Acknowledgement
본 연구는 산업통상자원부의 재원으로 추진된 '한-영 해양플랜트 글로벌 전문인력양성사업(N0001288)'과 추진 중인 '미래해양플랜트 글로벌 전문인력양성사업(P0012646)'의 지원으로 수행된 연구결과입니다.
References
- ANSYS, 2020. User's Manual (Version 2020 R1). ANSYS Inc.: Pennsylvania.
- European Standard, 2005. Eurocode 3: Design of Steel Structures - Part 1-2: General Rules - Structural Fire Design, European Committee for Standardization, Brussels.
- Friebe, M., Jung, B.J & Jim, Y., 2014. A parametric study on the use of passive fire protection in FPSO topside module, International Journal of Naval Architecture and Ocean Engineering, Vol.6, No.4, pp.826-839. https://doi.org/10.2478/IJNAOE-2013-0216
- International Standardization Organization(ISO), 2012. ISO 834-8: Fire-resistance tests - Elements of building construction - Part 8: Specific requirements for non-load bearing vertical separating elements, International Organization for Standardization.
- International, 2020. International Chartek7 passive fire protection, https://www.international-pc.com/products/ chartek-7 [Accessed 9 July 2021].
- Kim, J.H. et al., 2014. Methods for nonlinear structural response analysis of offshore structures with passive fire protection under fires. Journal of Ocean Engineering and Technology, 28(4), pp.294-305. https://doi.org/10.5574/KSOE.2014.28.4.294
- Koo, M.J., Choi, J.W. & Yoon, H.B., 2013. Introduction of fire protection technology and its design method of offshore facilities, Transactions of the Korean Society Mechanical Engineers. C, 1(1), pp.59-57.
- Lee, C.W., 2014. Production and performance test input of the H-120 grade fire damper prototype for the offshore plant, Journal of Korean Society of Mechanical Technology, 16(4) pp.1603-1609. https://doi.org/10.17958/KSMT.16.4.201408.1603
- Paik, J.K., 2020. Topics in safety, risk, reliability and quality : Advanced Structural Safety Studies. Springer, Springer Nature Singapore.
- Paik, J.K & Thayamballi, A.K., 2007. Ship-shaped offshore Installations; Design, Building, and Operation. Cambridge University Press: Cambridge.
- Park, D.K. et al., 2021. Effects of the structural strength of fire protection insulation systems in offshore installations. International Journal of Naval Architecture and Ocean Engineering. 13, pp.493-510. https://doi.org/10.1016/j.ijnaoe.2021.06.001
- Park, H., Kang, J.W., & Lee, J., 2016. Nonlinear Thermomechanical Analysis Considering Heat Flow under Fire Conditions. Journal of the Computational Structural Engineering Institute of Korea, 29(4), pp. 369-376. https://doi.org/10.7734/COSEIK.2016.29.4.369
- Park, M.J., & Min, J., 2021. Insulation Design for Circular Spacers of Steel-Polymer Prefabricated Floor under Fire. Journal of the Architectural Institute of Korea. 37(10), pp. 227-234. https://doi.org/10.5659/JAIK.2021.37.10.227
- SR group of companies, 2021. [Online] Available at: https://www.srgroup.com.sg/assets/img/projects/Singapore%20Jurong%20Cogen%20Project/2.jpg (Accessed 16 April 2021).
- Wade R., 2011. A review of the robustness of epoxy passive fire protection (PFP) to offshore environments, Corrosion Conference and Expo 2011, Houston, USA, 13 March.
- Yun, S.H. et al., 2013. Thermal-structure Interaction Parallel Fire Analysis for Steel-Concrete Composite Structures under Bridge Exposed to Fire Loading. Journal of the Computational Structural Engineering Institute of Korea, 26(4), pp.283-292. https://doi.org/10.7734/COSEIK.2013.26.4.283