Dynamic response of a monopile wind turbine in waves: Experimental uncertainty analysis for validation of numerical tools
Tài liệu tham khảo
Wind Europe, The European offshore wind industry - key trends and statistics 2016, Tech. rep., Wind Europe (2017). URL https://windeurope.org/wp-content/uploads/files/about-wind/statistics/WindEurope-Annual-Offshore-Statistics-2016.pdf.
Faltinsen, 1995, Nonlinear wave loads on a slender vertical cylinder, J. Fluid Mech., 289, 179, 10.1017/S0022112095001297
Newman, 1996, 91
Malenica, 1995, Third-harmonic wave diffraction by a vertical cylinder, J. Fluid Mech., 302, 203, 10.1017/S0022112095004071
Grue, 1993
Rainey, 1995, Slender-body expressions for the wave load on offshore structures, Proceedings: Math. Phys. Sci., 450, 391
Scolan, 1996, Experimental and numerical modelling of the high frequency resonant motion of a vertical cylinder in irregular waves, in: Proceedings of the 15th International Conference on Offshore Mechanics and Arctic Engineering (OMAE1996), Vol. I, 389
Stansberg, 1997, Comparing ringing loads from experiments with cylinders of different diameters - an empirical study, in: 8th International Conference on the Behaviour of Off-Shore Structures (BOSS’97)), Vol. 2, 95
Bachynski, 2017, Experimental and numerical investigations of monopile ringing in irregular finite-depth water waves, Appl. Ocean Res., 68, 154, 10.1016/j.apor.2017.08.011
Schløer, 2016, The influence of fully nonlinear wave forces on aero-hydro-elastic calculations of monopile wind turbines, Marine Structures, 50, 162, 10.1016/j.marstruc.2016.06.004
Nielsen, 2013, Wave loads on a monopile in 3D waves, in: ASME 2012 31st International Conference on Ocean, Offshore and Arctic Engineering, no. OMAE2012-83533
Paulsen, 2013, Steep wave loads from irregular waves on an offshore wind turbine foundation: computation and experiment, in: 32nd International Conference on Ocean, Offshore and Arctic Engineering, no. OMAE2013-10727
DNVGL, DNVGL-ST-0437: Loads and site conditions for wind turbines, Tech. rep., DNVGL (2016).
Kristiansen, 2017, Higher harmonic wave loads on a vertical cylinder in finite water depth, J. Fluid Mech., 833, 773, 10.1017/jfm.2017.702
Wienke, 2005, Breaking wave impact force on a vertical and inclined slender pile - theoretical and large-scale model investigations, Coastal Eng., 52, 435, 10.1016/j.coastaleng.2004.12.008
de Vos, 2007, Wave run-up on cylindrical and cone shaped foundations for offshore wind turbines, Coastal Eng., 54, 17, 10.1016/j.coastaleng.2006.08.004
Zang, 2010, Steep wave and breaking wave impact on offshore wind turbine foundations - ringing re-visited, in: International Workshop on Water Waves and Floating Bodies (IWWWFB25)
Riise, 2018, High frequency resonant response of a monopile in irregular deep water waves, J. Fluid Mech., 853, 564, 10.1017/jfm.2018.499
de Ridder, 2011, The dynamic response of an offshore wind turbine with realistic flexibility to breaking wave impact, in: ASME 2011 30th International Conference on Ocean, Offshore and Arctic Engineering, no. OMAE2011-49563
Suja-Thauvin, 2017, Experimental results of a multimode monopile offshore wind turbine foundation subjected to steep and breaking irregular waves, Ocean Eng., 146, 339, 10.1016/j.oceaneng.2017.09.024
Robertson, 2017, Uncertainty analysis of OC5-DeepCwind floating semisubmersible offshore wind test campaign, in: Proceedings of the Twenty-seventh (2017) International Ocean and Polar Engineering Conference, Vol. I, 482
Jonkman, 2009, Definition of a 5-MW reference wind turbine for offshore system development, Tech. Rep. NREL/TP-500-38060, National Renewable Energy Laboratory (February 2009)
Jonkman, 2010
Jonkman, 2010, Offshore code comparison collaboration (OC3) for IEA Wind Task 23 offshore wind technology and deployment, Tech. Rep. NREL/TP-5000-48191, National Renewable Energy Laboratory
Lourens, 2012
Sarpkaya, 1981
Det Norske Veritas, Environmental conditions and environmental loads, Tech. Rep. DNV-RP-C205 (October 2010).
Det Norske Veritas, Design of offshore wind turbine structures, Tech. Rep. DNV-OS-J101 (2007).
Stansberg, 2011, Characteristics of steep second-order random waves in finite and shallow water
Dean, 1991
Manners, 1992, Hydrodynamic forces on fixed submerged cylinders, in: Proceedings of the Royal Society of London A, Vol. 436, 13
Grue, 2014, Velocity fields in breaking-limited waves on finite depth, Eur. J. Mech. - B/Fluids, 47, 97, 10.1016/j.euromechflu.2014.03.014
Bouws, 1985, Similarity of the wind wave spectrum in finite depth water: 1. spectral form, J. Geophys. Res.: Oceans 90 (C1), 975, 10.1029/JC090iC01p00975
Oberkampf, 2002, Error and uncertainty in modeling and simulation, Reliabil. Eng. System Saf., 75, 333, 10.1016/S0951-8320(01)00120-X
Hills, 2015
ISO/IEC, Uncertainty of measurement - part 3: Guide to the expression of uncertainty in measurement (GUM: 1995), Tech. Rep. ISO/IEC GUIDE 98:3:2008(E), International Organization for Standardization and International Electrical Commission (2008).
Figliola, 2006
Naess, 2013
Stansberg, 2008, Kinematics under extreme waves, J. Offshore Mech. Arctic Eng., 130, 021010, 10.1115/1.2904585
Batchelor, 1970
Damgaard, 2012, Natural frequency and damping estimation of an offshore wind turbine structure, in: Proceedings of the Twenty-second (2012) International Offshore and Polar Engineering Conference, 300
Damgaard, 2013, Cross-wind modal properties of offshore wind turbines identified by full scale testing, J. Wind Eng. Ind. Aerodyn., 116, 94, 10.1016/j.jweia.2013.03.003
Shirzadeh, 2014, The dynamics of an offshore wind turbine in parked conditions: a comparison between simulations and measurements, Wind Energy, 18, 1685, 10.1002/we.1781
Krokstad, 1998, A new nonslender ringing load approach verified against experiments, Trans. ASME J. Offshore Mech. Arctic Eng., 120, 20, 10.1115/1.2829515