Original Article
  • Effect of Boron Nitride  on Mechanical Properties, Thermal and Electrical Conductivities of Carbon Fiber Reinforced Plastics 
  • Hyunkee Hong*,**, Kwak Jin Bae*, Jaesang Yu*

  • * Institute of Advanced Composite Materials, Korea Institute of Science and Technolog (KIST), Jeollabukdo, Korea
    *† Institute of Advanced Composite Materials, Korea Institute of Science and Technolog (KIST), Jeollabukdo, Korea
    ** Department of Chemical & Biological Engineering and Institute of Chemical Process, Seoul National University (SNU), Seoul, Korea

  • 탄소섬유강화 복합소재의 열적, 전기적, 기계적 특성에 대한 질화붕소 첨가제의 효과
  • 홍현기*,** · 배곽진* · 유재상*

References
  • 1. Choi, H.K., Jung, H., Oh, Y., Hong, H., Yu, J., and Shin, E.S., “Interfacial Effects of Nitrogen-doped Carbon Nanotubes on Me-chanical and Thermal Properties of Nanocomposites: A Molecular Dynamics Study,” Composites: Part B, Vol. 167, 2019, pp. 615-620.
  •  
  • 2. Jung, H., Choi, H.K., and Yu, J., “Prediction and Experimental Validation of Composite Strength by Applying Modified Microme-chanics for Composites Containing Multiple Distinct Heterogeneities,” Composites: Part B, Vol. 91, 2016, pp. 1-7.
  •  
  • 3. Huang, X.S., “Fabrication and Properties of Carbon Fibers,” Materials, Vol. 2, No. 4, 2009, pp. 2369-2403.
  •  
  • 4. Summerscales, J., and Short, D., “Carbon-Fiber and Glass-Fiber Hybrid Reinforced-Plastics,” Composites, Vol. 9, No. 3, 1978, pp. 157-166.
  •  
  • 5. Zheng, W., and Wong, S.C., “Electrical Conductivity and Dielectric Properties of PMMA/expanded Graphite Composites,” Com-posites Science and Technology, Vol. 63, No. 2, 2003, pp. 225-235.
  •  
  • 6. Abanilla, M.A., Li, Y., and Karbhari, V.M., “Durability Characterization of Wet Layup Graphite/epoxy Composites Used in External Strengthening,” Composites: Part B, Vol. 37, No. 2, 2005, pp. 200-212.
  •  
  • 7. Ju, Y.J., Kwon, Y.-C., and Choi, H.S., “Study on the Suitability of Composite Materials for Enhancement of Automotive Fuel Economy,” Composites Research, vol. 32, No. 5, 2019, pp. 284-289.
  •  
  • 8. Manocha, L.M., Warrier, A., Manocha, S., Sathiyamoorthy, D., and Banerjee, S., “Thermophysical Properties of Densified Pitch Based Carbon/carbon Materials - II. Bidirectional Composites,” Carbon, Vol. 44, No. 3, 2006, pp. 488-495.
  •  
  • 9. Taylor, E.A., Herbert, M.K., Vaughan, B.A.M., and McDonnell, J.A.M., “Hypervelocity Impact on Carbon Fibre Reinforced Plas-tic/aluminium Honeycomb: Comparison with Whipple Bumper Shields,” International Journal of Impact Engineering, Vol. 23, No. 1, 1999, pp. 883-893.
  •  
  • 10. Lamontagne, C.G., Manuelpillai, G.N., Kerr, J.H., Taylor, E.A., Tennyson, R.C., and Burchell, M.J., “Projectile Density, Impact Angle and Energy Effects on Hypervelocity Impact Damage to Carbon Fibre/peek Composites,” International Journal of Impact En-gineering, Vol. 26, No. 1-10, 2001, pp. 381-398.
  •  
  • 11. Zhao, Y.F., Jiao, Y.N., Song, L.L., Jiang, Q., and, Li, J.L., “Influence of Fabric Architecture and Weaving Parameter on the Thermal Conductivities of 3D Woven Composites,” Journal of Composite Materials, Vol. 51, No. 21, 2017, pp. 3041-3051.
  •  
  • 12. Jo, K.-H., Klapper, V., Kim, H.-W., Lee, J.-W., Han, J.-W., Byun, J.-H., and Joe, C.-R., “Manufacture of 3D Textile Preform and Study on Mechanical Properties of Composites,” Composites Research, Vol. 32, No. 1, 2019, pp. 65-70.
  •  
  • 13. Pegorin, F., Pingkarawat, K., and Mouritz, A.P., “Numerical Analysis of the Heat Transfer Properties of z-pinned Composites,” Composites Communications, Vol. 8, 2018, pp. 14-18.
  •  
  • 14. Li, M., Fang, Z.N., Wang, S.K., Gu, Y.Z., Li, Y.X., and Zhang, Z.G., “Thermal Conductivity Enhancement and Heat Transport Mechanism of Carbon Fiber z-pin Graphite Composite Structures,” Composites: Part B, Vol. 172, 2019, pp. 603-611.
  •  
  • 15. Kim, C.H., Sim, H.W., An, W.J., Kweon, J.H., and Choi, J.H., “Impact Characteristics of Composite Panel Stitched by I-fiber Pro-cess,” Composites: Part A, Vol. 127, 2019, pp. 105644.
  •  
  • 16. Tapullima, J., Shim, H.W., Kweon, J.H., and Choi, J.H., “Analysis on Stitched Mode I Specimen Using Spring Elements,” Compo-sites Research, Vol. 32, No. 2, 2019, pp. 102-107.
  •  
  • 17. Kandare, E., Khatibi, A.A., Yoo, S.H., Wang, R.Y., Ma, J., Olivier, P., Gleizes, N., and Wang, C.H., “Improving the Through-thickness Thermal and Electrical Conductivity of Carbon Fibre/epoxy Laminates by Exploiting Synergy between Graphene and Silver Nano-inclusions,” Composites: Part A, Vol. 69, 2015, pp. 72-82.
  •  
  • 18. Pozegic, T.R., Hamerton, I., Anguita, J.V., Tang, W., Ballocchi, P., Jenkins, P., and Silva, S.R.P., “Low Temperature Growth of Car-bon Nanotubes on Carbon Fibre to Create a Highly Networked Fuzzy Fibre Reinforced Composite with Superior Electrical Conduc-tivity,” Carbon, Vol. 74, 2014, pp. 319-328.
  •  
  • 19. Pozegic, T.R., Anguita, J.V., Hamerton, I., Jayawardena, K.D.G.I., Chen, J.S., Stolojan, V., Ballocchi, P., Walsh, R., and Silva, S.R.P., “Multi-Functional Carbon Fibre Composites using Carbon Nanotubes as an Alternative to Polymer Sizing,” Scientific Reports, Vol. 6, 2016, pp. 37334.
  •  
  • 20. Zhang, K.L., Feng, Y.L., Wang, F., Yang, Z.C., and Wang, J., “Two Dimensional Hexagonal Boron Nitride (2D-hBN): Synthesis, Properties and Applications,” Journal of Materials Chemistry C, Vol. 5, No. 46, 2017, pp. 11992-12022.
  •  
  • 21. Bian, X.M., Tuo, R., Yang, W., Zhang, Y.R., Xie, Q., Zha, J.W., Lin, J., and He, S.J., “Mechanical, Thermal, and Electrical Properties of BN-Epoxy Composites Modified with Carboxyl-Terminated Butadiene Nitrile Liquid Rubber,” Polymers, Vol. 11, No. 10, 2019, pp. 1548-1570.
  •  
  • 22. Liu, Z., Li, J.H., and Liu, X.H., “Novel Functionalized BN Nanosheets/Epoxy Composites with Advanced Thermal Conductivity and Mechanical Properties,” ACS Applied Materials & Interfaces, Vol. 12, No. 5, 2020, pp. 6503-6515.
  •  

This Article

Correspondence to

  • Jaesang Yu
  • Institute of Advanced Composite Materials, Korea Institute of Science and Technolog (KIST), Jeollabukdo, Korea

  • E-mail: jamesyu@kist.re.kr