Prediction of anisotropic coefficient of thermal expansion for laminated composite using multiscale numerical models

被引:0
|
作者
Wan P. [1 ]
Xia H. [1 ]
Liu C. [1 ]
Jia J. [1 ]
He X. [2 ]
Ding A. [2 ]
机构
[1] Department of PLA, Nanjing
[2] School of Materials Science and Engineering, Wuhan University of Technology, Wuhan
基金
中国国家自然科学基金;
关键词
cross-ply; laminate; multiscale; numerical simulation; RVE;
D O I
10.13801/j.cnki.fhclxb.20220331.001
中图分类号
学科分类号
摘要
Representative volume element (RVE) in lamina and laminate levels were build based on the arrays of fiber into resin and stacking sequences in laminated composites. In combination with the specified boundary conditions in RVE models, coefficient of thermal expansions (CTEs) and engineering constants for lamina were predicted, followed by an evaluation of anisotropic CTEs for laminate using multiscale method. The results show that numerically predicted CTEs match well with experimental data as compared to theoretically calculated value as a whole, especially for the numerically predicated CTEs of unidirectional T300/5208, P75/934 and C6000/Pi carbon fiber reinforced epoxy resin matrix composites with a difference of 3%, 1% and 2%, respectively. And the predicted engineering constants using RVE model for unidirectional ECR/Derakane 510C glass fiber reinforced vinyl ester resin matrix composites were also in good agreement with experimentally measured results, with a maximum difference of 7.5%. Meanwhile, the difference between experimental results and forecasted CTEs in through-thickness direction for cross-ply AS4/8552 carbon fiber reinforced resin matrix composites using RVE model of laminated composites is nearly negligible with a difference of 0.08%. Finally, the equivalent CTEs of laminated composite with different stacking sequences were estimated using RVE models of lamina and laminate levels for cross-ply composite structures in large large-scale structures, and the results reveal that CTEs in through-thickness direction are weakly related to the ratio of stacking sequences in hoop direction. © 2023 Beijing University of Aeronautics and Astronautics (BUAA). All rights reserved.
引用
收藏
页码:1208 / 1217
页数:9
相关论文
共 27 条
  • [21] SUN C, LIAO W., Analysis of thick section composite laminates using effective moduli, Journal of Composite Materials, 24, 9, pp. 977-993, (1990)
  • [22] SUN C, LI S., Three-dimensional effective elastic constants for thick laminates, Journal of Composite Materials, 22, 7, pp. 629-639, (1988)
  • [23] BOWLES D E, TOMPKINS S S., Prediction of coefficients of thermal expansion for unidirectional composites, Journal of Composite Materials, 23, 4, pp. 370-388, (1989)
  • [24] SCHAPERY R A., Thermal expansion coefficients of composite materials based on energy principles, Journal of Composite Materials, 2, 3, pp. 380-404, (1968)
  • [25] CHAMIS C., Simplified composite micromechanics equations of hygral, thermal, and mechanical properties, Transactions of the Asae, 39, 3, pp. 999-1004, (1984)
  • [26] Fiber-reinforced plastics composites− Determination of tensile properties: GB/T 1447− 2005, (2005)
  • [27] WISNOM M R, POTTER K D, ERSOY N., Shear-lag analysis of the effect of thickness on spring-in of curved composites, Journal of Composite Materials, 41, 11, pp. 1311-1324, (2007)