Special Issue
  • Investigation of Damage to Polyurethane Topcoat Based on De-icing Cycles
  • Donghyeon Lee*, Joung-Man Park*, Hyung Mi Lim**† , Dong-Jun Kwon*, ***†

  • * Department of Materials Engineering and Convergence Technology, Gyeongsang National University, Jinju, Korea Aerospace Convergence Materials Center, Korea
    ** Institute of Ceramic Engineering and Technology, Jinju, Korea
    *** Research Institute for Green Energy Convergence Technology, Gyeongsang National University, Jinju, Korea,

  • De-icing 횟수에 따른 폴리우레탄 탑코트의 손상 조사
  • 이동현* · 박종만* · 임형미**† · 권동준*, ***†

  • 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. Cao, Y., Tan, W., and Wu, Z., “Aircraft Icing: An Ongoing Threat to Aviation Safety,” Aerospace Science and Technology, Vol. 75, 2019, pp. 353-385.
  •  
  • 2. Zeng, D., Li, Y., Liu, H., Yang, Y., Peng, L., Zhu, C., and Zhao, N., “Superhydrophobic Coating Induced Anti-icing and Deicing Characteristics of an Airfoil,” Colloids and Surfaces A: Physicochemical and Engineering Aspects, Vol. 660, 2023, pp. 130824.
  •  
  • 3. Kim, J.H., Shin, P.S., Kwon, D.J., and Park, J.M., “Hydrophobicity and Adhesion of SiO2/Polyurethane Nanocomposites Topcoat for Aircraft De-icing with Different Pre-curing Time,” Composite Research, Vol. 33, No. 6, 2020, pp. 365-370.
  •  
  • 4. Lee, J.H., Kim, J.H., and Park, J.M., “Hydrophobicity and Adhesion Evaluation of MWCNT/Teflon-polyurethane Topcoat for Aircraft with Different MWCNT Coating Times,” Composite Research, Vol. 35, No. 2, 2022, pp. 80-85.
  •  
  • 5. Cheng, S., Guo, P., Wang, X., Che, P., Han, X., Jin, R., Heng, L., and Jiang, L., “Photothermal Slippery Surface Showing Rapid Self-repairing and Exceptional Anti-icing/deicing Property,” Chemical Engineering Journal, Vol. 431, 2022, pp. 133411.
  •  
  • 6. Schutzius, T.M., Jung, S., Maitra, T., Eberle, P., Carlo, A., Christos, S., and Dimos, P., “Physics of Icing and Rational Design of Surfaces with Extraordinary Icephobicity,” Langmuir, Vol. 31, 2015, pp. 4807-4821.
  •  
  • 7. Charles, C.R., Thomas, W.G., and George, G.K., “Evaluation of Three Helicopter Preflight Deicing Techniques,” 37th AIAA Aerospace Sciences Meeting and Exhibit, USA, Reno, January 11-14, 1999.
  •  
  • 8. Ahmed, S., and Craig, L., “Enhanced Method of Conceptual Sizing of Aircraft Electro-Thermal De-icing System,” International Journal of Mechanical, Aerospace, Industrial and Mechatronics Engineering, Vol. 8, No. 6, 2014, pp. 1065-1072.
  •  
  • 9. Paul, P., and James, T.R., “Residual and Inter-cycle Ice for Lower-Speed Aircraft with Pneumatic Boots,” 45th AIAA Aerospace Sciences Meeting & Exhibit, USA, Nevada, Jan. 2007.
  •  
  • 10. Louchez, P.R., Bernardin, S., and Laforte, J.L., “Physical Properties of Aircraft De-icing and Anti-Icing Fluids”, 36th Aerospace Sciences Meeting & Exhibit, USA, Nevada, Jan. 1998.
  •  
  • 11. Barbara, A.S., and Kathleen, F.G., “Antifreezes and Deicing Fluids”, Kirk-Othmer Encyclopedia of Chemical Technology, 2014.
  •  
  • 12. Zhang, Z., Lusi, A., Hu, H., Bai, X., and Hu, H., “An Experimental Study on the Detrimental Effects of Deicing Fluids on the Performance of Icephobic Coatings for Aircraft Icing Mitigation”, Aerospace Science and Technology, Vol. 119, 2021, pp. 107090.
  •  
  • 13. Gordon, B., “Next Generation of Aircraft Coatings Systems,” 25th Fatipec Congress, Italy, Turin, 2000.
  •  
  • 14. Jeong, H.J., Byun, S.J., Kim, D.R., and Lee, K.S., “Optical Investigation of Cryogenic Frost Formation Under Forced Convection,” Applied Thermal Engineering, Vol. 202, 2022, pp. 117887.
  •  
  • 15. Jeong, H.J., Byun, S.J., Kim, D.R., and Lee, K.S., “Frost Growth Mechanism and Its Behavior Under Ultra-low Temperature Conditions,” International Journal of Heat and Mass Transfer, Vol. 169, 2021, 120941.
  •  
  • 16. Qiu, G., Li, S., Shi, Y., Fand, X., and Cai, W., “Development and Validation of a Numerical Model for Frost Growth Based on Nucleation Theory,” International Journal of Heat and Mass Transfer, Vol. 221, 2021, pp. 125137.
  •  
  • 17. Deng, H., Chang, S., and Song, M., “The Optimization of Simulated Icing Environment by Adjusting the Arrangement of Nozzles in an Atomization Equipment for the Anti-icing and Deicing of Aircrafts,” International Journal of Heat and Mass Transfer, Vol. 155, 2020, 119720.
  •  
  • 18. Diehl, J.W., Finkbeiner, J.W. and DiSanzo, F.P., “Determination of Ethers and Alcohols in Gasolines by Gas Chromatography/Fourler Transform Infrared Spectroscopy,” Analytical Chemistry, Vol. 64, No. 24, 1992, pp. 3202-3205.
  •  
  • 19. Colin, A., Baba, M., Bussiere, P.O., Cavaletti, E., Nizeyimana, F., and Therias, S., “Investigation of the Thermo-oxidation Mechanism of Acrylic-urethane-silicone/amino-silane Based Topcoat,” Polymer Degradation and Stability, Vol. 14, 2015, pp. 115-124.
  •  

This Article

Correspondence to

  • Hyung Mi Lim** , Dong-Jun Kwon*, ***
  • * Department of Materials Engineering and Convergence Technology, Gyeongsang National University, Jinju, Korea Aerospace Convergence Materials Center, Korea
    ** Institute of Ceramic Engineering and Technology, Jinju, Korea
    *** Research Institute for Green Energy Convergence Technology, Gyeongsang National University, Jinju, Korea,

  • E-mail: lim@kicet.re.kr, djkwon@gnu.ac.kr