Original Article
  • Thermal Performance and Impact Resistance Evaluations of Composite Insulation Mat Reinforced Polyurethane Foam
  • Byeong-Kwan Hwang*, Jin-Ho Bae*, Jae-Myung Lee*†

  • * Department of Naval Architecture and Ocean Engineering, Pusan National University
    *† Department of Naval Architecture and Ocean Engineering, Pusan National University

  • 복합 단열 매트 보강 폴리우레탄 폼의 열적 성능 및 내충격성 평가
  • 황병관* · 배진호* · 이제명*†

References
  • 1. Bae, J.H., Oh, J.H., Byun, J.S., and Lee, J.M., “Experimental Study of Thermal Conductivity for Glass Wool by Inserted Dissimilar Materials based on Structural Composites,” Journal of the Society of Naval Architects of Korea, Vol. 55, No. 5, 2018, pp. 448-455.
  •  
  • 2. Kim, J.H., Park, D.H., Choi, S.W., and Lee, J.M., “Cryogenic Mechanical Charateristics of Laminated Plywood for LNG Carrier Insulation System,” Journal of Ocean Engineering and Technology, Vol. 31, No. 3, 2017, pp. 241-247.
  •  
  • 3. Yan, R., Wang, R., Lou, C.W., Huang, S.Y., and Lin, J.H., “Quasi-static and Dynamic Mechanical Responses of Hybrid Laminated Composites Based on High-density Flexible Polyurethane Foam,” Composites Part B: Engineering, Vol. 83, 2015, pp. 253-263.
  •  
  • 4. Berge, A., and Adl-Zarrabi, B., “Using High Performance Insulation in District Heating Pipes,” In 13th International Symposium on District Heating and Cooling, Copenhagen, Denmark, Sep. 2012, pp. 156-162.
  •  
  • 5. Bardy, E., Mollendorf, J., and Pendergast, D., “Thermal Resistance and Compressive Strain of underWater Aerogel–syntactic Foam Hybrid Insulation at Atmospheric and Elevated Hydrostatic Pressure,” Journal of Physics D: Applied Physics, Vol. 39, No. 9, 2006, pp. 1908-1918.
  •  
  • 6. Smith, T.M., Williams, M.K., Fesmire, J.E., Sass, J.P., and Weiser, E.S., “Fire and Engineering Properties of Polyimide-aerogel Hybrid Foam Composites for Advanced Applications,” In ACS Symposium Series, Vol. 1013, 2009, pp. 148-173.
  •  
  • 7. McGee, S.D., Batt, G.S., Gibert, J.M., and Darby, D.O., “Predicting the Effect of Temperature on the Shock Absorption Properties of Polyethylene Foam,” Packaging Technology and Science, Vol. 30, No. 8, 2017, pp. 477-494.
  •  
  • 8. Kim, J.H., Jeong, E., and Lee, Y.S., “Preparation and characterization of graphite foams,” Journal of Industrial and Engineering Chemistry, Vol. 32, 2015, pp. 21-33.
  •  
  • 9. Quintana, J.M., and Mower, T.M., “Thermomechanical Behavior of Sandwich Panels with Graphitic-foam Cores,” Materials & Design, Vol. 135, 2017, pp. 411-422.
  •  
  • 10. De Jaeger, P., T’Joen, C., Huisseune, H., Ameel, B., De Schampheleire, S., and De Paepe, M., “Assessing the Influence of Four Bonding Methods on the Thermal Contact Resistance of Open-cell Aluminum Foam,” International journal of heat and mass transfer, Vol. 55, No. 21-22, 2012, pp. 6200-6210.
  •  
  • 11. Zhou, L., Zeng, J., Jiang, L., and Hu, H., “Low-velocity Impact Properties of 3D Auxetic Textile Composite,” Journal of Materials Science, Vol. 53, No. 5, 2018, pp. 3899-3914.
  •  
  • 12. Mozafari, H., Khatami, S., Molatefi, H., Crupi, V., Epasto, G., and Guglielmino, E., “Finite Element Analysis of Foam-filled Honeycomb Structures under Impact Loading and Crashworthiness Design,” International Journal of Crashworthiness, Vol. 21 No. 2, 2016, pp. 148-160.
  •  
  • 13. Gideon, R.K., Hu, H., Wambua, P., and Gu, B., “Characterizations of Basalt Unsaturated Polyester Laminates under Static Three‐point Bending and Low‐velocity Impact Loadings,” Polymer Composites, Vol. 35, No. 11, 2014, pp. 2203-2213.
  •  

This Article

Correspondence to

  • Jae-Myung Lee
  • Department of Naval Architecture and Ocean Engineering, Pusan National University

  • E-mail: jaemlee@pusan.ac.kr