[1] Z. Huang, W. Ma, C. Jia, X. Lei, and Z. Zhang, “Thermal stress distribution of multi-layered composite tubes affected by braiding angle,” J. Eng. Fiber. Fabr., vol. 17, Jan. 2022.
[2] Y. Gu et al., “Torsion damage mechanisms analysis of two-dimensional braided composite tubes with digital image correction and X-ray micro-computed tomography,” Compos. Struct., vol. 256, Jan. 2021.
[3] G. W. Melenka and J. P. Carey, “Development of a generalized analytical model for tubular braided-architecture composites,” J. Compos. Mater., vol. 51, no. 28, pp. 3861–3875, Dec. 2017.
[4] G. W. Melenka and J. P. Carey, “Braid CAM: Braided composite analytical model,” SoftwareX, vol. 7, pp. 23–27, Jan. 2018.
[5] G. W. Melenka and J. P. Carey, “Experimental analysis of diamond and regular tubular braided composites using three-dimensional digital image correlation,” J. Compos. Mater., vol. 51, no. 28, pp. 3887–3907, Dec. 2017.
[6] A. Gholami and G. W. Melenka, “Finite element analysis of 2-D tubular braided composite based on geometrical models to study mechanical performances,” Mech. Adv. Mater. Struct., vol. 29, no. 28, pp. 7542–7558, 2022.
[7] T. Liu, X. Wu, B. Sun, W. Fan, W. Han, and H. Yi, “Investigations of defect effect on dynamic compressive failure of 3D circular braided composite tubes with numerical simulation method,” Thin-Walled Struct., vol. 160, Mar. 2021.
[8] H. Zhou, W. Zhang, T. Liu, B. Gu, and B. Sun, “Finite element analyses on transverse impact behaviors of 3-D circular braided composite tubes with different braiding angles,” Compos. Part A Appl. Sci. Manuf., vol. 79, pp. 52–62, Dec. 2015.
[9] L. Shi, Z. Wu, X. Cheng, Z. Pan, and Y. Yuan, “Transverse impact response of hybrid biaxial/uniaxial braided composite tubes,” Eng. Struct., vol. 244, Oct. 2021.
[10] Y. Jin, Z. Wu, Z. Pan, L. Peng, and X. Hu, “Numerical and experimental study on effect of braiding angle on low-velocity transverse punch response of braided composite tube,” Int. J. Damage Mech., vol. 29, no. 4, pp. 667–686, Apr. 2020.
[11] A. Armanfard and G. W. Melenka, “Experimental evaluation of carbon fibre, fibreglass and aramid tubular braided composites under combined tension–torsion loading,” Compos. Struct., vol. 269, Aug. 2021.
[12] H. Zhou, C. Li, L. Zhang, B. Crawford, A. S. Milani, and F. K. Ko, “Micro-XCT analysis of damage mechanisms in 3D circular braided composite tubes under transverse impact,” Compos. Sci. Technol., vol. 155, pp. 91–99, Feb. 2018.
[13] Z. Wu, Q. Zhang, B. Li, Y. Liu, and Z. Pan, “Transverse impact response and residual flexure characteristics of braided composite tubes: Effect of stacking sequence,” Thin-Walled Struct., vol. 155, Oct. 2020.
[14] W. Wang, H. Wang, and H. Fan, “Fabrication and crushing behaviors of braided-textile reinforced tubular structures,” Mater. Today Commun., vol. 28, Sep. 2021..
[15] A.-M. Harte and N. A. Fleck, “On the mechanics of braided composites in tension,” 2000.
[16] C. K. Leung, G. W. Melenka, D. S. Nobes, and J. P. Carey, “The effect on elastic modulus of rigid-matrix tubular composite braid radius and braid angle change under tensile loading,” Compos. Struct., vol. 100, pp. 135–143, Jun. 2013.
[17] A.-M. Harte and N. A. Fleck, “Deformation and failure mechanisms of braided composite tubes in compression and torsion.” [Online]. Available: www.elsevier.com/locate/actamat.
[18] M. Gautam, S. Sivakumar, A. Barnett, S. Barbour, S. L. Ogin, and P. Potluri, “On the behaviour of flattened tubular Bi-axial and Tri-axial braided composites in tension,” Compos. Struct., vol. 261, Apr. 2021.
[19] L. Xun, S. Huang, B. Sun, and B. Gu, “Torsional cracks development in carbon-fiber 3-D braided composite tubes,” Thin-Walled Struct., vol. 184, no. September 2022, p. 110477, 2023.
[20] N. M. Barkoula, B. Alcock, N. O. Cabrera, and T. Peijs, “Flame-Retardancy Properties of Intumescent Ammonium Poly(Phosphate) and Mineral Filler Magnesium Hydroxide in Combination with Graphene,” Polym. Polym. Compos., vol. 16, no. 2, pp. 101–113, 2008.
[21] L. Shi, Z. Wu, X. Cheng, Z. Pan, and Y. Yuan, “The hybridization effect and damage sequence investigation of biaxial/unidirectional braided composite tubes by micro-CT method,” Journal of Industrial Textiles, vol. 52. SAGE Publications Ltd, Jan. 01, 2022.
[22] Y. Chen et al., “Crack initiation and propagation in braided SiC/SiC composite tubes: Effect of braiding angle,” J. Eur. Ceram. Soc., vol. 40, no. 13, pp. 4403–4418, Oct. 2020.
[23] Z. Pan, F. Qiao, M. Wang, Z. Wu, and Z. Ying, “A novel damage mechanism analysis of integrally braided CFRP and CFRP/Aluminum hybrid composite tube subjected to transverse impact,” Mater. Des., vol. 206, Aug. 2021.
[24] Z. Wu, L. Shi, Z. Pan, Z. Xiang, and Y. Yuan, “Damage assessment of braided composite tube subjected to repeated transverse impact,” Thin-Walled Struct., vol. 156, Nov. 2020.
[25] Z. Wu, H. Ding, Z. Ying, Y. Yuan, and X. Hu, “Influence of braided fabric on the fracture modes of a composite tube under quasi-static compression,” J. Reinf. Plast. Compos., vol. 36, no. 10, pp. 766–779, 2017.
[26] J. S. Tate, A. D. Kelkar, and J. D. Whitcomb, “Effect of braid angle on fatigue performance of biaxial braided composites,” Int. J. Fatigue, vol. 28, no. 10 SPEC. ISS., pp. 1239–1247, 2006.
[27] F. Hasanalizadeh, and H. Dabiryan, “A New Approach to Characterize the Low-Velocity Impact Behavior of Sandwich-Structured Composite Reinforced with Weft-Knitted Spacer Fabric,” Journal of Textiles and Polymers, Vol. 10, No. 3, 35-41, July 2022.