Structure optimization of woven fabric composites for improvement of mechanical properties using a micromechanics model of woven fabric composites and a genetic algorithm

被引:6
作者
Hwang, Gunyong [1 ]
Kim, Dong Hyun [1 ]
Kim, Myungsoo [1 ]
机构
[1] Youngsan Univ, Sch Mech & Automot Engn, 288 Junam Ro, Yangsan Si 50510, Kyungsangnam Do, South Korea
来源
COMPOSITES AND ADVANCED MATERIALS | 2021年 / 30卷
关键词
woven fabric composites; optimization; mechanical property; micromechanics; genetic algorithm; fiber-reinforced composites; REINFORCED COMPOSITES; ELASTIC PROPERTIES; COMPACTION MODEL; BEHAVIOR; PREFORMS; FAILURE; PREDICTION; TENSILE; DESIGN; BODY;
D O I
10.1177/26349833211006114
中图分类号
TB33 [复合材料];
学科分类号
摘要
This research aims to optimize the mechanical properties of woven fabric composites, especially the elastic modulus. A micromechanics model of woven fabric composites was used to obtain the mechanical properties of the fiber composite, and a genetic algorithm (GA) was employed for the optimization tool. The structure of the fabric fiber was expressed using the width, thickness, and wave pattern of the fiber strands in the woven fabric composites. In the GA, the chromosome string consisted of the thickness and width of the fill and warp strands, and the objective function was determined to maximize the elastic modulus of the composite. Numerical analysis showed that the longitudinal mechanical properties of the strands contributed significantly to the overall elastic modulus of the composites because the longitudinal property was notably larger than the transverse property. Therefore, to improve the in-plane elastic modulus, the resulting geometry of the composites possessed large volumes of related strands with large cross-sectional areas and small strand waviness. However, the numerical results of the out-of-plane elastic modulus generated large strand waviness, which contributed to the fiber alignment in the out-of-plane direction. The findings of this research are expected to be an excellent resource for the structural design of woven fabric composites.
引用
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页数:16
相关论文
共 33 条
[1]   Three-dimensional properties of woven-fabric composites [J].
Aitharaju, VR ;
Averill, RC .
COMPOSITES SCIENCE AND TECHNOLOGY, 1999, 59 (12) :1901-1911
[2]   Carbon nanotube-reinforced composites as structural materials for microactuators in microelectromechanical systems [J].
Ashrafi, Behnam ;
Hubert, Pascal ;
Vengallatore, Srikar .
NANOTECHNOLOGY, 2006, 17 (19) :4895-4903
[3]  
Barbero EJ, 1999, MAT INTRO COMP MAT D, P15
[4]   A NEW APPROACH TO THE APPLICATION OF MORI-TANAKA THEORY IN COMPOSITE-MATERIALS [J].
BENVENISTE, Y .
MECHANICS OF MATERIALS, 1987, 6 (02) :147-157
[5]   An evaluation of different models for prediction of elastic properties of woven composites [J].
Byström, J ;
Jekabsons, N ;
Varna, J .
COMPOSITES PART B-ENGINEERING, 2000, 31 (01) :7-20
[6]   A micromechanical compaction model for woven fabric preforms. Part I: Single layer [J].
Chen, Zuo-Rong ;
Ye, Lin ;
Kruckenberg, Teresa .
COMPOSITES SCIENCE AND TECHNOLOGY, 2006, 66 (16) :3254-3262
[7]   A micromechanical compaction model for woven fabric preforms. Part II: Multilayer [J].
Chen, Zuo-Rong ;
Ye, Lin .
COMPOSITES SCIENCE AND TECHNOLOGY, 2006, 66 (16) :3263-3272
[8]   Mechanics analysis on the composite flywheel stacked from circular twill woven fabric rings [J].
Dai, Xingjian ;
Wang, Yong ;
Tang, Changliang ;
Guo, Xingfeng .
COMPOSITE STRUCTURES, 2016, 155 :19-28
[9]   Temperature-dependent thermal expansion behaviors of carbon fiber/epoxy plain woven composites: Experimental and numerical studies [J].
Dong, Kai ;
Peng, Xiao ;
Zhang, Jiajin ;
Gu, Bohong ;
Sun, Baozhong .
COMPOSITE STRUCTURES, 2017, 176 :329-341
[10]  
Goldberg D.E., 1989, Securing Machine Learning Algorithms, V1st, P59, DOI DOI 10.2824/874249