4.6 Article

Nonlinear viscoelastic multi-scale repetitive unit cell model of 3D woven composites with damage evolution

期刊

INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES
卷 50, 期 22-23, 页码 3539-3554

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijsolstr.2013.06.020

关键词

3D orthogonal woven composites; (3DOWCs); Micro/meso-scale repeating unit cells; (RUCs); Viscoelasticity; User-defined material subroutine (UMAT); Finite element analysis (FEA)

资金

  1. National Science Foundation of China [11272087]
  2. Foundation for the Author of National Excellent Doctoral Dissertation of PR China (FANEDD) [201056]
  3. Shanghai Rising-Star Program [11QH1400100]
  4. Fundamental Research Funds for the Central Universities of China

向作者/读者索取更多资源

Three-dimensional (3D) textile composites have great potential applications to aircrafts and high speed vehicles because of the high strength/weight ratios and the capabilities of manufacturing complex, net-shape preforms. This paper reports the nonlinear viscoelastic responses and damage mechanisms of one kind of 3D textile composites, named as 3D orthogonal woven composite (3DOWC) under quasi-static tensile loading based on a micro/meso-scale repetitive unit cells (RUCs) model. In the RUCs model, the resin is described with a nonlinear viscoelastic material and the fibers/tows with an elastic material. The damage initiation and propagation in resin are simulated by the post-damage constitutive models with maximum principal theory failure criteria. The fibers/tows impregnated with resin are defined by elastic transverse-isotropic material model with ultimate strengths failure of 'expanded smeared crack' both along and perpendicular to fibers/tows axis direction. The engineering parameters and ultimate strengths of homogenized fibers/tows filled with matrix in meso-RUCs model are transferred from the numerical analysis of the micro-RUCs. The results are compared with experimental and theoretical values of RUC deformation and damage initiation and propagation under monotonic axial loading. The methodology of establishing the nonlinear visco-elastic multi-scale model of 3D textile composites without introducing the real fabric architecture in finite element analyses is explained. With the multi-scale RUCs model, the mechanical behaviors of other kinds of 3D textile composites can also be predicted. (C) 2013 Elsevier Ltd. All rights reserved.

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