woven, Multidirectional Laminates,” Composites, Vol. 15, No. 4, pp. 277–290.

4. Davidson, B. D., 1994a, “Prediction of Energy Release Rate for Edge Delamination Using a Crack Tip Element Approach,” Fifth ASTM Symposium on Composite Materials: Fatigue and Fracture, R. H. Martin, ed., American Society for Testing and Materials, ASTM STP 1230.

5. Davidson, B. D., 1994b, “Prediction of Delamination Growth in Laminated Structures,” Failure Mechanics in Advanced Polymeric Composites, AMD-Vol. 196, G. A. Kardomateas and Y. D. S. Rajapakse, eds., ASME, New York, pp. 43–65.

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