Affiliation:
1. Aerospace Engineering Department, Texas A&M University, College Station, TX 77843
Abstract
A model is developed herein for predicting the evolution of interface degradation, matrix cracking, and delamination at multiple sites in laminated continuous fiber composite plates subjected to monotonic and/or cyclic mechanical loading. Due to the complicated nature of the many cracks and their interactions, a multi-scale micro-meso-local-global methodology is deployed in order to model all damage modes. Interface degradation is first modeled analytically on the microscale, and the results are homogenized to produce a cohesive zone model that is capable of predicting interface fracture. Subsequently, matrix cracking in the plies is modeled analytically on the meso-scale, and this result is homogenized to produce ply level damage dependent constitutive equations. The evolution of delaminations is considered on the local scale, and this effect is modeled using a three dimensional finite element algorithm. Results of this analysis are homogenized to produce damage dependent laminate equations. Finally, global response of the damaged plate is modeled using a plate finite element algorithm. Evolution of all three modes of damage is predicted via interfacing all four scales into a single multi-scale algorithm that is computationally tenable for use on a desktop computer. Results obtained herein suggest that this model may be capable of accurately predicting complex damage patterns such as that observed at open holes in laminated plates.
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Reference32 articles.
1. Talreja
R.
, “Transverse Cracking and Stiffness Reduction in Composite Laminates,” Journal of Composite Materials, Vol. 19, pp. 355–375, 1985.
2. Lee
J.-W.
, AllenD. H., and HarrisC. E., “Internal State Variable Approach for Predicting Stiffness Reduction in Fibrous Laminated Composites with Matrix Cracks,” Journal of Composite Materials, Vol. 23, pp. 1273–1291, 1989.
3. Lim
S. G.
, and HongC. S., “Prediction of Transverse Cracking and Stiffness Reduction in Cross-Ply Laminated Composites,” Journal of Composite Materials, Vol. 23, pp. 695–713, 1989.
4. Highsmith, A. L., and K. L. Reifsnider, “Stiffness-Reduction Mechanisms in Composite Laminates,” Damage in Composite Materials, ASTM STP 775, L. L. Reifsnider, ed., American Society for Testing and Materials, pp. 103–117, 1982.
5. Laws
N.
, DvorakG. J., and HejaziM., “Stiffness Changes in Unidirectional Composites Caused by Crack Systems,” Mechanics of Materials, Vol. 2, pp. 123–137, 1983.
Cited by
16 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献