JIN Ruijia, TENG Bin, NING Dezhi, ZHAO Ming, CHENG Liang. Numerical investigation of influence of wave directionality on the water resonance at a narrow gap between two rectangular barges[J]. Acta Oceanologica Sinica, 2017, 36(6): 104-111. doi: 10.1007/s13131-017-1006-2
Citation: JIN Ruijia, TENG Bin, NING Dezhi, ZHAO Ming, CHENG Liang. Numerical investigation of influence of wave directionality on the water resonance at a narrow gap between two rectangular barges[J]. Acta Oceanologica Sinica, 2017, 36(6): 104-111. doi: 10.1007/s13131-017-1006-2

Numerical investigation of influence of wave directionality on the water resonance at a narrow gap between two rectangular barges

doi: 10.1007/s13131-017-1006-2
  • Received Date: 2016-01-27
  • Rev Recd Date: 2016-03-25
  • A three-dimensional time-domain potential flow model with second-order nonlinearity was applied to simulate the wave resonance in a gap between two side-by-side rectangular barges. In the model, the velocity potential was decomposed into the incident potential and unknown scattered potential which was obtained by solving the boundary integral equation. The fourth-order predict-correct method was applied to enforce the free surface conditions in the time integration. The influence of the wave direction on the first and second-order gap surface elevations was investigated. The results reveal that the incident wave angle does not affect the resonant wave frequency and the maximum surface elevation at resonance always occurs at the middle location along the gap. However, the corresponding maximum wave surface elevation at resonance varies with the incident wave angle. The location of the maximum wave elevation shifts either upstream or downstream along the gap, depending on the relative magnitude of incident wave frequency to the resonant frequency.
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  • Bai Wei, Teng Bin. 2013. Simulation of second-order wave interaction with fixed and floating structures in time domain. Ocean Engineering, 74:168-177
    Feng Xingya, Bai Wei. 2015. Wave resonances in a narrow gap between two barges using fully nonlinear numerical simulation. Applied Ocean Research, 50:119-129
    Hong D C, Hong S Y, Nam B W, et al. 2013. Comparative numerical study of repulsive drift forces and gap resonances between two vessels floating side-by-side in proximity in head seas using a discontinuous HOBEM and a constant BEM with boundary matching formulation. Ocean Engingeering, 72:331-343
    Iwata H, Saitoh T, Miao G P. 2007. Fluid resonance in narrow gaps of very large floating structure composed of rectangular modules. In:Proceedings of the 4th International Conference on Asian and Pacific Coasts. Beijing:China Ocean Press, 815-816
    Kristiansen T, Faltinsen O M. 2010. A two-dimensional numerical and experimental study of resonant coupled ship and piston-mode motion. Applied Ocean Research, 32(2):158-176
    Kristiansen T, Faltinsen O M. 2012. Gap resonance analyzed by a new domain-decomposition method combining potential and viscous flow DRAFT. Applied Ocean Research, 34:198-208
    Lu Lin, Cheng Liang, Teng Bin, et al. 2010. Numerical investigation of fluid resonance in two narrow gaps of three identical rectangular structures. Applied Ocean Research, 32(2):177-190
    Lu Lin, Teng Bin, Sun Liang, et al. 2011. Modelling of multi-bodies in close proximity under water waves-fluid forces on floating bodies. Ocean Engineering, 38(13):1403-1416
    Miao Guoping, Ishida H, Saitoh T. 2000. Influence of gaps between multiple floating bodies on wave forces. China Ocean Engineering (in Chinese), 14(4):407-422
    Miao Guoping, Saitoh T, Ishida H. 2001. Water wave interaction of twin large scale caissons with a small gap between. Coastal Engineering Journ, 43(1):39-58
    Molin B, Remy F, Camhi A, et al. 2009. Experimental and numerical study of the gap resonances in-between two rectangular barges. In:13th Congress of International Maritime Association of Mediterranean (IMAM). Istanbul, Turkey:IMAM
    Newman J N, Sclavounos P D. 1988. The computation of wave loads on large offshore structures. In:Proceeding of International Conference on the Behavior of Offshore Structure (Boss”88). ν 2. Trondheim:Tapri Publishers, 605-619
    Ning Dezhi, Su Xiaojie, Zhao Ming. 2016. Numerical investigation of solitary wave action on two rectangular boxes with a narrow gap. Acta Oceanological Sinica, 35(12):89-99
    Sun L, Eatock Taylor R, Taylor P H. 2010. First-and second-order analysis of resonant waves between adjacent barges. Journal of Fluids and Structures, 26(6):954-978
    Watai R A, Dinoi P, Ruggeri F, et al. 2015. Rankine time-domain method with application to side-by-side gap flow modeling. Applied Ocean Research, 50:69-90
    Yan Shiqiang, Ma Qingwei, Cheng Xiaoming. 2009. Fully nonlinear hydrodynamic interaction between two 3D floating structure in close proximity. In:Proceedings of Nineteenth International Offshore and Polar Engineering Conference. Osaka, Japan:ISOPE, 662-669.
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