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A numerical model for predicting crack path and modes of damage in unidirectional metal matrix compositesA finite element-based numerical technique has been developed to simulate damage growth in unidirectional composites. This technique incorporates elastic-plastic analysis, micromechanics analysis, failure criteria, and a node splitting and node force relaxation algorithm to create crack surfaces. Any combination of fiber and matrix properties can be used. One of the salient features of this technique is that damage growth can be simulated without pre-specifying a crack path. In addition, multiple damage mechanisms in the forms of matrix cracking, fiber breakage, fiber-matrix debonding and plastic deformation are capable of occurring simultaneously. The prevailing failure mechanism and the damage (crack) growth direction are dictated by the instantaneous near-tip stress and strain fields. Once the failure mechanism and crack direction are determined, the crack is advanced via the node splitting and node force relaxation algorithm. Simulations of the damage growth process in center-slit boron/aluminum and silicon carbide/titanium unidirectional specimens were performed. The simulation results agreed quite well with the experimental observations.
Document ID
19930054563
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Bakuckas, J. G.
(Drexel Univ., Philadelphia, PA; National Research Council; NASA, Langley Research Center Hampton, VA, United States)
Tan, T. M.
(NASA Langley Research Center Hampton, VA, United States)
Lau, A. C. W.
(NASA Langley Research Center Hampton, VA, United States)
Awerbuch, J.
(Drexel Univ. Philadelphia, PA, United States)
Date Acquired
August 16, 2013
Publication Date
March 1, 1993
Publication Information
Publication: Journal of Reinforced Plastics and Composites
Volume: 12
Issue: 3
ISSN: 0731-6844
Subject Category
Composite Materials
Accession Number
93A38560
Funding Number(s)
CONTRACT_GRANT: N00014-85-K-0628
Distribution Limits
Public
Copyright
Other

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