Acknowledgement
본 연구는 한국기계연구원 기본사업(액체수소 공급시스템 핵심 기자재 개발) 및 산업통상자원부와 한국산업기술진흥원의 LNG 극저온 화물창 소재 및 구조체의 성능평가 기술개발사업(과제번호: P0018490)의 지원을 받아 수행되었습니다.
References
- Churchill, S.W. and Chu, H.H., 1975. Correlating equations for laminar and turbulent free convection from a vertical plate. International Journal of Heat and Mass Transfer, 18(11), pp.1323-1329. https://doi.org/10.1016/0017-9310(75)90243-4
- Colburn, A.P., 1964. A method of correlating forced convection heat-transfer data and a comparison with fluid friction. International Journal of Heat and Mass Transfer, 7(12), pp.1359-1384. https://doi.org/10.1016/0017-9310(64)90125-5
- International Gas Union (IGU), 2022. World LNG Report 2022, International Gas Union.
- International Maritime Organization (IMO), 2014. The International Code for the Construction and Equipment of Ships Carrying Liquefied Gases in Bulk. London: International Maritime Organization.
- Heo, J.U., Lee, Y.J., Cho, J.R., Ha, M.K. and Lee, J.N., 2003. Heat transfer analysis and BOG estimation of membrane-type LNG cargo during laden voyage. Transactions of the Korean Society of Mechanical Engineers A, 27(3), pp.393-400. https://doi.org/10.3795/KSME-A.2003.27.3.393
- Jeong, H., Kim, T., Kim, S. and Shim, W.J., 2017. Thermal analysis of insulation system for KC-1 membrane LNG tank. Journal of Ocean Engineering and Technology, 31(2), pp.91-102. https://doi.org/10.5574/KSOE.2017.31.2.091
- Jeong, H. and Shim, W.J., 2017. Calculation of Boil-off Gas (BOG) generation of KC-1 membrane LNG tank with high density rigid polyurethane foam by numerical analysis. Polish Maritime Research, 24(1), pp.100-114. https://doi.org/10.1515/pomr-2017-0012
- Jin, K.K., Oh, B.T., Kim, Y.K., Yoon, I.S. and Yang, Y.C., 2013. An assessment of Structure Safety for Basic Insulation Panel of KC-1 LNG Cargo Containment System under Sloshing Load. Journal of the Korean Institute of Gas, 17(2), pp.85-89. https://doi.org/10.7842/kigas.2013.17.2.85
- Lee, J.H., Kim, K.K., Ro, S.T., Chung, H.S. and Kim, S.G., 2003. A study on the thermal analysis of spray cooling for the membrane type LNGC during the cool-down period. Transactions of the Korean Society of Mechanical Engineers B, 27(1), pp.125-134. https://doi.org/10.3795/KSME-B.2003.27.1.125
- Martynenko, O.G. and Khramtsov, P.P., 2005. Free-convective heat transfer: with many photographs of flows and heat exchange. Springer Science and Business Media.
- McAdams, W.H., 1954. Heat transfer. McGraw-Hill, New York, 1(51), pp.3.
- Miana, M., Legorburo, R., Diez, D. and Hwang, Y.H., 2016. Calculation of boil-off rate of liquefied natural gas in mark III tanks of ship carriers by numerical analysis. Applied Thermal Engineering, 93, pp.279-296. https://doi.org/10.1016/j.applthermaleng.2015.09.112
- Qu, Y., Noba, I., Xu, X., Privat, R. and Jaubert, J. N., 2019. A thermal and thermodynamic code for the computation of boil-off gas-industrial applications of LNG carrier. Cryogenics, 99, pp.105-113. https://doi.org/10.1016/j.cryogenics.2018.09.002
- Sharqawy, M.H., Lienhard, J.H. and Zubair, S.M., 2010. Thermophysical properties of seawater: a review of existing correlations and data. Desalination and Water Treatment, 16(1-3), pp.354-380. https://doi.org/10.5004/dwt.2010.1079
- Song, S.O., Lee, J.H., Jun, H.P., Sung, B.Y., Kim, K.K. and Kim, S.G., 1999. A study on the three-dimensional steady state temperature distributions and BOR calculation program deveolpment for the membrane type LNG carrier. Journal of Korean Society of Marine Engineering, 23(2), pp.140-149.
- United States Coast-Guard (USCG), 1970. Hazard of LNG spillage in marine transportation. Final Report Supporting Investigation: MIPR No. Z-700099-9-92317, Department of Transportation, U.S. Coast Guard Hazardous Materials Division.