Elastoplastic damage micromechanics for continuous fiber-reinforced ductile matrix composites with progressive fiber breakage

被引:33
作者
Wu, Y. [1 ]
Ju, J. W. [1 ]
机构
[1] Univ Calif Los Angeles, Dept Civil & Environm Engn, Los Angeles, CA USA
关键词
Progressive damage evolution; fiber breakage; metal matrix composites; micromechanics-based homogenization; effective elastoplastic behavior; TENSILE-STRENGTH; PLASTICITY; METAL; BEHAVIOR; FAILURE; SIMULATION; MICROCOMPOSITE; DEFORMATION; FRACTURE; MODEL;
D O I
10.1177/1056789516655671
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
An elastoplastic damage micromechanical framework considering evolutionary fiber breakage is proposed to predict the overall material behaviors of continuous fiber-reinforced composites with ductile matrix under external loading. In the present work, we assume that the overall nonlinear behavior of a composite is primarily attributed to the plastic deformation in the matrix as well as the damage evolution due to fiber breakage. The effective elastoplastic deformations are governed by means of the effective yield surface derived from a representative microstructure with elastic fibers embedded in an elastoplastic matrix material. The matrix behaves elastically or plastically depending on the local stress, and the effective elastoplastic deformation obeys the associative plastic flow rule and isotropic hardening law. In addition, taking advantage of the eigenstrain due to fiber breakage together with a Weibull statistic model, the evolutionary fiber breakage mechanism is effectively predicted. Finally, the overall elastoplastic stress-strain responses are reached under the framework of micromechanics and damage mechanics. Comparisons between the proposed theoretical predictions and experimental data are performed to illustrate the capability of the proposed framework. In particular, the proposed model is employed to investigate the overall uniaxial and axisymmetric elastoplastic stress-strain responses of the continuous fiber-reinforced metal matrix composites. Studies of the initial yield surfaces at various damage levels are conducted as well.
引用
收藏
页码:3 / 27
页数:25
相关论文
共 50 条
[31]   DAMAGE MECHANISMS UNDER TENSILE AND FATIGUE LOADING OF CONTINUOUS FIBER-REINFORCED METAL-MATRIX COMPOSITES [J].
SCHULTE, K ;
MINOSHIMA, K .
COMPOSITES, 1993, 24 (03) :197-208
[32]   A micromechanically based model for damage-enhanced creep-rupture in continuous fiber-reinforced ceramic matrix composites [J].
Baxevanis, Theocharis ;
Charalambakis, Nicolas .
MECHANICS OF MATERIALS, 2010, 42 (05) :570-580
[33]   Micromechanics analysis on the microscopic damage mechanism and mechanical behavior of graphite fiber-reinforced aluminum composites under transverse tension loading [J].
Wang, Zhenjun ;
Wang, Zhongyuan ;
Xiong, Bowen ;
Cai, Changchun ;
Xu, Zhifeng ;
Yu, Huan .
JOURNAL OF ALLOYS AND COMPOUNDS, 2020, 815
[34]   A micromechanics method for transverse creep behavior induced by interface diffusion in unidirectional fiber-reinforced metal matrix composites [J].
Xu, Binbin ;
Guo, Fenglin .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2019, 159 :126-134
[35]   Multi-level micromechanics-based homogenization for the prediction of damage behavior of multiscale fiber-reinforced composites [J].
Kil, Taegeon ;
Bae, Jin-Ho ;
Yang, Beomjoo ;
Lee, H. K. .
COMPOSITE STRUCTURES, 2023, 303
[36]   Identifying design parameters controlling damage behaviors of continuous fiber-reinforced thermoplastic composites using micromechanics as a virtual testing tool [J].
Pulungan, Ditho ;
Lubineau, Gilles ;
Yudhanto, Arief ;
Yaldiz, Recep ;
Schijve, Warden .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2017, 117 :177-190
[37]   Computational study of micromechanical damage behavior in continuous fiber-reinforced ceramic composites [J].
Bheemreddy, V. ;
Chandrashekhara, K. ;
Dharani, L. R. ;
Hilmas, G. E. .
JOURNAL OF MATERIALS SCIENCE, 2016, 51 (18) :8610-8624
[38]   A micromechanics-driven model for compressive fatigue of fiber-reinforced composites [J].
Davidson, Paul ;
Waas, Anthony M. .
JOURNAL OF REINFORCED PLASTICS AND COMPOSITES, 2022, 41 (17-18) :661-669
[39]   Effects of dendrite interphase on the strength of continuous fiber-reinforced metal matrix composites [J].
Gu, MY ;
Qi, M .
MATERIALS LETTERS, 2003, 57 (08) :1385-1390
[40]   Continuous Casting Preparation Process of Helical Fiber-Reinforced Metal Matrix Composites [J].
Yang, Hui ;
Chang, Ming ;
Wu, Chunjing .
METALS, 2024, 14 (07)