机械工程学报 ›› 2024, Vol. 60 ›› Issue (8): 186-195.doi: 10.3901/JME.2024.08.186
谢晨阳1, 黄鲛2, 肖光明3, 张贤杰1, 王俊彪1, 李玉军1,3
收稿日期:2023-03-14
修回日期:2023-09-24
出版日期:2024-04-20
发布日期:2024-06-17
作者简介:谢晨阳,男,1999年出生。主要研究方向为复合材料制造及力学。E-mail:XieCy@mail.nwpu.edu.cn;李玉军(通信作者),男,1987年出生,博士,副教授。主要研究方向为复合材料制造工艺力学、复合材料多尺度损伤与断裂。E-mail:li.yujun@nwpu.edu.cn
基金资助:XIE Chenyang1, HUANG Jiao2, XIAO Guangming3, ZHANG Xianjie1, WANG Junbiao1, LI Yujun1,3
Received:2023-03-14
Revised:2023-09-24
Online:2024-04-20
Published:2024-06-17
摘要: 提出一种单向纤维增强复合材料(Unidirectional fiber reinforced polymer,UD-FRP)周期性高保真代表性体积元(Representative volume element,RVE)的创建算法。首先基于随机游走算法,采用贝塞尔(Bézier)曲线表征纤维形态,使曲线各控制点处的切线方向的统计分布服从多变量冯·米塞斯-费歇尔(Von-MISES FISCHER)函数,创建出初步的软核模型。进而基于力偏置算法,在保证RVE内部纤维不产生过度扭曲的前提下,调整纤维间的重叠,创建出对应的硬核模型。调整过程中,通过引入三维近邻列表算法,大幅提高算法效率。最后对所创建的含有纤维波纹度特征的RVE模型进行了横向剪切渐进损伤分析,用以揭示该方法的研究价值及应用领域。结果表明,该方法能够快速有效地创建不同尺寸及纤维波纹度的RVE几何构型,这种含有波纹度特征的纤维构型会对UD-FRP的横向剪切性能产生一定影响,纤维波纹度越大,UD-FRP的横向剪切强度越大。
中图分类号:
谢晨阳, 黄鲛, 肖光明, 张贤杰, 王俊彪, 李玉军. 考虑纤维波纹度的单向复合材料代表性体积元生成算法[J]. 机械工程学报, 2024, 60(8): 186-195.
XIE Chenyang, HUANG Jiao, XIAO Guangming, ZHANG Xianjie, WANG Junbiao, LI Yujun. A Algorithm to Generate Representative Volume Elements for Unidirectional Composites Considering Fiber Misalignment[J]. Journal of Mechanical Engineering, 2024, 60(8): 186-195.
| [1] ALVES M P,JUNIOR C A C,HA S K. Fiber waviness and its effect on the mechanical performance of fiber reinforced polymer composites:An enhanced review[J]. Composites Part A:Applied Science and Manufacturing,2021,149:106526. [2] 刘登俊,关庆丰,王志平,等. 电热处理对湿热环境作用下碳纤维环氧复合材料的损伤机制[J]. 机械工程学报,2017,53(18):64-70. LIU Dengjun,GUAN Qingfeng,WANG Zhiping,et al. Damage mechanism of electrothermal treatment on carbon fiber epoxy composites under humid and hot environment [J]. Journal of Mechanical Engineering,2017,53(18):64-70. [3] 谭华,晏石林. 热固性树脂基复合材料固化过程的三维数值模拟[J]. 复合材料学报,2004,21(6):167-172. TAN Hua,YAN Shilin. Three-dimensional simulation of curing process for thermoset composites[J]. Acta Materiae Compositae Sinica,2004,21(6):167-172. [4] CREIGHTON C J,SUTCLIFFE M P F,CLYNE T W. A multiple field image analysis procedure for characterisation of fibre alignment in composites[J]. Composites Part A Applied Science & Manufacturing,2001,32(2):221-229. [5] CHRISTIAN W J R,DIAZDELAO F A,ATHERTON K,et al. An experimental study on the manufacture and characterization of in-plane fibre-waviness defects in composites[J]. Royal Society Open Science,2018,5(5):180082. [6] MELRO A R,CAMANHO P P,PINHO S T. Generation of random distribution of fibres in long-fibre reinforced composites[J]. Composites Science and Technology,2008,68(9):2092-2102. [7] VAUGHAN T J,MCCARTHY C T. Micromechanical modelling of the transverse damage behaviour in fibre reinforced composites[J]. Composites Science and Technology,2011,71(3):388-396. [8] FAESSEL M,DELISEE C,BOS F,et al. 3D Modelling of random cellulosic fibrous networks based on X-ray tomography and image analysis[J]. Composites Science and Technology,2005,65(13):1931-1940. [9] RECCHIA S,ZHENG J,PELEGRI A A. Fiberwalk:A random walk approach to fiber representative volume element creation[J]. Acta Mechanica,2014,225(4-5):1301-1312. [10] FUKUI K,NONAMI R. Simultaneous optimization of carbon fiber allocation and orientation by IFM-GA[J]. Chinese Journal of Mechanical Engineering:Additive Manufacturing Frontiers,2023,2(2):100078. [11] 朱晓鹏,陈磊,黄俊. 复合材料周期结构数学均匀化方法的一种新型单胞边界条件[J]. 计算力学学报,2021,38(3):401-410. ZHU Xiaopeng,CHEN Lei,HUANG Jun. A new unit cell boundary condition for mathematical homogenization method of composite periodic structure[J]. Journal of Computational Mechanics,2021,38(3):401-410. [12] CATALANOTTI G,SEBAEY T A. An algorithm for the generation of three-dimensional statistically representative volume elements of unidirectional fibre-reinforced plastics:Focusing on the fibres waviness[J]. Composite Structures,2019,227:111272. [13] SEBAEY T A,CATALANOTTI G,O'DOWD N P. A microscale integrated approach to measure and model fibre misalignment in fibre-reinforced composites[J]. Composites Science and Technology,2019,183:107793. [14] ALTENDORF H,JEULIN D. Random-walk-based stochastic modeling of three-dimensional fiber systems[J]. Physical Review E Statistical Nonlinear & Soft Matter Physics,2011,83(4):041804. [15] Chapelle L,Lévesque M,Brøndsted P,et al. Generation of non-overlapping fiber architecture[C]//20th International Conference on Composite Materials. ICCM20,2015. [16] CATALANOTTI G. On the generation of RVE-based models of composites reinforced with long fibres or spherical particles[J]. Composite Structures,2016,138:84-95. [17] VARANDAS L F,CATALANOTTI G,MELRO A R,et al. Micromechanical modelling of the longitudinal compressive and tensile failure of unidirectional composites:The effect of fibre misalignment introduced via a stochastic process[J]. International Journal of Solids and Structures,2020,203:157-176. [18] MATTSON W,RICE B M. Near-neighbor calculations using a modified cell-linked list method[J]. Computer Physics Communications,1999,119(2-3):135-148. [19] KASHTALYAN M. Finite element analysis of composite materials using Abaqus™[J]. Aeronautical Journal,2014,118(1199):98-99. [20] 郭慧,黄玉东,刘丽,等. T300和国产碳纤维本体的力学性能对比及其分析[J]. 宇航学报,2009(5):2068-2072. GUO Hui,HUANG Yudong,LIU Li,et al. Comparison and analysis of mechanical properties between T300 and domestic carbon fiber body [J]. Journal of Astronautics,2009(5):2068-2072. [21] Hui X,XU Y,Zhang W. An integrated modeling of the curing process and transverse tensile damage of unidirectional CFRP composites[J]. Composite Structures,2021,263(5):113681. [22] TRIANTAFYLLIDIS N,BARDENHAGEN S. The influence of scale size on the stability of periodic solids and the role of associated higher order gradient continuum models[J]. Journal of the Mechanics & Physics of Solids,1996,44(11):1891-1928. [23] KANIT T,FOREST S,GALLIET I,et al. Determination of the size of the representative volume element for random composites:Statistical and numerical approach[J]. International Journal of Solids & Structures,2003,40(13-14):3647-3679. |
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