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Design of Structure of Tension Leg Platform for 6 MW Offshore Wind Turbine Based On Fem Analysis


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1. M. Deja, M. S. Siemiątkowski: Feature-based generation of machining process plans for optimised parts manufacture. Journal of Intelligent Manufacturing August 2013, Volume 24, Issue 4, pp 831-846.10.1007/s10845-012-0633-xSearch in Google Scholar

2. Niklas K., Kozak J.: Experimental investigation of Steel- Concrete-Polymer composite barrier for the ship internal tank construction. OCEAN ENGINEERING. -Vol. 111, (2016), s.449-460Search in Google Scholar

3. Hirt Ł., Lampart P.: Complex multidisciplinary optimization of turbine blading systems. ARCHIVES OF MECHANICS. -Vol. 64, nr. 2 (2012), s.153-175Search in Google Scholar

4. Sabik A., Kreja I.: Large thermo-elastic displacement and stability FEM analysis of multilayered plates and shells. THIN-WALLED STRUCTURES. -Vol. 71, (2013), pp.119-133.Search in Google Scholar

5. Kahsin M., Łuczak M.: NUMERICAL MODEL QUALITY ASSESSMENT OF OFFSHORE WIND TURBINE SUPPORTING STRUCTURE BASED ON EXPERIMENTAL DATA. Structural Health Monitoring 2015: System Reliability for Verification and Implementation: Proceedings of the 10th International Workshop on Structural Health Monitoring.- Vol. 1/ ed. Fu-Kuo Chang, Fotis Kopsaftopoulos 439 North Duke Street ・ Lancaster, PA 17602-4967, U.S.A. : DEStech Publications, Inc., 2015, s.2817-2824Search in Google Scholar

6. Kahsin M., Luczak M., Peeters B.: Use and assessment of preliminary FE model results within testing process of offshore windturbine supporting structure. EURODYN 2014: IX INTERNATIONAL CONFERENCE ON STRUCTURAL DYNAMICS, Book Series: EURODYN-International Conference on Structural Dynamics, Pages: 3659-3666Search in Google Scholar

7. Łuczak M., Manzato S., Peeters B., Branner K., Berring P., Kahsin M.: Updating Finite Element Model of a Wind Turbine Blade Section Using Experimental Modal Analysis Results. SHOCK AND VIBRATION. -Vol. 2014, iss. 1 (2014), s.71-82Search in Google Scholar

8. Brommundt M., Krause L.,Merz K., Muskulus M.: Mooring system optimization for floating wind turbines using frequency domain analysis. Energy Procedia 24 (2012) 289-296Search in Google Scholar

9. Karimirad M., Moan T.: A simplified method for coupled analysis of floating offshore wind turbines. Marine Structures 27 (2012) 45-63Search in Google Scholar

10. Jeon S.H., Cho Y.U., Seo M.W., Cho J.R., Jeong W.B.: Dynamic response of floating substructure of spar-type offshore wind turbine with catenary mooring cables. Ocean Engineering 72 (2013) 356-364Search in Google Scholar

11. Bachynski E.E., Moan T.: Design considerations for tension leg platform wind turbines. Marine Structures 29 (2012) 89-114Search in Google Scholar

12. Adam F.,Myland T., Schuldt B., Grosmann J., Dahlhaus F.: Evaluation of internal force superposition on a TLP for wind turbines. Renewable Energy, Volume 71, November 2014, Pages 271-27510.1016/j.renene.2014.05.019Search in Google Scholar

13. Adam F., Ritschel U., Plumridge E., Grosmann J.:Pre- Design of a TLP steel-concrete composite substructure for a 6 MW wind turbine as a way to essential cost-reduction. Conference proceedings RENEW, 2016, Lisbon10.1201/9781315229256-72Search in Google Scholar

14. DNV-OS-J103 Design of Floating Wind Turbine Structures. JUNE 2013Search in Google Scholar

15. https://www.senvion.com/global/en/wind-energysolutions/wind-turbines/6xm/62m126/Search in Google Scholar

16. Jonkman J., Butterfield S., Musial W., Scot G.: Definition of a 5-MW Reference Wind Turbine for Offshore System Development. Technical Report NREL/TP-500-38060 February 200910.2172/947422Search in Google Scholar

17. Sarpkaya T.: Wave forces on offshore structures, Cambridge University Press, 201010.1017/CBO9781139195898Search in Google Scholar

18. Dymarski P., Ciba E., Marcinkowski T.: Effective method for determining environmental loads on supporting structures for offshore wind turbines. POLISH MARITIME RESEARCH 1(89) 2016 Vol. 23; pp. 52-60 10.1515/ pomr-2016-000810.1515/pomr-2016-0008Search in Google Scholar

19. DNV-OS-J101 Design of Offshore Wind Turbine Structures. MAY 2014 Search in Google Scholar

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Language:
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Engineering, Introductions and Overviews, other, Geosciences, Atmospheric Science and Climatology, Life Sciences