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Articles

Numerical analysis on three-dimensional green water events induced by freak waves

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Pages 33-43 | Received 27 Oct 2020, Accepted 17 Feb 2021, Published online: 01 Mar 2021

References

  • Abdussamie N, Drobyshevski Y, Ojeda R, Thomas G, Amin W. 2017. Experimental investigation of wave-in-deck impact events on a TLP model. Ocean Eng. 142:541–562.
  • Andonowati KN, Groesen EV. 2006. Extreme wave phenomena in downstream running modulated waves. Appl Math Model. 31(7):1425–1443.
  • Berberovi¢ E, Van Hinsberg NP, Jakirli¢ S, Roisman IV, Tropea C. 2009. Drop impact onto a liquid layer of finite thickness: dynamics of the cavity evolution. Phys Rev E Statis Nonlinear Soft Matter Phys. 79(3):036306.
  • Chabchoub A. 2016. Tracking breather dynamics in irregular sea state conditions. Phys Rev Lett. 117:144103.
  • Chabchoub A, Hoffmann N, Akhmediev N. 2011. Rogue wave observation in a water wave tank. Phys Rev Lett. 106:20.
  • Chabchoub A, Hoffmann N, Onorato M, Slunyaev A, Sergeeva A, Pelinovsky E, Akhmediev N. 2012. Observation of a hierarchy of up to fifth-order rogue waves in a water tank. Phys Rev E. 86:056601.
  • Chen L, Taylor PH, Draper S, Wolgamot H. 2019. 3-D numerical modelling of greenwater loading on fixed ship-shaped FPSOs. J Fluids Struct. 84:283–301.
  • Didenkulova E. 2020. Catalogue of rogue waves occurred in the World Ocean from 2011 to 2018 reported by mass media sources. Ocean Coast Manag. 188:105076.
  • Dysthe KB, Trulsen K. 1999. Note on breather type solutions of the NLS as models for freak-waves. Phys Scrip. 82:48–52.
  • Hayatdavoodi M, Seiffert B, Ertekin RC. 2014. Experiments and computations of solitary-wave forces on a coastal-bridge deck. Part II: deck with girders. Coast Eng. 88:210–228.
  • Henderson KL, Peregrine DH, Dold JW. 1999. Unsteady water wave modulations: fully nonlinear solutions and comparison with the nonlinear Schrödinger equation. Wave Motion. 29:341–361.
  • Hu ZZ, Greaves D, Raby A. 2016. Numerical wave tank study of extreme waves and wave-structure interaction using OpenFoam. Ocean Eng. 126:329–342.
  • Hu Z, Tang W, Xue H, Zhang X. 2015a. Numerical study of rogue waves as nonlinear Schrödinger breather solutions under finite water depth. Wave Motion. 52:81–90.
  • Hu Z, Xue H, Tang W, Zhang X. 2015b. A combined wave-dam-breaking model for rogue wave overtopping. Ocean Eng. 104:77–88.
  • Huijsmans RHM, Klopman G, Andonowati KN. 2005. Experiments on extreme wave generation using the soliton on finite background. Brest: ArXiv e-prints. IFREMER.
  • Jacobsen NG, Fuhrman DR, Fredsøe J. 2011. A wave generation toolbox for the open-source CFD library: OpenFoam. Int J Numer Methods Fluids. 70:1073–1088.
  • Kjeldsen SP. 2004. Measurements of freak waves in Norway and related ship accidents. RINA. Royal institution of naval architects international conference – design and operation for abnormal conditions III.
  • Klein M, Clauss GF, Rajendran S, Soares CG, Onorato M. 2016. Peregrine breathers as design waves for wave-structure interaction. Ocean Eng. 128:199–212.
  • Kudupudi RB, Bhattacharyya A, Datta R. 2020. A parametric study of green water impact on a container ship. Ships Offsh Struct. 3(15):318–324.
  • Lee GN, Jung KH, Malenica S, Chung YS, Suh SB, Kim MS, Choi YH. 2020. Experimental study on flow kinematics and pressure distribution of green water on a rectangular structure. Ocean Eng. 195:106649.
  • Lee HH, Lim HJ, Rhee SH. 2012. Experimental investigation of green water on deck for a CFD validation database. Ocean Eng. 42:47–60.
  • Onorato M, Proment D, Clauss G, Klein M. 2013. Rogue waves: from nonlinear Schrödinger breather solutions to sea-keeping test. PLoS One. 8(2):e54629.
  • Paulsen BT, Bredmose H, Bingham HB, Jacobsen NG. 2014. Forcing of a bottom-mounted circular cylinder by steep regular water waves at finite depth. J Fluid Mech. 755:1–34.
  • Peregrine DH. 1983. Water waves, nonlinear Schrödinger equations and their solutions. ANZIAM J. 25(1):16–43.
  • Perić R, Hoffmann N, Chabchoub A. 2015. Initial wave breaking dynamics of Peregrine-type rogue waves: A numerical and experimental study. Eur J Mech B Fluids. 49:71–76.
  • Qin H, Mu L, Tang W, Hu Z. 2019. Numerical study of the interaction between peregrine breather based freak waves and twin-plate breakwater. J Fluids Struct. 87:206–227.
  • Qin H, Tang W, Xue H, Hu Z, Guo J. 2017. Numerical study of wave impact on the deck-house caused by freak waves. Ocean Eng. 133:151–169.
  • Ransley E, Hann M, Greaves D, Raby A, Simmonds D. 2013. Numerical and physical modeling of extreme waves at wave hub. J Coast Res. SI65:1645–1650.
  • Rosetti GF, Pinto ML, Mello PC, Sampaio CMP, Simos AN, Silva DFC. 2019. CFD and experimental assessment of green water events on an FPSO hull section in beam waves. Marine Struct. 65:154–180.
  • Silva DFC, Coutinho ALGA, Esperança PTT. 2017a. Green water loads on FPSOs exposed to beam and quartering seas, part I: experimental tests. Ocean Eng. 140:419–433.
  • Silva DFC, Esperança PTT, Coutinho ALGA. 2017b. Green water loads on FPSOs exposed to beam and quartering seas, part II: CFD simulations. Ocean Eng. 140:434–452.
  • Wang J, Ma QW, Yan S, Chabchoub A. 2018. Breather rogue waves in random seas. Phys Rev Appl. 9:014016.
  • Wang S, Wang X, Woo WL, Seow TH. 2017. Study on green water prediction for FPSOs by a practical numerical approach. Ocean Eng. 143:88–96.

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