Accès libre

Determination of Shear Modulus of Soil in the RC/TS Apparatus for Designing Offshore Wind Power Plant Foundations

À propos de cet article

Citez

1. [Arany L., Bhattacharya S., Macdonald J., Hogan S.J. (2017), Design of monopiles for offshore wind turbines in 10 steps, Soil Dynamics and Earthquake Engineering, pp. 126–152.10.1016/j.soildyn.2016.09.024Search in Google Scholar

2. Bałachowski L. (2017). Physical modelling of geotechnical structures in ports and offshore. Polish Maritime Research Special Issue S1, 24(93), pp. 4–9.10.1515/pomr-2017-0014Search in Google Scholar

3. Benz T. (2007). Small strain stiffness of soils and its numerical consequences (PhD dissertation), Universitat Stuttgart, Germany.Search in Google Scholar

4. Chen X-L., Jin X., Tao X-X. (2008). Comparisons of 5 types of soil dynamic nonlinear constitutive models in seismic response of site. The 14th World Conference on Earthquake Engineering, Beijing, China.Search in Google Scholar

5. Chiang D.Y. (1992). Parsimonious modeling of inelastic structures (PhD thesis), California Institute of Technology, Pasadena, USA.Search in Google Scholar

6. Diaz-Rodriguez J.A., Lopez-Molina J.A. (2008), Strain thresholds in soil dynamics. The 14-th World Conference on Earthquake Engineering, October 12-17, 2008, Beijing, China.Search in Google Scholar

7. Drnevich V.P., Hall J.R., Richard F.E. (1967), Effects of amplitude of vibration on the shear modulus of sand, in: Proc., Int. Symp. on Wave Propagation and Dynamic Properties of Earth Mat., Albuquerque, N.M., pp. 189–199.Search in Google Scholar

8. Duda M., Mikołajuk H., Okrasa S. (2009). Prognoza bilansu energetycznego Polski do 2030 r. Materiały XXIII Konferencji „Zagadnienia surowców energetycznych i energii w gospodarce krajowej, Zakopane 11-14 X 2009.Search in Google Scholar

9. Jardine R.J. (1992). Some observations on the kinematic nature of soil stiffness, Soils and Foundations, 32(2), pp. 111–124.10.3208/sandf1972.32.2_111Search in Google Scholar

10. Jastrzębska M. (2010). The external and internal measurement effect on shear modulus distribution within cyclic small strains in triaxial studies on cohesive soil, Int. Conf. on Experimental Mechanics ICEM14, European Physical Journal, EPJ Web of Conferences 6, 2014.10.1051/epjconf/20100622014Search in Google Scholar

11. Król M. (2013), Problemy związane z posadowieniem elektrowni wiatrowych, Geoinżynieria drogi mosty tunele, 44(3), pp. 44–46.Search in Google Scholar

12. Li J., Chen S., Jiang L., (2015), Dynamic strength and accumulated plastic strain development laws and models of the remolded red clay under long-term cyclic loads: laboratory test results, Polish Maritime Research, Special Issue S1, 22(86): pp. 89–94.10.1515/pomr-2015-0038Search in Google Scholar

13. Lombardi D, Bhattacharya S, Muir Wood D. (2013) Dynamic soil–structure interaction of monopile supported wind turbines in cohesive soil, Soil Dynynamic Earthquake Engineering pp. 165–80.10.1016/j.soildyn.2013.01.015Search in Google Scholar

14. Mayne P.W., Coop M.R., Springman S.M., Huang A-B., Zornberg J.G. (2009), Geomaterial behavior and testing.Proc. of 17-th International Conference on Soil Mechanics and Geotechnical Engineering, Alexandria, Egipt, 5–9 October 2009, pp. 2777–2872.Search in Google Scholar

15. Nelder J.A., Mead R. (1965). A simplex method for function minimization. Computer Journal, 7(4), pp. 308–313.10.1093/comjnl/7.4.308Search in Google Scholar

16. Nogami Y., Murono Y., Morikawa H. (2012). Nonlinear hysteresis model taking into account S-shaped hysteresis loop and its standard parameters. The 15th World Conference on Earthquake Engineering, Lisboa, Portugalia.Search in Google Scholar

17. Peyrard, Ch. (2016), Offshore wind turbine foundations. Presentation of “Ecole tematique sur les technologies EMRs”, 19-20 October 2016, Ecole Centrale de Nantes, France (https://formationemr16.sciencesconf.org).Search in Google Scholar

18. Srokosz P.E., Dyka I., Bujko M. (2017). Badania sztywności gruntu w kolumnie rezonansowej. monograph, Wydawnictwo Uniwersytetu Warmińsko-Mazurskiego w Olsztynie.Search in Google Scholar

19. Vardanega, P.J., Bolton M.D. (2011), Practical methods to estimate the non-linear shear stiffness of clays and silts. Proc. 5th Int. Conf. on the Deformation Characteristics of Geo-materials, IOS Press, Amsterdam, Netherlands, pp. 372–379.Search in Google Scholar

20. Yu Lu-Qing, Wang Li-Zhong, Guo Zhen (2015), Long-term dynamic behaviour of monopole supported offshore wind turbines in sand, Theretical and Applied Mechanics Letters, pp. 80-84.10.1016/j.taml.2015.02.003Search in Google Scholar

21. Zaremba A. (2013), Modyfikacja podłoża gruntowego w świetle posadowienia turbin wiatrowych (cz. I), Geoinżynieria drogi mosty tunele, 45(4), pp. 42–48.Search in Google Scholar

22. Zhao J., Bao L., Wang G., (2017), Numerical analysis of soil settlement prediction and its application in large-scale marine reclamation artificial island project, Polish Maritime Research, Special Issue S3, 24(95), pp. 4–11.10.1515/pomr-2017-0097Search in Google Scholar

23. Zhou M., Yuan W., Zhang Y., (2015), Seismic material properties of reinforced concrete and steel casing composite concrete in elevated pile-group foundation, Polish Maritime Research, Special Issue S1, 22(86), pp. 141–148.10.1515/pomr-2015-0046Search in Google Scholar

24. Guideline for the Certification of Wind Turbines. Edition 2010, Germanischer Lloyd Industrial Services GmbH, Hamburg, Germany.Search in Google Scholar

25. Rozporządzenie Ministra transportu, budownictwa i gospodarki morskiej z dnia 25 kwietnia 2012 r. w sprawie ustalania geotechnicznych warunków posadowienia obiektów budowlanych, Dziennik ustaw Rzeczypospolitej Polskiej.Search in Google Scholar

26. Europe’s onshore and offshore wind energy potential. An assessment of environmental and economic constraints. European Environment Agency, Technical report No 6/2009.Search in Google Scholar

27. Deep Water. The next step for offshore wind energy. A report by European Wind Energy Agency, July 2013 (http://www.ewea.org).Search in Google Scholar

28. Wind in power 2017. Annual combined onshore and offshore wind energy statistics. Wind Europe, February 2018, Brussels, Belgium (https://windeurope.org).Search in Google Scholar

29. Offshore wind in Europe. Key trends and statistics 2017. Wind Europe, February 2018, Brussels, Belgium (https://windeurope.org).Search in Google Scholar

30. DIN 4178:2005-04, Glockentürme (Bell Towers), DIN - Deutsches Institut für Normung e.V.Search in Google Scholar

eISSN:
2083-7429
Langue:
Anglais