Estimate Effects of Reinforced Plain 2D-Woven Fabric Crimp on Elastic Constants of Geo-Composite by Analytical Models: Published online: 10/03/2026
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#2D-woven fabric crimp #Elastic mechanical properties #Unit cell modeling #Geo-composite #Stiffness and compliance averaging #Analytical modelsTài liệu tham khảo
D. Ghlaim, “Woven factor for the mechanical properties of woven composite materials,” J. Eng., vol. 6, p. 4, 2010.
S. Kari and M. Kumar, “Effect of yarn cross-sectional shapes and crimp on the mechanical properties of 3D woven composites,” Composites, 2009, doi: 10.5281/zenodo.15457208.
F. Stig and S. Hallström, “Effects of crimp and textile architecture on the stiffness and strength of composites with 3D reinforcement,” Adv. Mater. Sci. Eng., vol. 2019, no. 1, 2021, doi: 10.1155/2019/8439530.
M. Dahale, G. Neale, and R. Lupicini, “Effect of weave parameters on the mechanical properties of 3D woven glass composites,” Compos. Struct., 2020, doi: 10.1016/j.compstruct.2019.110947.
J. Whitcomb and J. Noh, “Evaluation of various approximate analyses for plain weave composites,” J. Compos. Mater., vol. 33, 1999, doi: 10.1177/002199839903302101.
A. Bogdanovich and C. Pastore, Mechanics of Textile and Laminated Composites. London, U.K.: Chapman & Hall, 1996.
T. Ishikawa and T. W. Chou, “Elastic behavior of woven hybrid composites,” J. Compos. Mater., vol. 6, pp. 2–19, 1982.
T. Ishikawa and T. W. Chou, “Stiffness and strength behavior of woven fabric composite,” J. Mater. Sci., vol. 17, pp. 3211–3220, 1982.
K. Saka and J. Harding, “A simple laminate theory approach to the prediction of the tensile impact strength of woven hybrid,” Composites, vol. 21, pp. 439–447, 1990.
J. Carey and M. Munro, “Longitudinal elastic modulus prediction of a 2-D braided fiber composite,” J. Reinf. Plast. Compos., vol. 22, pp. 813–631, 2003.
A. K. Mohamad and R. Yafai, “New geometrical modelling for 2D fabric and 2.5D,” Textiles, pp. 142–161, 2022.
G. Zhou and Q. Sun, “Experimental investigation on the effects of fabric architectures on mechanical and damage behaviors of carbon/epoxy woven composites,” Compos. Struct., vol. 257, 2020, doi: 10.1016/j.compstruct.2020.113366.
X. Jianxun, G. Weicheng, Z. Rui, and L. Guozeng, “An analytical model for the in-plane elastic shear modulus of plain-woven fabric composites and its application and experimental validation,” Text. Res. J., vol. 95, no. 15–16, 2025, doi: 10.1177/00405175241276815.
N. S. Karaduman, “Experimental investigation of the effect of weave type on the mechanical properties of woven hemp fabric/epoxy composites,” J. Compos. Mater., vol. 56, no. 8, pp. 1255–1265, 2022.
S. Sagar, X. Wang, K. Ali, and Y. Yang, “A study on the mechanical performance of aramid-epoxy laminated composites with plain and twill woven structure,” in Proc. 2022 Sino-Africa Int. Symp. Textile Apparel (SAISTA), Shanghai, China, 2022.
S. Samala and N. P. Thanh, “Correlation of microstructure and mechanical properties of various fabric reinforced geo-polymer composites after exposure to elevated temperature,” Ceram. Int., vol. 41, pp. 12115–12129, 2015.
ASTM D790-03, Standard Test Methods for Flexural Properties of Unreinforced and Reinforced Plastics and Electrical Insulating Materials.
EN ISO 13934, Textiles — Tensile Properties of Fabrics.
ASTM C1275-00, Standard Test Method for Monotonic Tensile Behavior of Continuous Fiber-Reinforced Advanced Ceramics with Solid Rectangular Cross-Section Test Specimens at Ambient Temperature.
A. K. Kaw, Mechanics of Composite Materials. Taylor & Francis, 2006.
