Original Article
  • A Study on the Effect of Adhesion Condition on the Mode I Crack Growth Characteristics of Adhesively Bonded Composites Joints
  • Hae-Ri No*, Min-Hyeok Jeon*, Huyn-Jun Cho*, In-Gul Kim*† , Kyeong-Sik Woo**, Hwa-Su Kim***, Dong-Su Choi****

  • * Department of Aerospace Engineering, Chungnam National University
    ** School of Civil Engineering, Chungbuk National University
    *** Republic of Korea Air Force Aero Technology Research Institute
    **** Republic of Korea Air Force Academy

  • 복합재 접착 체결 구조의 접착 상태가 모드 I 균열 성장 특성에 미치는 영향에 대한 연구
  • 노해리* · 전민혁* · 조현준* · 김인걸*† · 우경식** · 김화수*** · 최동수****

  • 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
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  • 2. Kim, W.S., and Lee, J.J., “Interfacial Fracture Toughness Measurement of Composite/metal Bonding,” Composites Research, Vol. 21, No. 4, 2008, pp. 7-14.
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  • 3. ASTM D5528, Standard Test Method for Mode I Interlaminar Fracture Toughness of Unidirectional Fiber-Reinforced Polymer Matrix Composites, 2013.
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  • 4. Mohapatra, P.C., Smith, L.V., and Street, N.S., “Effect of Bond Quality on Crack Growth Resistance of Adhesively Bonded Composite Joints under Static and Cyclic Loading,” Proceeding of Society for the Advancement of Material and Process Engineering, Seattle, WA, North America, May 2017.
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  • 5. Markatos, D.N., Tserpes, K.I., Rau, E., Markus, S., Ehrhart, B., and Pantelakis, S., “The Effects of Manufacturing-Induced and In-Service Related Bonding Quality Reduction on the Mode-I Fracture Toughness of Composite Bonded Joints for Aeronautical Use,” Composites Part B: Engineering, Vol. 45, No. 1, 2013, pp. 556-564.
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  • 6. Sànchez, S., Coronado, P., Argüelles, A., and Viña, J.A., “Analyses of Different Adhesives on Pure Mode I and Mode II Delamination Growth of Composites Bonded Joints,” Multidisciplinary Digital Publishing Institute Proceedings, Feb. 2018, p. 1419.
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  • 7. Mohan, J., Ivanković, A., and Murphy, N., “Mode I Fracture Toughness Co-cured and Secondary Bonded Composites Joints,” International Journal of Adhesion and Adhesives, Vol. 51, 2014, pp. 13-22.
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  • 8. Quan, D., Urdániz, J.L., Rouge, C., and Ivanković, A., “The Enhancement of Adhesively-bonded Aerospace-grade Composite Joints Using Steel Fibres,” Composite Structures, Vol. 198, 2018, pp. 11-18.
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  • 9. Floros, I.S., Tserpes, K.I., and Löbel, T., “Mode-I, Mode-II and Mixed-Mode I+II Fracture Behavior of Composite Bonded Joints: Experimental Characterization and Numerical Simulation,” Composites Part B: Engineering, Vol. 78, No. 29, 2015, pp. 459-468.
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  • 10. Lee, B.E., Park, E.T., Ko, D.C., Kang, B.S., and Song, W.J., “Evaluation of Fracture Behavior of Adhesive Layer in Fiber Metal Laminates using Cohesive Zone Models,” Composites Research, Vol. 29, No. 2, 2016, pp. 45-52.
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  • 11. Noorman, D.C., “Cohesive Zone Modelling in Adhesively Bonded Joints: Analysis on Crack Propagation in Adhesives and Adherends,” Master Thesis, Delft University, Netherlands, 2014.
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  • 12. ASTM D3039, Standard Test Method for Tensile Properties of Polymer Matrix Composite Materials, 2017.
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  • 13. ASTM D3518, Standard Test Method for In-Plane Shear Response of Polymer Matrix Composite Materials by Tensile Test of a ±45° Laminate, 2018.
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  • 14. ASTM D7905, Standard Test Method for Determination of the Mode II Interlaminar Fracture Toughness of Unidirectional Fiber-Reinforced Polymer Matrix Composites, 2019.
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This Article

Correspondence to

  • In-Gul Kim
  • Department of Aerospace Engineering, Chungnam National University

  • E-mail: igkim@cnu.ac.kr