Computational micromechanics model for the analysis of fiber kinking in unidirectional fiber-reinforced polymers

被引:41
作者
Herraez, M. [1 ,2 ]
Bergan, A. C. [3 ]
Lopes, C. S. [1 ]
Gonzalez, C. [1 ,2 ]
机构
[1] IMDEA Mat Inst, C Eric Kandel 2, Madrid 28906, Spain
[2] Univ Politecn Madrid, Dept Ciencia Mat, ETS Ingenieros Caminos Canales & Puertos, E-28040 Madrid, Spain
[3] NASA, Durabil Damage Tolerance & Reliabil Branch, Langley Res Ctr, Hampton, VA 23681 USA
关键词
Fiber-reinforced polymers (FRP); Polymer-matrix composites (PMC); Micro-mechanics; Computational modeling; Fiber kinking; AXIAL COMPRESSIVE STRENGTH; PLASTIC-DAMAGE MODEL; PART II; FRACTURE-TOUGHNESS; COMPOSITES; FAILURE; GROWTH; BEHAVIOR; TENSILE; CFRP;
D O I
10.1016/j.mechmat.2019.103299
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A computational micromechanics (CMM) model is developed to analyze fiber kinking, which is a failure mechanism that takes place in fiber-reinforced composites when they are loaded under longitudinal compression. The CMM model consists of a single AS4 carbon fiber with an initial misalignment embedded in an 8552 polymer matrix. The deformation of the model is governed by periodic boundary conditions (PBC). The relatively simple CMM model enables the evaluation of the role played by initial misalignment of the fiber, shear yielding of the matrix and fiber-matrix debonding. A novel microscale experimental technique devoted to the characterization of the longitudinal compressive strength of the fibers, X-c(f), is developed. By exercising the model and comparing it with several models in the literature, the nonlinear shear response of the composite lamina is shown to play a fundamental role not only in the prediction of the compressive strength X-c,X- but also during the post-peak regime in terms of residual stress sigma(r) and fiber rotation phi. Finally, the influence of the fiber-matrix interface damage (not considered in most other fiber kinking models) on the fiber kinking phenomenon is assessed through a parametric study.
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页数:15
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