Special Issue
  • IUC-Based Multiscale Fatigue Damage and Life Prediction Model for Plain Woven CFRP Composites
  • Taeri Kim*, Gun Jin Yun**†

  • *Department of Aerospace Engineering, Seoul National University, Seoul, Republic of Korea
    **Department of Aerospace Engineering, Seoul National University, Seoul, Republic of Korea
    Institute of Advanced Aerospace Technology, Seoul National University, Seoul, Republic of Korea

  • IUC 기반 평직 CFRP 복합재의 멀티스케일 피로 손상 및 수명 예측 모델
  • 김태리*· 윤군진**†

  • This article is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

References
  • 1. Xu, Y., Ma, W., Wang, X., Ma, Z., Huang, Z., and Man, R., “A comprehensive review on mechanical properties and damage mechanisms of 3DWCs under various influencing factors,” Composite Structures, Vol. 351, 2025, pp. 118523.
  •  
  • 2. Chowdhury, I.R., and Summerscales, J., “Woven fabrics for composite reinforcement: a review,” Journal of Composites Science, Vol. 8, No. 7, 2024, pp. 280.
  •  
  • 3. Huang, T., Wang, Y., and Wang, G., “Review of the mechanical properties of a 3D woven composite and its applications,” Polymer-Plastics Technology and Engineering, Vol. 57, No. 8, 2018, pp. 740-756.
  •  
  • 4. Ma, Z., Zhang, P., and Zhu, J., “Review on the fatigue properties of 3D woven fiber/epoxy composites: testing and modelling strategies,” Journal of Industrial Textiles, Vol. 51, No. 5_suppl, 2022, pp. 7755S-7795S.
  •  
  • 5. Hashin, Z., and Rotem, A., “A fatigue failure criterion for fiber reinforced materials,” Journal of composite materials, Vol. 7, No. 4, 1973, pp. 448-464.
  •  
  • 6. Li, C., Xian, G., and Li, H., “Tension-tension fatigue performance of a large-diameter pultruded carbon/glass hybrid rod,” International Journal of Fatigue, Vol. 120, 2019, pp. 141-149.
  •  
  • 7. Wu, Z., Wang, X., Iwashita, K., Sasaki, T., and Hamaguchi, Y., “Tensile fatigue behaviour of FRP and hybrid FRP sheets,” Composites Part B: Engineering, Vol. 41, No. 5, 2010, pp. 396-402.
  •  
  • 8. llyin, F., and El-Kadi, H., “A fatigue failure criterion for fiber reinforced composite laminae,” Composite Structures, Vol. 15, No. 1, 1990, pp. 61-74.
  •  
  • 9. Natarajan, V., Gangarao, H.V., and Shekar, V., “Fatigue response of fabric-reinforced polymeric composites,” Journal of composite materials, Vol. 39, No. 17, 2005, pp. 1541-1559.
  •  
  • 10. Whitworth, H., “Evaluation of the residual strength degradation in composite laminates under fatigue loading,” Composite Structures, Vol. 48, No. 4, 2000, pp. 261-264.
  •  
  • 11. Philippidis, T., and Passipoularidis, V., “Residual strength after fatigue in composites: Theory vs. experiment,” International Journal of Fatigue, Vol. 29, No. 12, 2007, pp. 2104-2116.
  •  
  • 12. Whitworth, H., “A stiffness degradation model for composite laminates under fatigue loading,” Composite Structures, Vol. 40, No. 2, 1997, pp. 95-101.
  •  
  • 13. Ha, D., Kim, T., Kim, J.H., Joo, Y.S., and Yun, G., “Fatigue life prediction of CFRP laminates with stress concentration lamina level failure criteria,” Advanced Composite Materials, Vol. 32, No. 6, 2023, pp. 792-812.
  •  
  • 14. Ha, D., Kim, J.H., Kim, T., Joo, Y.S., and Yun, G.J., “Multi-scale Progressive Fatigue Damage Model for Unidirectional Laminates with the Effect of Interfacial Debonding,” Composites Research, Vol. 36, No. 1, 2023, pp. 16-24.
  •  
  • 15. Kim, T., Ha, D., and Yun, G.J., “Progressive Fatigue Damage Modeling and Life Prediction of Laminated Composites,” Composites Research, Vol. 37, No. 5, 2024, pp. 409-415.
  •  
  • 16. Shah, S., Megat-Yusoff, P., Karuppanan, S., Choudhry, R., and Sajid, Z., “Multiscale damage modelling of 3D woven composites under static and impact loads,” Composites Part A: Applied Science and Manufacturing, Vol. 151, 2021, pp. 106659.
  •  
  • 17. Sun, J., Wang, A., Cai, H., Han, X., Wei, Z., and Huang, Y., “Multiscale progressive damage model for plain woven composites,” Internaional Journal of Mechanical Sciences, Vol. 259, 2023, pp. 108604.
  •  
  • 18. Zhang, C., Wu, B., Dang, H., Zhang, Y., Xing, J., Zhao, Z., and Li, Y., “Theoretical-numerical integrated multi-scale model for fast predicion of progressive failure in textile composites,” Composites Science and Technology, Vol. 271, 2025, pp. 111341.
  •  
  • 19. Li, J., Zhao, M., Gao, X., Wan, X., and Zhou, J., “Modeling the stiffness, strength, and progressive failure behavior of woven fabic-reinforced composites,” Journal of composite materials, Vol. 48, No. 6, 2014, pp. 735-747.
  •  
  • 20. Hashin, Z., “Fatigue Failure Criteria for Unidirectional Fiber Composites,” Vol. 47, No. 2, 1980, pp. 329-334.
  •  
  • 21. Raghava, R., Caddell, R.M., and Yeh, G.S., “The macroscopic yield behaviour of polymers,” Journal of Materials Science, Vol. 8, No. 2, 1973, pp. 225-232.
  •  
  • 22. Shokrieh, M.M., and Lessard, L.B., “Progressive fatigue damage modeling of composite materials, Part I: Modeling,” Journal of composite materials, Vol. 34, No. 13, 2000, pp. 1056-1080.
  •  
  • 23. Degrieck, J., and Van Paepegem, W., “Fatigue damage modeling of fibre-reinforced composite materials,” Applied Mechanics Reviews, Vol. 54, No. 4, 2001, pp. 279-300.
  •  

This Article

Correspondence to

  • Gun Jin Yun
  • Department of Aerospace Engineering, Seoul National University, Seoul, Republic of Korea
    Institute of Advanced Aerospace Technology, Seoul National University, Seoul, Republic of Korea

  • E-mail: gunjin.yun@snu.ac.kr