DOI QR코드

DOI QR Code

Vibration characteristics of offshore wind turbine tower with gravity-based foundation under wave excitation

  • Nguyen, Cong-Uy (Department of Ocean Engineering, Pukyong National University) ;
  • Lee, So-Young (Department of Ocean Engineering, Pukyong National University) ;
  • Huynh, Thanh-Canh (Department of Ocean Engineering, Pukyong National University) ;
  • Kim, Heon-Tae (Department of Ocean Engineering, Pukyong National University) ;
  • Kim, Jeong-Tae (Department of Ocean Engineering, Pukyong National University)
  • Received : 2019.01.09
  • Accepted : 2019.04.24
  • Published : 2019.05.25

Abstract

In this study, vibration characteristics of offshore wind turbine tower (WTT) with gravity-based foundation (GBF) are identified from dynamic responses under wave-induced excitations. The following approaches are implemented to achieve the objective. Firstly, the operational modal analysis methods such as frequency domain decomposition (FDD) and stochastic subspace identification (SSI) are selected to estimate modal parameters from output-only dynamic responses. Secondly, a GBF WTT model composed of superstructure, substructure and foundation is simulated as a case study by using a structural analysis program, MIDAS FEA. Thirdly, wave pressures acting on the WTT structure are established by nonlinear regular waves which are simulated from a computational fluid software, Flow 3D. Wave-induced acceleration responses of the target structure are analyzed by applying the simulated wave pressures to the GBF WTT model. Finally, modal parameters such as natural frequencies and mode shapes are estimated from the output-only acceleration responses and compared with the results from free vibration analysis. The effect of wave height and period on modal parameter extraction is also investigated for the mode identification of the GBF WTT.

Keywords

Acknowledgement

Supported by : National Research Foundation of Korea (NRF)

References

  1. 4Coffshore (2018), https://www.4coffshore.com/windfarms/gravity-based-support-structures-aid8.html, 2018.12.31.
  2. Banerjee, A., Chakraborty, T. and Matsagar, V. (2018), "Dynamic analysis of an offshore wind turbine considering frequencydependent soil-structure interaction parameters", Int. J. Struct. Stab. Dynam., 18(6), 1850086. https://doi.org/10.1142/S0219455418500864.
  3. Barkan, D.D. (1962), "Dynamics of bases and foundations", McGraw-Hill Book Co., New York, USA.
  4. Brinker, R. and Andersen, P. (2006), "Understanding stochastic subspace identification", Proceedings of the 24th International Modal analysis Conference, St. Louis, Missouri.
  5. Brinker, R., Zhang, L. and Andersen, P. (2001), "Modal identification of output-only systems using frequency domain decomposition", Smart Mater. Struct., 10, 441-445. https://doi.org/10.1088/0964-1726/10/3/303
  6. Chong, N. and Li, R. (2016), Offshore Wind Farms: Technologies, Design and Operation, Woodhead Publishing, DOI:10.1016/C2014-0-00763-0.
  7. Daewoo E&C (2017), "Offshore Wind Concrete Gravity Based Substructure-Design and Construction Guidelines", Daewoo Institute of Construction Technology, Korea.
  8. Damgaard, M. (2014), "Dynamic properties of offshore wind turbine foundations", PhD thesis, Aalborg University, Nov. 2014.
  9. Esteban, M.D., Counage, B., Lopez-Gutierrez, J.S., Negro, V. and Vellisco, F. (2015), "Gravity based support structures for offshore wind turbine generators: Review of the installation process", Ocean Eng., 110, 281-291. https://doi.org/10.1016/j.oceaneng.2015.10.033.
  10. Ewins, D.J. (2000), "Modal Testing: theory, practice and application, 2nd edition", Research Studies Press Ltd., Hertfordshire, UK.
  11. Huynh, T.C., Lee, S.Y., Dang, N.L. and Kim, J.T. (2018), "Vibration-based structural identification of caisson-foundation system using in situ measurement and simplified model", Struct. Control Health Monit., Article ID: e2315, DOI: 10.1002/stc.2315.
  12. Kim, T., Baek, S., Park, E. and Chang, H.J. (2014), "Optimal green energy management in Jeju, South Korea: On-grid and off-grid electrification", Renew. Energ., 69, 123-133. https://doi.org/10.1016/j.renene.2014.03.004.
  13. Korean Hydrographic and Oceanographic Agency. (2017), "Ocean Observation Newsletter - 3rd Quarter 2017", National Oceanographic Research Institute, Republic of Korea.
  14. Lee, S.Y. and Kim, J.T. (2015), "Effects of foundation damage and water-level change on vibration modal parameters of gravitytype caisson structure", Science China Technological Sciences, 58(2), 316-329. https://doi.org/10.1007/s11431-014-5748-1
  15. Lee, S.Y., Huynh, T.C. and Kim, J.T. (2015), "Structural identification of gravity-type caisson structure via vibration feature analysis", Smart Struct. Syst., 15(2), 259-281. http://dx.doi.org/10.12989/sss.2015.15.2.259
  16. Lee, S.Y., Huynh, T.C. and Kim, J.T. (2018), "A practical scheme of vibration monitoring and modal analysis for caisson breakwater", Coast. Eng., 137, 103-119. https://doi.org/10.1016/j.coastaleng.2018.03.008.
  17. Lee, S.Y., Nguyen, K.D., Huynh, T.C., Kim, J.T., Yi, J.H. and Han, S.H. (2012), "Vibration-based damage monitoring of harbor caisson structure with damaged foundation-structure interface", Smart Struct. Syst., 10(6), 517-547. http://dx.doi.org/10.12989/sss.2012.10.6.517.
  18. Lee, S.Y., T.C., Huynh, Kim, J.T. Yoon, H.S. and Han, S.H. (2013), "Vibration characteristics of gravity-type caisson breakwater structure with water-level variation", Int. J. Distrib. Sens. N., 9(11), 1-13. https://doi.org/10.1155/2013/261396.
  19. Menge, P. and Gunst, N. (2008), "Gravity base foundation for the wind turbines on the thornton bank-Belgium", Proceedings of the 15th Innovatieforum Geotechniek, Antwerpen, Belgium.
  20. MOTIE (2018), Ministry of Trade, Industry and Energy, May 2018.
  21. Nguyen, C.U., Huynh, T.C. and Kim, J.T. (2018), "Vibrationbased damage detection in wind turbine towers using artificial neural networks", Struct. Monit. Maint., 5(4), 507-519. https://doi.org/10.12989/smm.2018.5.4.507.
  22. Nguyen, C.U., Huynh, T.C., Dang, N.L. and Kim, J.T. (2017), "Vibration-based damage alarming criteria for wind turbine towers", Struct. Monit. Maint., 4(3), 221-236. https://doi.org/10.12989/smm.2017.4.3.221.
  23. Nguyen, T.C., Huynh, T.C. and Kim, J.T. (2015), "Numerical evaluation for vibration-based damage detection in wind turbine tower structure", Wind Struct., 21(6), 657-675. http://dx.doi.org/10.12989/was.2015.21.6.657.
  24. Nguyen, T.C., Huynh, T.C. and Kim, J.T. (2017), "Hybrid boltloosening detection in wind turbine tower structures by vibration and impedance responses", Wind Struct., 24(4), 385-403. https://doi.org/10.12989/was.2017.24.4.385.
  25. Overschee, V.P. and De Moor, B. (1996), "Subspace identification for linear system", Kluwer Academic Publisher, Dordrecht, Netherlands.
  26. Park, J.H. (2009), "Development of Autonomous Smart Sensor Nodes for Hybrid Structural Health Monitoring of Large Structures", Doctoral Thesis, Department of Ocean Engineering, Pukyong National University.
  27. Peire, K., Nonneman and H., Bosschem, E. (2008), "Gravity base foundations for the thornton bank offshore wind farm", Proceedings of the CEDA, Antwerp, Belgium.
  28. Petersen, T.U., Sumer, B.M., Fredsoe, J., Raaijmakers, T.C. and Schouten, J.J. (2015), "Edge scour at scour protections around piles in the marine environment - Laboratory and field investigation", Coast. Eng., 106, 42-72. https://doi.org/10.1016/j.coastaleng.2015.08.007.
  29. Risi, R.D., Bhattacharya, S. and Goda, K. (2018), "Seismic performance assessment of monopile-supported offshore wind turbines using unscaled natural earthquake records", Soil Dyn. Earthq. Eng., 109, 154-172. https://doi.org/10.1016/j.soildyn.2018.03.015.
  30. Smaling, H. (2014), Hydrodynamic loading on the shaft of a gravity based offshore wind turbine, Final Report Master Thesis, TU Delft, May 2018.
  31. Wang, S., Huang, Y., Li, L., Liu, C. and Zhang, D. (2017), "Dynamic analysis of wind turbines including nacelle-towerfoundation interaction for condition of incomplete structural parameters", Adv. Mech. Eng., 9(3), 1-17. https://doi.org/10.1177/1687814017692940.
  32. Wang, X., Zeng, X., Li, J., Yang, X. and Wang, H. (2018), "A review on recent advancements of substructures for offshore wind turbines", Energ. Convers. Manage., 158, 103-119. https://doi.org/10.1016/j.enconman.2017.12.061.
  33. West, W.M. (1984), "Illustration of the Use of Modal Assurance Criterion to Detect Structural Changes in an Orbiter Test Specimen", Proceedings of the Air Force Conference on Aircraft Structural Integrity, 1-6.
  34. Wickramasinghe, W.R., Thambiratnam, D.P., Chan, T.H.T. and Nguyen, T. (2016), "Vibration characteristics and damage detection in a suspension bridge", J. Sound Vib., 375, 254-274. https://doi.org/10.1016/j.jsv.2016.04.025.
  35. Wind EUROPE (2018), Wind in power 2017: Annual combined onshore and offshore wind energy statistics, February 2018, www.windeurope.org.
  36. Yi, J.H., and Yun, C.B. (2004), "Comparative study on modal identification methods using output-only information", Struct. Eng. Mech., 17(3-4), 445-446. https://doi.org/10.12989/sem.2004.17.3_4.445.