Chinese Journal of Ship Research, Volume. 17, Issue 1, 80(2022)
Effects of mooring systems on dynamic response of wave energy converter
[1] [1] NEARY V S, LAWSON M, PREVISIC M, et al. Methodology f design economic analysis of marine energy conversion (MEC) technologies: No. S20143561C[R]. Albuquerque, NM, USA: Sia National Labaties, 2014.
[8] [8] BOSMA B, SHENG W, THIEBAUT F. Perfmance assessment of a floating power system f the galway bay wave energy test site[C]International Conference on Ocean Energy (ICOE). Halifax, NS, Canada: International Energy Agency (IEA) Press, 2014: 1–10.
[9] [9] GULLAKSEN J. Wave energy converter (WEC)fmulation of numerical method to predict fluidstructure interaction wave energy potential[C]Paper presented at the Offshe Technology Conference. Houston, Texas: Offshe Technology Conference, 2014.
[10] [10] CASAUBIEILH P, THIEBAUT F, BOSMA B, et al. Perfmance improvements of moing systems f wave energy converters[C]1st International Conference on Renewable Energies Offshe. Lisbon, Ptugal: CRC Press, 2014: 24–26.
[12] [12] FLY J F, BANFIELD S J, RIDGE I M L, et al. Moing systems f marine energy converters[C]Proceeding of OCEANS 2016 MTSIEEE Monterey. Monterey, CA, USA: IEEE, 2016: 1–13.
[16] [16] FOLLEY M. Numerical modelling of wave energy converters: stateoftheart techniques f single devices arrays[M]. Amsterdam: Academic Press, 2016.
[20] [20] WECSim manual[EBOL]. [20201214]. https:wecsim.github.ioWECSim.
[21] [21] YU Y H, LAWSON M, RUEHL K, et al. Development demonstration of the WECSim wave energy converter simulation tool[C]Proceedings of the 2nd Marine Energy Technology Symposium. Seattle, WA: METS, 2014: 1–8.
[22] YU Y H, LI Y. Reynolds-Averaged Navier–Stokes simulation of the heave performance of a two-body floating-point absorber wave energy system[J]. Computers & Fluids, 73, 104-114(2013).
[23] [23] YU Y H, TOM N, JENNE D. Numerical analysis on hydraulic power takeoff f wave energy converter power smoothing methods[C]ASME 2018 37th International Conference on Ocean, Offshe Arctic Engineering. Madrid, Spain: ASME, 2018.
[24] [24] RUEHL K, MICHELEN C, KANNER S, et al. Preliminary verification validation of WECsim, an opensource wave energy converter design tool[C]ASME 2014 33rd International Conference on Ocean, Offshe Arctic Engineering. San Francisco, Califnia, USA: ASME, 2014.
[25] [25] RUEHL K, MICHELEN C, YU Y H, et al. Update on WECSim validation testing code development [C] Proposed f Presentation at the Marine Energy Technology Symposium. Albuquerque, NM: Sia National Lab. , 2016.
[26] [26] RUEHL K, MICHELEN C, BOSMA B, et al. WECSim phase 1 validation testing: numerical modeling of experiments[C]ASME 2016 35th International Conference on Ocean, Offshe Arctic Engineering. Busan, South Kea: ASME, 2016.
[27] [27] LAWSON M J, YU Y H, NELESSEN A, et al. Implementing nonlinear buoyancy excitation fces in the WECSim wave energy converter modeling tool [C] ASME 2014 33rd International Conference on Ocean, Offshe Arctic Engineering. San Francisco, Califnia, CA: ASME, 2014.
[28] [28] LAWSON M, GARZON B B, WENDT F, et al. COER hydrodynamic modeling competition: modeling the dynamic response of a floating body using the WECSim FAST simulation tools[C]ASME 2015 34th International Conference on Ocean, Offshe Arctic Engineering. St. John''s, Newfoundl, Canada: ASME, 2015.
[29] [29] LAWSON M, YU Y H, RUEHL K, et al. Improving Validating the WECSim wave energy converter code[C]Proceedings of the 3rd Marine Energy Technology Symposium, DC. Albuquerque, NM: Sia National Lab. , 2015.
[30] [30] TOM N, LAWSON M, YU Y H. Demonstration of the recent additions in modeling capabilities f the WECsim wave energy converter design tool[C]ASME 2015 34th International Conference on Ocean, Offshe Arctic Engineering. St. John''s, Newfoundl, Canada: ASME, 2015.
[31] [31] TOM N, LAWSON M J, YU Y H. Recent additions in the modeling capabilities of an opensource wave energy converter design tool[C]25th International Ocean Polar Engineering. Kona, HI, USA: ISOPE Press, 2015: 1–8.
[33] [33] BOSMA B, SIMMONS A, LOMONACO P, et al. wecsim phase 1 validation testing: experimental setup initial results[C]ASME 2016 35th International Conference on Ocean, Offshe Arctic Engineering. Busan, South Kea: ASME, 2016.
[34] [34] SO R, SIMMONS A, BREKKEN T, et al. Development of PTOSim: a power perfmance module f the opensource wave energy converter code WECSim[C]Proceedings of the 34th International Conference on Ocean, Offshe Arctic Engineering. St. John''s, Newfoundl, Canada: ASME, 2015.
[36] [36] YIM S C, ADAMI N, BOSMA B, et al. A preliminary study on the modeling analysis of nonlinear effects of ocean waves powertakeoff control on wave energy conversion system dynamics[C]ASME 2019 38th International Conference on Ocean, Offshe Arctic Engineering. Glasgow, Scotl, UK: ASME, 2019.
[38] [38] SIRNIVAS S, YU Y H, HALL M, et al. Coupled moing analyses f the WECsim wave energy converter design tool[C]ASME 2016 35th International Conference on Ocean, Offshe Arctic Engineering. Busan, South Kea: ASME, 2016.
[50] [50] France Bureau Veritas (BV). Guidance notes certification of fibre ropes f deepwater offshe services[S]. Paris, France: Bureau Veritas Press, 2017.
[51] [51] cina, caflex documentation [EBOL]. [20201214]. https:www.cina.comwebhelpcaFlexDefault.htm.
Get Citation
Copy Citation Text
Yushun LIAN, Bin ZHANG, Jinhai ZHENG, Haixiao LIU, Gang MA. Effects of mooring systems on dynamic response of wave energy converter[J]. Chinese Journal of Ship Research, 2022, 17(1): 80
Category: Ship Design and Performance
Received: Dec. 15, 2020
Accepted: --
Published Online: Mar. 24, 2025
The Author Email: