[1] 黄丰毅. 三维机织碳纤维圆筒复合材料制备及力学性能研究[D]. 武汉: 武汉纺织大学, 2022. [2] KIM H, PARK J. Improved modeling method for 3-dimensional woven composites using weaving parameters[J]. International Journal of Aeronautical and Space Sciences, 2021, 22(4): 824-833. [3] HONG X Y, PAN Z X, YU J J, et al. Investigation of forming process and deformation mechanisms of 3D warp interlock fabric[J]. Thin-Walled Structures, 2024, 201: 111964. [4] ALAMDAR-YAZDI A, HEPPLER G R. Cross-sectional shapes of the yarn in cotton gray woven fabric[J]. The Journal of The Textile Institute, 2011, 102(3): 248-262. [5] OZGEN B, GONG H. Modelling of yarn flattening in woven fabrics[J]. Textile Research Journal, 2011, 81(15): 1523-1531. [6] LIN H Y, NEWTON A. Computer representation of woven fabric by using B-splines[J]. The Journal of The Textile Institute, 1999, 90(1): 59-72. [7] LU H Y, GUO L C, LIU G, et al. Progressive damage investigation of 2.5D woven composites under quasi-static tension[J]. Acta Mechanica, 2019, 230(4): 1323-1336. [8] SONG J, LIU L, LI L X, et al. Thermo-mechanical responses of notched layer-to-layer 3D angle-interlock woven composites[J]. Composites Part B: Engineering, 2019, 176: 107262. [9] SONG J, WEN W D, CUI H T. Experimental and numerical investigation of mechanical behaviors of 2.5D woven composites at ambient and un-ambient temperatures[J]. Composite Structures, 2018, 201: 699-720. [10] NAIK N K, KUCHIBHOTLA R. Analytical study of strength and failure behaviour of plain weave fabric composites made of twisted yarns[J]. Composites Part A: Applied Science and Manufacturing, 2002, 33(5): 697-708. [11] ZHAO Y F, SONG L L, LI J L, et al. Multi-scale finite element analyses of thermal conductivities of three dimensional woven composites[J]. Applied Composite Materials, 2017, 24(6): 1525-1542. [12] 徐春成. 织造角对三维机织复合材料单胞结构模型拉伸行为的影响[J]. 材料科学与工程学报, 2022, 40(5): 854-858, 871. [13] SONG J, WEN W D, CUI H T, et al. Finite element analysis of 2.5D woven composites, part Ⅰ: microstructure and 3D finite element model[J]. Applied Composite Materials, 2016, 23(1): 29-44. [14] 任丽冰, 陈利, 焦伟. 基于一元二次函数的层联机织预制体细观结构表征[J]. 纺织学报, 2021, 42(8): 76-83. [15] 陆慧中, 孙颖, 焦亚男, 等. 典型多向2.5D机织预制体近净形编织结构设计[J]. 复合材料学报, 2021, 38(9): 3101-3109. [16] HUANG W, CAUSSE P, BRAILOVSKI V, et al. Reconstruction of mesostructural material twin models of engineering textiles based on Micro-CT aided geometric modeling[J]. Composites Part A: Applied Science and Manufacturing, 2019, 124: 105481. [17] YANG Z, JIAO Y N, XIE J B, et al. Effect of weaving parameters on fiber structure of 3D woven preforms: a Micro-CT investigation[J]. Journal of Composite Materials, 2022, 56(16): 2609-2620. [18] ZHOU Y, WEN W D, CUI H T. Spatial modelling of 3D woven variable thickness composite plate at the mesoscopic scale[J]. Composite Structures, 2020, 239: 111946. [19] WANG N, WEN W D, CHANG Y P, et al. Quasi-static mechanical behavior of 2.5D woven variable thickness composites[J]. Composite Structures, 2024, 329: 117759. [20] YANG T T, QIU H P, LIU X D, et al. Micro-CT based statistical geometry modeling and numerical verification of 2.5D SiCf/SiC composite[J]. Applied Composite Materials, 2021, 28(3): 835-854. [21] WANG W, ZHU J H, ZHANG R Y, et al. Numerical characterization and simulation of the three-dimensional tubular woven fabric[J]. Journal of Industrial Textiles, 2018, 47(8): 2112-2127. |