Fixed and moored bodies in steep and breaking waves using SPH with the Froude–Krylov approximation

Journal of Ocean Engineering and Marine Energy - Tập 2 Số 3 - Trang 331-354 - 2016
Steven Lind1, Peter Stansby1, Benedict D. Rogers1
1Modelling and Simulation Centre, School of Mechanical, Aerospace and Civil Engineering, The University of Manchester, Manchester, M13 9PL, UK

Tóm tắt

Từ khóa


Tài liệu tham khảo

Aller AB (2015) Smoothed particle hydrodynamics model for civil and coastal engineering applications. PhD thesis, Universida de Vigo

Bonet J, Lok TSL (1998) Variational and momentum preservation aspects of smooth particle hydrodynamics formulations. Comput Methods Appl Mech Eng 43:785–819

Bredmose H, Jacobsen NG (2010) Breaking wave impacts on offshore wind turbine foundations: focused wave groups and CFD. In: Proceedings of the 29th International Conference on Ocean Offshore Arctic Engineering, ASME, Shanghai, China

Bredmose H, Jacobsen NG (2011) Vertical wave impacts on offshore wind turbine inspection platforms. In: Proceedings of the 30th International Conference on Ocean Offshore Arctic Engineering, ASME, Rotterdam, The Netherlands

Buss GY, Stansby PK (1982) SAWW—a computer program to calculate the properties of steady water waves. Tech. rep., Simon Engineering Laboratories, University of Manchester, Manchester, UK

Chan ES, Cheong HF, Tan BC (1995) Laboratory study of plunging wave impacts on vertical cylinders. Coast Eng 25:87–107

Chen L, Zang J, Hillis A, Morgan G, Plummer A (2014) Numerical investigation of wave-structure interaction using OpenFOAM. Ocean Eng 88:91–109

Chorin AJ (1968) Numerical solution of the Navier Stokes equations. J Math Comp 22:745–762

Christensen ED, Bredmose H, Hansen EA (2005) Extreme wave forces and run-up on offshore wind turbine foundations. In: Proceedings of the Copenhagen Offshore Wind Conference, Copenhagen, Denmark

Crespo AJC, Dominguez JM, Rogers BD, Gmez-Gesteira M, Longshaw S, Canelas R, Vacondio R, Barreiro A, Garca-Feal O (2015) DualSPHysics: open-source parallel CFD solver based on smoothed particle hydrodynamics (SPH). Comput Phys Commun 187:204–216

Cummins SJ, Rudman M (1999) An SPH projection method. J Comput Phys 152:584–607

Dalrymple RA, Rogers BD (2006) Numerical modeling of water waves with the SPH method. Coast Eng 53(2):141–147

Dean RG, Dalrymple RA (1991) Water wave mechanics for engineers and scientists. In: Advanced series on ocean engineering, vol 2. World Scientific, Singapore

Farahani RJ, Dalrymple RA (2014) Three-dimensional reversed horseshoe vortex structures under broken solitary waves. Coast Eng 91:261–279

Goda Y (1970) A synthesis of breaker indices. Trans Japan Society of Civil Eng 2:227–230

Goda Y, Haranaka S, Kitahata M (1966) Study of impulsive breaking wave forces on piles. Rep Port Harbor Res Inst 5:1–30

Gotoh H, Khayyer A, Ikari H, Arikawa T, Shimosako K (2014) On enhancement of incompressible SPH method for simulation of violent sloshing flows. Appl Ocean Res 46:104–115

Grilli S, Guyenne P, Dias F (2001) A fully non-linear model for three-dimensional overturning waves over an arbitrary bottom. Int J Numer Methods Fluids 35(7):829–867

Gui Q, Shao S, Dong P (2014) Wave impact simulations by an improved isph model. J Waterw Port Coast Ocean Eng 140(3):04014,005

Guo X, Lind SJ, Rogers BD, Stansby PK, Ashworth M (2013) Efficient massive parallelisation for incompressible smoothed particle hydrodynamics with 10 $$^8$$ 8 particles. Proceedings of the 8th International SPHERIC Workshop, Trondheim, Norway, pp 397–402

Hann M, Greaves D, Raby A (2015) Snatch loading of a single taut moored floating wave energy converter due to focussed wave groups. Ocean Eng 96:258–271

Hildebrandt A, Schlurmann T (2012) Breaking wave kinematics, local pressures, and forces on a tripod support structure. Proceedings of the 33rd International Conference on Coastal Engineering, ICCE, Santander, Spain

Keulegan GH, Carpenter LH (1958) Forces on cylinders and plates in an oscillating fluid. J Res Nat Bur Stand 60:423–440

Khayyer A, Gotoh H (2011) Enhancement of stability and accuracy of the moving particle semi-implicit method. J Comput Phys 230(8):3093–3118

Khayyer A, Gotoh H (2013) Enhancement of performance and stability of MPS mesh-free particle method for multiphase flows characterized by high density ratios. J Comput Phys 242:211–233

Lee CH (1995) WAMIT theory manual. Massachusetts Institute of Technology, Cambridge, Massachusetts, USA

Lee ES, Moulinec C, Xu R, Violeau D, Laurence D, Stansby P (2008) Comparisons of weakly compressible and truly incompressible algorithms for the SPH mesh free particle method. J Comput Phys 227:8417–8436

Lind SJ, Xu R, Stansby PK, Rogers BD (2012) Incompressible smoothed particle hydrodynamics for free-surface flows: a generalised diffusion-based algorithm for stability and validations for impulsive flows and propagating waves. J Comput Phys 231(4):1499–1523. doi: 10.1016/j.jcp.2011.10.027

Lind SJ, Stansby PK, Rogers BD, Lloyd PM (2015) Numerical predictions of water-air wave slam using incompressible-compressible smoothed particle hydrodynamics. Appl Ocean Res 49:57–71

Longuet-Higgins MS, Cokelet ED (1976) The deformation of steep surface waves on water. I. A numerical method of computation. Proc R Soc Lond A 350:1–26

Luck M, Benoit M (2004) Wave loading on monopile foundation for offshore wind turbines in shallow-water areas. In: Coastal Engineering 2004 World Scientific Publishing Co Pte Ltd, Lisbon, Portugal, p 4595

Ma QW, Yan S (2009) QALE-FEM for numerical modelling of non-linear interaction between 3D moored floating bodies and steep waves. Int J Numer Methods Eng 78(6):713–756

Mciver P, Evans DV (1984) The occurrence of negative added mass in free-surface problems involving submerged oscillating bodies. J Eng Math 18(1):7–22

Miller RL, Leverette S, O’Sullivan J, Tochko J, Theriault K (1974) Field measurements of impact pressures in surf. Proceedings of the 14th Coastal Engineering Conference, p 1761

Monaghan JJ (1994) Simulating free surface flows with SPH. J Comput Phys 110(2):399–406

Morison JR, O’Brien MP, Johnson JW, Schaaf SA (1950) The force exerted by surface waves on piles. J Petrol Technol 2:149–154

Morison JR, Johnson J, O’Brien M (1953) Experimental studies of forces on piles. Proceedings of the 4th Coastal Engineering Conference, Chicago, USA, pp 340–370

Morris JP, Fox PJ, Zhu Y (1997) Modelling low Reynolds number incompressible flows using SPH. J Comput Phys 136:214–226

Nadaoka K, Hino M, Koyano Y (1989) Structure of the turbulent flow field under breaking waves in the surf zone. J Fluid Mech 204:359–387

Newman J (1977) Marine hydrodynamics. MIT Press, Cambridge, Massachusetts, USA

Oger G, Doring M, Alessandrini B, Ferrant P (2007) An improved SPH method: towards higher order convergence. J Comput Phys 225:1472–1492

Rienecker MM, Fenton JD (1981) A Fourier approximation method for steady water waves. J Fluid Mech 104:119–137

Sarpkaya T, Isaacson M (1981) Mechanics of wave forces on offshore structures. Van Nostrand Reinhold Co, New York

Schwaiger HF (2008) An implicit corrected SPH formulation for thermal diffusion with linear free surface boundary conditions. Int J Numer Meth Eng 75:647–671

Shao S (2006) Incompressible SPH simulation of wave breaking and overtopping with turbulence modelling. Int J Numer Methods Fluids 50(5):597–621

Stansby PK, Devaney LC, Stallard TJ (2013) Breaking wave loads on monopiles for offshore wind turbines and estimation of extreme overturning moment. Renew Power Gener IET 7(5):514–520

Taylor PH, Jonathan PP, Harland LA (1997) Time domain simulation of jack-up dynamics with the extremes of a Gaussian process. ASME J Vib Acoust 119(4):624–628

Tromans PS, Anaturk AR, Hagemeijer P (1991) A new model for the kinematics of large ocean waves-application as a design wave. In: The First International Offshore and Polar Engineering Conference, International Society of Offshore and Polar Engineers, Edinburgh, UK

Von Karman T (1929) The impact of seaplane floats during landing. NACA Technical Note 321, Washington

Wagner H (1932) Über stoss-und gleitvorgänge an der oberfläche von flüssigkeiten. Z F Angew Math Mech 12(4):193–235

Watanabe A, Horikawa K (1974) Breaking wave forces on large diameter cell. Proceedings of the 14th International Conference on Coastal Engineering, Copenhagen, Denmark, pp 1741–1760

Westphalen J, Greaves DM, Raby A, Hu ZZ, Causon DM, Mingham CG, Omidvar P, Stansby PK, Rogers BD (2014) Investigation of wave-structure interaction using state of the art CFD techniques. Open J Fluid Dyn 4:18–43

Wiegel R (1982) Forces induced by breakers on piles. Proceedings of the 18th International Conference on Coastal Engineering, ASCE, Cape Town, South Africa, pp 1699–1715

Wienke J, Oumeraci H (2005) Breaking wave impact force on a vertical and inclined slender pile—theoretical and large-scale model investigations. Coast Eng 52:435–462

Xu R (2010) An improved incompressible smoothed particle hydrodynamics method and its application in free-surface simulations. PhD thesis, University of Manchester

Xu R, Stansby PK, Laurence D (2009) Accuracy and stability in incompressible SPH (ISPH) based on the projection method and a new approach. J Comput Phys 228:6703–6725

Zang J, Taylor PH, Morgan G, Stringer R, Orszaghova J, Grice J, Tello M (2010) Steep wave and breaking wave impact on offshore wind turbine foundations—ringing revisited. 25th International Workshop on Water Waves and Floating Bodies, Harbin

Zhou D, Chan ES, Melville WK (1991) Wave impact pressures on vertical cylinders. Appl Ocean Res 13(5):220–234