Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The article is part of the design and research work conducted at the Gdansk University of Technology, Faculty of Ocean Engineering and Ship Technology, in cooperation with a number of other research centres, which concerns offshore wind farms planned to be built in the Polish zone of the Baltic sea in the next years. One of most difficult tasks in this project is building suitable foundations for each power unit consisting of a tower and a wind turbine mounted on its top. Since the water regions selected for building those wind farms have different depths, there was need to study different possible technical variants of this task, with the reference to both the foundation structures themselves, and the technology of their transport and setting, or anchoring. The article presents the technology of towing, from the shipyard to the setting place, and installation of the foundation having the form of a floating platform of TLP (Tension Leg Platform) type, anchored by tight chains to suction piles in the waters with depth of 60 m.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
59--66
Opis fizyczny
Bibliogr. 21 poz., rys.
Twórcy
autor
- Gdańsk University of Technology Faculty of Ocean Engineering and Ship Technology 11/12 Narutowicza St. 80 - 233 Gdańsk Poland
autor
- Gdańsk University of Technology Faculty of Ocean Engineering and Ship Technology 11/12 Narutowicza St. 80 - 233 Gdańsk Poland
autor
- Gdańsk University of Technology Faculty of Ocean Engineering and Ship Technology 11/12 Narutowicza St. 80 - 233 Gdańsk Poland
Bibliografia
- 1. Mikielewicz D., Wajs J., Ziółkowski P., Mikielewicz J.: Utilisation of waste heat from the power plant by use of the ORC aided with bleed steam and extra source of heat, Energy, 97, 11-19, 2016.
- 2. Kropiwnicki J., Kneba Z., Ziółkowski M.: Test for assessing the energy efficiency of vehicles with internal combustion engines. International Journal of Automotive Technology, Vol. 14, nr 3 (2013), s. 479-487.
- 3. Hirt Ł., Lampart P.: Complex multidisciplinary optimization of turbine blading systems// ARCHIVES OF MECHANICS. -Vol. 64, nr. 2 (2012), s.153-175.
- 4. Barthelmie R., Pryor S., Frandsen S., Hansen K., Schepers J., K. Rados K., Schlez W., Neubert A., Jensen L. and Neckelmann S.: Quantifying the Impact of Wind Turbine Wakes on Power Output at Offshore Wind Farms. Journal of Atmospheric and Oceanic Technology Vol. 27, 2010,
- 5. Ackermann T., Söder L.: Wind energy technology and current status: a review, Renewable and Sustainable Energy Reviews, 4 (2000), pp. 315–374
- 6. Markard J., Petersen R.: The offshore trend: structural changes in the wind power sector. Energy Policy, 37 (2009), pp. 3545–3556.
- 7. Musial W., Butterfield S., Ram B.: Energy from offshore wind. Proc. offshore wind Conference Houston (2006), pp. 1888–1898.
- 8. Denis Matha: Model Development and Loads Analysis of an Offshore Wind Turbine on a Tension Leg Platform, with a Comparison to Other Floating Turbine Concepts. University of Colorado - Boulder Subcontract Report NREL/SR-500-45891, 2010.
- 9. Wandji W., Natarajan A., Dimitrov N.: Development and design of a semi-floater substructure for multi-megawatt wind turbines at 50+ m water depths. Ocean Engineering, Volume 125, 1 October 2016, Pages 226-237.
- 10. Dymarski C., Dymarski P., Żywicki J.: Design and strength calculations of the tripod support structure for offshore wind power plant. Polish Maritime Research 01/2015
- 11. Roddier D., Cermelli C., Aubault A., Alla Weinstein A.: WindFloat: a floating foundation for offshore wind turbines. J Renew Sustain Energy, 2 (2010), p. 033104
- 12. Adam F., Myland T., Schuldt B., Großmann J., Dahlhaus F.: Evaluation of internal force superposition on a TLP for wind turbines. Renewable Energy, Volume 71, November 2014, Pages 271-275
- 13. Butterfield S., Musial W., Jonkman J., Sclavounos P.: Engineering challenges for floating offshore wind turbines. Proc. offshore wind conference Copenhagen (2005).
- 14. Bachynski E., Torgeir Moan T.: Design considerations for tension leg platform wind turbines. Marine Structures, Volume 29, Issue 1, December 2012, Pages 89-114.
- 15. Grelowska G., Kozaczka E., Kozaczka S., Szymczak W.: Sea bottom structure investigation by means of acoustic methods// POLISH JOURNAL OF ENVIRONMENTAL STUDIES. -Vol. 19, nr. No. 4A (2010), s.35-38.
- 16. Kozaczka E., Grelowska G., Szymczak W., Kozaczka S.: The Examination of the Upper Layers of the Seabed by the Means of the Acoustic Methods// ACTA PHYSICA POLONICA A. -Vol. 119, nr. No. 6A (2011), s.1091-1094.
- 17. Benassai G., Campanile A., PiscopoV., Scamardella A.: Ultimate and accidental limit state design for mooring systems of floating offshore wind turbines. Ocean Engineering, Volume 92, 1 December 2014, Pages 64-74.
- 18. Johanning L., Smith G.: Station keeping study for WEC devices including compliant chain, compliant hybrid and taut arrangement, Proc. of the 27th International Conference on Offshore Mechanics and Arctic Engineering (OMAE), 2008
- 19. Fitzgerald J., Bergdahl L.: Considering mooring cables for offshore wave energy converters, Proc. of the 7th European Wave and Tidal Energy Conference (EWTEC), 2007.
- 20. Masciola M., Robertson A., Jonkman J., Driscoll F.: Investigation of a FAST-OrcaFlex coupling module for integrating turbine and mooring dynamics of offshore floating wind turbines, Proc. of the International Conference on Offshore Wind Energy and Ocean Energy (ICOWEOE), 2011.
- 21. Youhu Zhang Y., Husmann K., Andersen K., Tedesco G.: Ultimate bearing capacity of laterally loaded piles in clay – Some practical considerations. Marine Structures, Volume 50, November 2016, Pages 260-275.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a67f46b7-3f9b-4a36-8191-c30288fe5b90
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