Bibliography More information of various applications and benchmarking of the developed software tools can be found in the publications listed below. Reference Keywords P. Maincon, E. Passano, F. G. Nielsen (2002): An Efficient Finite Element for the Study of Drag Chains for a Floating Pipeline, OMAE2002-28016 Pipeline, drag chain N. Luxcey, H. Ormberg, E. Passano (2011): Global Analysis of a Floating Wind Turbine Using an Aero-Hydro-Elastic Numerical Model. Part II: Benchmark Study, OMAE2011-50088 wind, FWT, H. Ormberg, E. Passano, N. Luxcey (2011): Global Analysis of a Floating Wind Turbine Using an Aero-Hydro-Elastic Model. Part I: Code Development and Case study, OMAE2011-50114 wind, FWT, Harald Ormberg and Erin E. Bachynski (2012): Global analysis of floating wind turbines: Code development, model sensitivity and benchmark study, ISOPE wind, FWT Elizabeth Passano, Carl M. Larsen, Halvor Lie (2012): Comparison of calculated in-line vortex induced vibrations to model tests, OMAE2012-83387 VIV, model test comparison, excitation Erin E. Bachynski (2014): Design and Dynamic Analysis of Tension Leg Platform Wind Turbines, PhD thesis, NTNU, Trondheim, Norway wind, FWT, TLP H. Ormberg and Erin E. Bachynski (2015) : Sensitivity of Estimated Tower Fatigue to Wind Modeling for a Spar Floating Wind Turbine , ISOPE wind, FWT, spar T. Sauder, V. Chabaud, M. Thys, E. Bachynski, L. O. Sæter (2016): Real-Time Hybrid Model Testing of a Braceless Semi-Submersible Wind Turbine. Part I: The Hybrid Approach, OMAE2016-54435 wind, FWT, Madjid Karimirad, Constantine Michailides (2016): V-shaped semisubmersible offshore wind turbine subjected to misaligned wave and wind, Journal of renewable and sustainable energy wind, FWT Petter Andreas Berthelsen, Erin E. Bachynski, Madjid Karimirad, Maxime Thys (2016): Real-Time Hybrid Model Tests of a Braceless Semi-Submersible Wind Turbine: Part III — Calibration of a Numerical Model, OMAE2016-54640 wind, FWT, semi E. Bachynski,M. Thys, T. Sauder, ,V. Chabaud, L. O. Sæter (2016): Real-Time Hybrid Model Testing of a Braceless Semi-Submersible Wind Turbine. Part II: Experimental results, OMAE2016-54437 wind, FWT, semi P. A. Bertelsen, E. Bachynski,M. Karimirad,M. Thys, (2016): Real-time Hybrid Model Tests of a Braceless Semi-Submersible Wind Turbine. Part III: Calibration Of a Numerical Model, OMAE2016-54640 wind, FWT, semi Petter Andreas Berthelsen, Erin E. Bachynski, Madjid Karimirad, Maxime Thys (2016): Real-Time Hybrid Model Tests of a Braceless Semi-Submersible Wind Turbine: Part III — Calibration of a Numerical Model, OMAE2016-54640 wind, FWT, semi Thorsen, M.J. (2016): Time Domain Analysis of Vortex-Induced Vibrations. PhD thesis, NTNU, Trondheim, Norway. Time domain VIV Dag Fergestad, Svein Arne Løtveit (2017): Handbook on design and operation of flexible pipes , SINTEF Ocean rapporter;OC2017 A-001 design, flexible pipes, handbook Per Voie, Jie Wu, Themistocles L. Resvanis, Carl M. Larsen, J. Kim Vandiver, Michael Triantafyllou, Rolf Baarholm (2017): Consolidation of Empirics for Calculation of VIV Response, OMAE2017-61362 VIV, model test comparison, excitation Ulveseter, J.V, Sævik, S., Larsen, C. M. (2017): Time domain model for calculation of pure in-line vortex-induced vibrations, Journal of Fluids and Structures Volume 68, January 2017, Pages 158-173 Pure in-line VIV, time domain Stian H. Sørum Jan-Tore H. Horn og Jørgen Amdahl (2017): Comparison of numerical response predictions for a bottom-fixed offshore wind turbine Energy Procedia Volume 137, October 2017, Pages 89-99 wind, bottom fixed Marit I. Kvittem, Petter Andreas Berthelsen, Lene Eliassen, Maxime Thys (2018): Calibration of Hydrodynamic Coefficients for a Semi-Submersible 10 MW Wind Turbine, OMAE2018-77826 wind, FWT, 10MW , semi Ulveseter, J.V. (2018): Advances in semi-empirical time domain modelling of vortex-induced vibrations. PhD thesis, NTNU, Trondheim, Norway. Time domain VIV Wojciech Popko, Matthias L. Huhn, Amy N. Robertson, Jason M. Jonkman, Fabian Wendt, Kolja Mülle et. al (2018): Verification of Numerical Offshore Wind Turbine Models Based on Full Scale Alpha Ventus Data within OC5 Phase III, OMAE2018-77589 wind, jacket, software verification Yin, D., Lie, H., Wu, J., (2019): Structural and Hydrodynamic Aspects of Steel Lazy Wave Riser in Deepwater. J. Offshore Mech. Arct. Eng. doi: 10.1115/1.4045333 Time domain VIV Silva de Souza, Carlos Eduardo; Berthelsen, Petter Andreas; Eliassen, Lene; Bachynski, Erin Elizabeth; Engebretsen, Espen; Haslum, Herbjørn (2020) Definition of the INO WINDMOOR 12 MW base case floating wind turbine, SINTEF Ocean report no. OC2020 A-044 wind, FWT, 12MW Wu J., Jin Z.J., Yin D.C., Passano E., Lie H., Sævik S., Tognarelli M., Grytøyr G., Andersen T., Karunakaran D., Igland R.(2020): Time domain VIV analysis tool VIVANA-TD: validations and improvements. Florida, USA: 39th International Conference on Ocean, Offshore and Arctic Engineering, OMAE2020-18795 Time domain VIV Jingzhe Jin et al. (2021): Numerical modelling of hydrodynamic responses of Ocean Farm 1 in waves and current and validation against model test measurements, Marine Structures Volume 78, July 2021, 103017 offshore fish farm, aquaculture, model test comparison Carlos Eduardo Silva de Souza,Nuno Fonseca,Petter Andreas Bertelse, Maxima Thyus (2021): Calibration of a Time-Domain Hydrodynamic Model for A 12 MW Semi-Submersible Floating Wind Turbine, OMAE2021-62857 wind, FWT, semi, 12MW Carlos Eduardo Silva de Souza, Nuno Fonseca, Petter Andreas Berthelsen, Maxime Thys (2021): Calibration of a Time-Domain Hydrodynamic Model for A 12 MW Semi-Submersible Floating Wind Turbine, OMAE2021-62857 wind, FWT, 12MW, semi Wojciech Popko, Amy Robertson, Jason Jonkman, Fabian Wendt, Philipp Thomas, Kolja Müller et. al (2021): Validation of Numerical Models of the Offshore Wind Turbine From the Alpha Ventus Wind Farm Against Full-Scale Measurements Within OC5 Phase III, J. Offshore Mech. Arct. Eng. Vol. 143(1) wind, jacket, software validation Jie Wu, Decao Yin, Jingzhe Jin, Halvor Lie, Elizabeth Passano, Svein Sævik, Guttorm Grytøyr, Michael A. Tognarelli, Daniel Karunakaran, Torgrim Andersen, Ragnar Igland (2022): Time Domain Prediction of VIV Responses in Oscillatory Flow Conditions OMAE2022-79191 Time domain VIV, Steel Lazy Wave Riser Passano, E., Grytøyr, G., Haslum, H. , Lie, H., Yin, D. (2022): Simulation of VIM of an Offshore Floating Wind Turbine. OMAE2022-79006 Vortex Induced Motions (VIM), FWT Yin, D., Lie, H., Passano, E., Sævik, S.,Grytøyr, G., Tognarelli, M., Andersen, T., Igland, R., Karunakaran, D., Gaskill, C. (2022): Vortex-Induced Vibrations of a Top-Tensioned Riser in Combined Currents and Waves. OMAE-79033 Time domain VIV, TTR Yin, D., Lie, H., Passano, E., Sævik, S.,Grytøyr, G., Tognarelli, M., Andersen, T., Igland, R., Karunakaran, D., Gaskill, C. (2022): VIV Responses of a Drilling Riser Subjected to Current and Top Motions. OMAE-79180 Time domain VIV, TTR Stian H. Sørum, Georgios Katsikogiannis, Erin E. Bachynski-Polic, Jørgen Amdahl, Ana M. Page, Rasmus T. Klinkvor (2022): Fatigue design sensitivities of large monopile offshore wind turbines, Wind Energy Volume25, Issue10 pp. 1684-1709 wind, wind field, monopile, wave spectrum, soil model, fatigue, Stian H. Sørum, Erin E. Bachynski-Polic, Jørgen Amdahl (2022): Wind and soil model influences on the uncertainty in fatigue of monopile supported wind turbines, J. Phys.: Conf. Ser. 2362 012038 wind, wind, field, monopile, soil model, fatigue Thomas H. Viuff, Stian H. Sørum, Marit Irene Kvittem (2022): Modelling of Fibre Rope Mooring for a Floating Offshore Wind Turbine, OMAE2023-102645 wind, FWT, fibre rope, SYROPE, mooring Christos Farantos (2022): Improved VIV Prediction of Free Spanning Pipelines and Cables. Master’s thesis, NTNU, Faculty of Engineering, Department of Marine Technology VIV, IL, free spanning pipeline, cable Jie Wu, Fengjian Jiang, Halvor Lie, Elizabeth Passano, Decao Yin, Svein Sævik, Guttorm Grytøyr, Brendan Francis Hogg, Themistocles Resvanis, Kim Vandiver (2023): Evaluation of VIV Prediction Practice of Deep-Water Steel Lazy Wave Risers (SLWRS), OMAE2023-105583 Time domain VIV, frequency domain, Shear7 Stian H. Sørum, Nuno Fonseca, Micheal Kent, Rui Pedro Faria (2023) : Modelling of Synthetic Fibre Rope Mooring for Floating Offshore Wind Turbines Journal of Marine Science and Engineering 2023 11(1) 193 wind, FWT, fibre rope, SYROPE, mooring Jie Wu, Decao Yin, Halvor Lie, Elizabeth Passano, Gro Sagli Baarholm, Svein Sævik (2024): Time Domain Prediction of Combined CF and IL VIV Responses under Constant Currents, OMAE2024-127490 Time domain VIV, model test comparison Dadmarzi, F.H., Fonseca, N., Berthelsen, P.A., (2024): Contribution of Waves to Horizontal Low Frequency Motions of Floating Offshore Wind Turbines., OMAE2024-136471 wind, FWT, 12MW Dadmarzi, F.H., Bachynski-Polic, E.E., Pakozdi, C., Thys, M., (2024): Validation of a Frequency-Dependent Morison Force Formulation for a Large Monopile in Severe Irregular Seas, Journal of OMAE OMAE-23-1146 wind, monopile support of wind turbine, hydrodynamic loads Decao Yin, Elizabeth Passano, Petter A. Berthelsen (2024): Numerical Investigation of Vortex-Induced Motions (Vim) on A Semi-Submersible Floating Offshore Wind Turbine, OMAE2024-127767 Time domain VIV, VIM, FWT, 12MW Jie Wu, Decao Yin, Halvor Lie, Guttorm Grytøyr, Brendan Francis Hogg (2024): Investigation of VIV Responses of Slender Structures Under Waves and Currents, OMAE2024-130274 VIV, waves and current, time domain prediction Shengjie Rui, Hans Petter Jostad, Zefeng Zhou, Erin Bachynski-Polić, Svein Sævik, Lizhong Wang, Zhen Guo (2025): Analysis of mooring system for floating wind turbine based on macro-model of chain-seabed interaction, Marine Structures Volume 104, 15 October 2025, 103877 Mooring system, Mooring line, Anchor, FWT, User-defined elements Simen Brodalen Lysthaug, Robert Indergård, Henning Braaten, Ørjan Selvik (2025): Numerical Model Validation Using Full-Scale Data: Well Boat Moored to Fish Cage , OMAE2025-157200 Aquaculture, fish cage, well boat, model validation, marine operations Robert Indergård, Simen B. Lysthaug, Eivind Lona, Henning Braaten (2026): Exposed vessel operations in aquaculture: Experimental validation of numerical models, Aquacultural Engineering Volume 112, 15 January 2026, 102617 Aquaculture, Validation, vessel, marine operations Jie Wu, Fengjian Jiang, Gro Sagli Baarholm, Guttorm Grytøyr (2026): Drag Amplification of Riser With Staggered Buoyancy Elements Under VIV, OMAE2026-181366 VIV, Drag amplification (DAF), buoyancy elements