DOI QR코드

DOI QR Code

Study on the Effect of Density Ratio of Gas and Liquid in Sloshing Experiment

기체-액체 밀도차에 대한 슬로싱 충격압력의 실험적 고찰

  • Ahn, Yangjun (Depart of Naval Architecture and Ocean Engineering, Seoul National University) ;
  • Kim, Sang-Yeob (Depart of Naval Architecture and Ocean Engineering, Seoul National University) ;
  • Kim, Kyong-Hwan (Depart of Naval Architecture and Ocean Engineering, Seoul National University) ;
  • Lee, Sang-Woo (Depart of Naval Architecture and Ocean Engineering, Seoul National University) ;
  • Kim, Yonghwan (Depart of Naval Architecture and Ocean Engineering, Seoul National University)
  • 안양준 (서울대학교 조선해양공학과) ;
  • 김상엽 (서울대학교 조선해양공학과) ;
  • 김경환 (서울대학교 조선해양공학과) ;
  • 이상우 (서울대학교 조선해양공학과) ;
  • 김용환 (서울대학교 조선해양공학과)
  • Received : 2012.09.26
  • Accepted : 2013.04.16
  • Published : 2013.04.20

Abstract

This paper presents the results of sloshing experiments having different fluids in model tanks with various density ratios. The experimental model consisting water and air at ambient, which has been commonly used, is not consistent in density ratio with that of an actual LNG cargo tank. Therefore, an advanced experimental scheme is developed to consider the same density ratio of LNG and NG by using a mixed gas of sulfur hexafluoride ($SF_6$) and nitrogen ($N_2$). For experimental observation, a two-dimensional model tank of 1/40 scale and a three-dimensional model tank of 1/50 scale have been manufactured and tested at various conditions. Two different fillings with various excitation frequencies under regular motions have been considered for the two-dimensional model tank, and three different filling levels under irregular motions have been imposed for the three-dimensional model tank. The density ratio between gas and liquid varies from the ratio of the ambient air and water to that of the actual LNG cargo container, and the different composition of gas is used for this variation. Based on the present experimental results, it is found that the decrease of sloshing pressure is predicted when the density ratio increases.

Keywords

References

  1. American Bureau of Shipping, 2006. Guidance Notes on Strength Assessment of Membrane-type LNG Carriers, ABS Guidance Notes (updated in 2009).
  2. Bass, R.L. Bowles, E.B. & Cox, P.A., 1980. Liquid Dynamic Loads in LNG Cargo Tanks. The Society of Naval Architects & Marine Engineers Transactions, 88, pp.103-126.
  3. Braeunig, J.-P. Brosset, L. Dias, F. & Ghidaglia, J.-M., 2009. Phenomenological study of liquid impacts through 2D compressible two-fluid numerical simulations. The 19th International Offshore and Polar Engineering Conference, Osaka, Japan, 21-26 June 2009.
  4. Det Norske Veritas, 2006. Sloshing Analysis of LNG Membrane Tanks, DNV Classification Notes.
  5. Dias, F. Ghidaglia, J.-M. & Le Coq, G., 2007. On the fluid dynamics models for sloshing. Th 17th International Offshore and Polar Engineering Conference, Lisbon, Portugal, 1-6 July 2007.
  6. Kim, K.H. et al., 2011. Comparative study on model-scale sloshing tests. The 21th International Offshore and Polar Engineering Conference, Maui, USA, 19-24 June 2011.
  7. Kim, Y. Kim, S.Y. & Yoo, W.J., 2010. Statistical evaluation of local impact pressures in sloshing. The 20th International Offshore and Polar Engineering Conference, Beijing, China, 20-25 June 2010.
  8. Lloyd's Register, 2009. Sloshing Assessment Guidance Document for Membrane Tank LNG Operations, Sloshing Assessment Guidance Document for Membrane Tank LNG Operations.
  9. Maillard, S. & Brosset, L., 2009. Influence of density ratio between liquid and gas on sloshing model test results. The 19th International Offshore and Polar Engineering Conference, Osaka, Japan, 21-26 June 2009.
  10. Yung, T-W. Sandström, R.E. He, H. & Minta, M.K., 2010. On the Physics of Vapor/Liquid Interaction during Impact on Solids. Journal of Ship Research, 54(3), pp.174-183.
  11. Yung, T-W. Ding, J. He, H. & Sandström, R.E., 2009. LNG sloshing: Characteristics and scaling laws. The 19th International Offshore and Polar Engineering Conference, Osaka, Japan, 21-26 June 2009.

Cited by

  1. A Study on Operating Limit Analysis for Small High-speed Boat vol.21, pp.6, 2015, https://doi.org/10.7837/kosomes.2015.21.6.784