Acceso abierto

Effects of Sway and Roll Excitations on Sloshing Loads in a KC-1 Membrane LNG Tank


Cite

H. N. Abramson, “The dynamic behavior of liquids in moving containers, with applications to space vehicle technology,” Department of Mechanical Sciences, Southwest Research Institute, Washington, D.C., NASA-SP-106, 1966. Search in Google Scholar

L. Hou, F. Li, and C. Wu, “A numerical study of liquid sloshing in a two-dimensional tank under external excitations,” Journal of Marine Science and Application, vol. 11, pp. 305-310, September 2012, doi: 10.1007/ s11804-012-1137-y. Search in Google Scholar

B. F. Chen and C. H. Wu, “Effects of excitation angle and coupled heave-surge-sway motion on fluid sloshing in a three-dimensional tank,” Journal of Marine Science and Technology, vol. 16, pp. 22-50, December 2011, doi: 10.1007/ s00773-010-0111-0. Search in Google Scholar

W. Wu, C. Zhen, J. Lu, J. Tu, J. Zhang, Y. Yang, K. Zhu, and J. Duan, “Experimental study on characteristic of sloshing impact load in elastic tank with low and partial filling under rolling coupled pitching,” International Journal of Naval Architecture and Ocean Engineering, vol. 12, pp. 178-183, 2020, doi: 10.1016/j.ijnaoe.2019.10.003. Search in Google Scholar

B. Godderidge, S. R. Turnock, and M. Tan, “Evaluation of a rapid method for the simulation of sloshing in rectangular and octagonal containers at intermediate filling levels,” Computers & Fluids, vol. 57, pp. 1-24, March 2012, doi: 10.1016/j.compfluid.2011.09.010. Search in Google Scholar

H. Jeong and W. Jaewoo Shim, “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, vol. 24, no. 1, pp. 100-114, April 2017, doi: 10.1515/pomr-2017-0012. Search in Google Scholar

C. W. Hirt and B. D. Nichols, “Volume of fluid (VOF) method for the dynamics of free boundaries,” Journal of Computational Physics, vol. 39, no. 1, pp. 201-225, January 1981, doi: 10.1016/0021-9991(81)90145-5. Search in Google Scholar

J. Haider, “Numerical modelling of evaporation and condensation phenomena,” Thesis, Institut für Raumfahrtsysteme, Universität Stuttgart, Lampoldshausen, 2013. Search in Google Scholar

V. Singal, J. Bajaj, N. Awalgaonkar, and S. Tibdewal, “CFD analysis of a kerosene fuel tank to reduce liquid sloshing,” Procedia Engineering, vol. 69, pp. 1365-1371, 2014, doi: 10.1016/j.proeng.2014.03.130. Search in Google Scholar

A. B. Desamala, V. Vijayan, A. Dasari, A. K. Dasmahapatra, and T. K. Mandal, “Prediction of oil-water flow patterns, radial distribution of volume fraction, pressure and velocity during separated flows in horizontal pipe,” Journal of Hydrodynamics, vol. 28, pp. 658-668, August 2016, doi: 10.1016/S1001-6058(16)60670-4. Search in Google Scholar

M. L. Hosain, U. Sand, R. Bel Fdhila, “Numerical investigation of liquid sloshing in carrier ship fuel tanks,” IFAC-PapersOnLine, vol. 51, no. 2, pp. 583-588, 2018, doi: 10.1016/j.ifacol.2018.03.098. Search in Google Scholar

S. H. Rhee, “Unstructured grid based Reynolds-averaged Navier-Stokes method for liquid tank sloshing,” Journal of Fluids Engineering, vol. 127, no. 3, pp. 572-582, 2005, doi: 10.1115/1.1906267. Search in Google Scholar

O. M. Faltinsen and A. N. Timokha, “An adaptive multimodal approach to nonlinear sloshing in a rectangular tank,” Journal of Fluid Mechanics, vol. 432, pp. 167-200, April 2001, doi: 10.1017/S0022112000003311. Search in Google Scholar

O. M. Faltinsen and A. N. Timokha, “Analytically approximate natural sloshing modes and frequencies in two-dimensional tanks,” European Journal of Mechanics – B/Fluids, vol. 47, pp. 176-187, September-October 2014, doi: 10.1016/j.euromechflu.2014.01.005. Search in Google Scholar

N. Parthasarathty, H. Kim, Y. H. Choi, and Y. W. Lee, “A numerical study on sloshing impact loads in prismatic tanks under forced horizontal motion,” Journal of the Korean Society of Marine Engineering, vol. 41, no. 2, pp. 150-155, 2017, doi: 10.5916/jkosme.2017.41.2.150. Search in Google Scholar

M. Hinatsu, “Experiments of two-phase flows for the joint research,” In: Proceedings of the SRI-TUHH mini-Workshop on Numerical Simulation of Two-Phase Flows, Ship Research Institute, Tokyo, Japan, pp. 12-19, 2001. Search in Google Scholar

Y. H. Chen, Y. F. Yue, Y. Zhang, R. P. Li, and X. Xu, “Numerical investigation of vibration suppression for the combined device of non-Newtonian fluids coupled elastic baffle,” Journal of Applied Fluid Mechanics, vol. 16, no. 3, pp. 591-602, 2023, doi: 10.47176/jafm.16.03.1311. Search in Google Scholar

H. Jin, Y. Liu, H. Li, and Q. Fu, “Numerical analysis of the flow field in a sloshing tank with a horizontal perforated plate,” Journal of Ocean University of China, vol. 16, no. 4, pp. 575-584, 2017, doi: 10.1007/s11802-017-3369-6. Search in Google Scholar

O. Ubbink, “Numerical prediction of two fluid systems with sharp interfaces,” Thesis, Department of Mechanical Engineering, London University, January 1997. Search in Google Scholar

B. Godderidge, S. Turnock, C. Earl, and M. Tan, “The effect of fluid compressibility on the simulation of sloshing impacts,” Ocean Engineering, vol. 36, no. 8, pp. 578-587, June 2009, doi: 10.1016/j.oceaneng.2009.02.004. Search in Google Scholar

C. Hu and M. M. Kamra, “An unstructured mesh method for numerical simulation of violent sloshing flows,” Journal of Hydrodynamics, vol. 32, no. 2, pp. 259-266, April 2020, doi: 10.1007/s42241-020-0019-z. Search in Google Scholar

B. Godderidge, S. Turnock, M. Tan, and C. Earl, “An investigation of multiphase CFD modelling of a lateral sloshing tank,” Computers & Fluids, vol. 38, no. 2, pp. 183-193, February 2009, doi: 10.1016/j.compfluid.2007.11.007. Search in Google Scholar

H. Akyildiz and E. Ünal, “Experimental investigation of pressure distribution on a rectangular tank due to the liquid sloshing,” Ocean Engineering, vol. 32, no. 11-12, pp. 1503-1516, 2005, doi: 10.1016/j.oceaneng.2004.11.006. Search in Google Scholar

J. H. Jung, H. S. Yoon, and C. Y. Lee, “Effect of natural frequency modes on sloshing phenomenon in a rectangular tank,” International Journal of Naval Architecture and Ocean Engineering, vol. 7, no. 3, pp. 580-594, May 2015, doi: 10.1515/ijnaoe-2015-0041. Search in Google Scholar

S. Wu and Y. Ju, “Numerical study of the boil-off gas (BOG) generation characteristics in a type C independent liquefied natural gas (LNG) tank under sloshing excitation,” Energy, vol. 223, no. 15, pp. 1-19, May 2021, doi: 10.1016/j. energy.2021.120001. Search in Google Scholar

K. P. Thiagarajan, D. Rakshit, and N. Repalle, “The air-water sloshing problem: Fundamental analysis and parametric studies on excitation and fill levels,” Ocean Engineering, vol. 38, no. 2-3, pp. 498-508, 2011, doi: 10.1016/j.oceaneng.2010.11.019. Search in Google Scholar

H. Kim, P. Nanjundan, J. Jeon, and Y. W. Lee, “Numerical estimation on applying air-trapping mechanism to suppress sloshing loads in a prismatic tank,” Journal of Mechanical Science and Technology, vol. 34, no. 7, pp. 2895-2902, 2020, doi: 10.1007/s12206-020-0621-6. Search in Google Scholar

X. Yuan, Y. Su, and P. Xie, “Frequency characteristics of sloshing resonance in a three-dimensional shallow-water rectangular tank,” Journal of Marine Science and Engineering, vol. 10, no. 11, pp. 1792-1804, November 2022, doi: 10.3390/jmse10111792. Search in Google Scholar

H. Kim, M. K. Dey, N. Oshima, and Y. W. Lee, “Numerical study on sloshing characteristics with Reynolds number variation in a rectangular tank,” Computation, vol. 6, no. 4, pp. 53-63, October 2018, doi: 10.3390/computation6040053. Search in Google Scholar

eISSN:
2083-7429
Idioma:
Inglés
Calendario de la edición:
4 veces al año
Temas de la revista:
Engineering, Introductions and Overviews, other, Geosciences, Atmospheric Science and Climatology, Life Sciences