Skip to main content
Intended for healthcare professionals
Restricted access
Research article
First published online August 3, 2016

Optimization design of tuned mass damper for vibration suppression of a barge-type offshore floating wind turbine

Abstract

An efficient method for restraining the large vibration displacements and loads of offshore floating wind turbines under harsh marine environment is proposed by putting tuned mass dampers in the cabin. A dynamics model for a barge-type offshore floating wind turbine with a fore–aft tuned mass damper is established based on Lagrange’s equations; the nonlinear least squares Levenberg–Marquardt algorithm is employed to identify the parameters of the wind turbine; different parameter optimization methods are adopted to optimize tuned mass damper parameters by considering the standard deviation of the tower top longitudinal displacement as the objective function. Aiming at five typical combined wind and wave load cases under normal running state of the wind turbine, the dynamic responses of the wind turbine with/without tuned mass damper are simulated and the suppression effect of the tuned mass damper is investigated over the wide range of load cases. The results show that when the wind turbine vibrates in the state of damped free vibration, the standard deviation of the tower top longitudinal displacement is decreased approximately 60% in 100 s by the optimized tuned mass damper with the optimum tuned mass damper mass ratio 1.8%. The standard deviation suppression rates of the longitudinal displacements and loads in the tower and blades increase with the tuned mass damper mass ratio when the wind turbine vibrates under the combined wind and wave load cases. When the mass ratio changes from 0.5% to 2%, the maximum suppression rates vary from 20% to 50% correspondingly, which effectively reduce vibration responses of the offshore floating wind turbine. The results of this article preliminarily verify the feasibilities of using a tuned mass damper for restraining vibration of the barge-type offshore floating wind turbine.

Get full access to this article

View all access and purchase options for this article.

References

1. Kaldellis JK, Kapsali M. Shifting towards offshore wind energy—recent activity and future development. Energ Policy2013; 53: 136–148.
2. Jonkman J. Dynamics modeling and loads analysis of an offshore floating wind turbine. PhD Thesis, University of Colorado, Boulder, CO, 2007.
3. Jonkman JM. Dynamics of offshore floating wind turbines—model development and verification. Wind Energy2009; 12(5): 459–492.
4. Butterfield S, Musial W, Jonkman J, et al. Engineering challenges for floating offshore wind turbines. Technical report, National Renewable Energy Laboratory, Denver, CO, September2007.
5. Jonkman J, Matha D. A quantitative comparison of the responses of three floating platforms. Technical report, National Renewable Energy Laboratory, Denver, CO, October2009.
6. Larsen TJ, Hanson TD. A method to avoid negative damped low frequent tower vibrations for a floating, pitch controlled wind turbine. J Phys Conf Ser2007; 75(1): 012073.
7. Skaare B, Hanson T, Nielsen F. Importance of control strategies on fatigue life of floating wind turbines. In: Proceedings of the 26th international conference on offshore mechanics and Arctic engineering, San Diego, CA, 10–15 June 2007. New York: ASME.
8. Jonkman J. Influence of control on the pitch damping of a floating wind turbine. In: 2008 ASME wind energy symposium, Reno, NV, 7–10 January 2008. Denver, CO: National Renewable Energy Laboratory.
9. Namik H, Stol K. Individual blade pitch control of floating offshore wind turbines. Wind Energy2010; 13(1): 74–85.
10. Namik H, Stol K. Performance analysis of individual blade pitch control of offshore wind turbines on two floating platforms. Mechatronics2011; 21(4): 691–703.
11. Staino A, Basu B. Emerging trends in vibration control of wind turbines: a focus on a dual control strategy. Philos T Roy Soc A2014; 373: 0069.
12. Lackner MA, Rotea M. Passive structural control of offshore wind turbines. Wind Energy2011; 14(3): 373–388.
13. Lackner M. Controlling platform motions and reducing blade loads for floating wind turbines. Wind Eng2009; 33: 541–553.
14. Lackner M. An investigation of the control and loads of floating wind turbines. Wind Energy2009; 4: 1118–1142.
15. Murtagh PJ, Ghosh A, Basu B, et al. Passive control of wind turbine vibrations including blade/tower interaction and rotationally sampled turbulence. Wind Energy2008; 11(4): 305–317.
16. Colwell S, Basu B. Tuned liquid column dampers in offshore wind turbines for structural control. Eng Struct2009; 31(2): 358–368.
17. Mensah A, Dueñas-Osorio L. Reliability analysis of wind turbines equipped with tuned liquid column dampers (TLCD). In: Structures congress, Chicago, IL, 29–31 March 2012, pp.1190–1200. Reston, VA: ASCE.
18. Ikeda T, Harata Y, Sasagawa Y, et al. Vibration suppression of wind turbine blades using tuned mass dampers. In: ASME 2014 international design engineering technical conferences and computers and information in engineering conference, Buffalo, NY, 17–20 August 2014. New York: ASME.
19. Li J, Zhang Z, Chen J. Experimental study on vibration control of offshore wind turbines using a ball vibration absorber. Energy Power Eng2012; 4(3): 153–157.
20. Jonkman J, Buhl ML Jr. Fast user’s guide. Technical report, National Renewable Energy Laboratory, Denver, CO, August2005.
21. Lackner MA, Rotea M. Structural control of floating wind turbines. Mechatronics2011; 21(4): 704–719.
22. Luo N, Pacheco L, Vidal Y, et al. Smart structural control strategies for offshore wind power generation with floating wind turbines. In: International conference on renewable energies and power quality, Santiago de Compostela, 28–30 March 2012. Santiago de Compostela: European Association for the Development of Renewable Energy, Environment and Power Quality (EA4EPQ).
23. Stewart GM. Load reduction of floating wind turbines using tuned mass dampers. MSc Thesis, University of Massachusetts, Amherst, MA, 2012.
24. Stewart GM, Lackner MA. Offshore wind turbine load reduction employing optimal passive tuned mass damping systems. IEEE T Contr Syst T2013; 21(4): 1090–1104.
25. Stewart GM, Lackner MA. Determining optimal tuned mass damper parameters for offshore wind turbines using a genetic algorithm. In: 50th AIAA aerospace sciences meeting including the new horizons forum and aerospace exposition, Nashville, TN, 9–12 January 2012, AIAA 2012-0376. Reston, VA: AIAA.
26. Si Y, Karimi HR, Gao H. Modeling and parameter analysis of the OC3-Hywind floating wind turbine with a tuned mass damper in nacelle. J Appl Math2013; 2013: 679071.
27. Si Y, Karimi HR, Gao H. Modeling and optimization of a passive structural control design for a spar-type floating wind turbine. Eng Struct2014; 69: 168–182.
28. He EM, Hu YQ, Zhang Y. Structural vibration control of offshore floating wind turbine based on TMD. J Northwest Polytech Univ2014; 1(32): 55–61.
29. He EM, Hu YQ, Zhang Y, et al. Vibration and load suppression of offshore floating wind turbine. In: The 1st international conference on advanced materials, structures and mechanical engineering, Incheon, South Korea, 3–4 May 2014, pp.891–896. Pfaffikon: TTP.
30. Jonkman J, Butterfield S, Musial W, et al. Definition of a 5-mw reference wind turbine for offshore system development. TP 500-38060. Denver, CO: National Renewable Energy Laboratory; February 2009.
31. Kane TR, Levinson DA. Dynamics: theory and applications. New York: McGraw Hill, 1985.
32. More JJ. The Levenberg–Marquardt algorithm: implementation and theory. In: Watson GA (ed) Numerical analysis: lecture notes in mathematics, vol. 630. Berlin, Heidelberg: Springer, 1978, pp.105–116.
33. Gavin H. The Levenberg–Marquardt method for nonlinear least squares curve-fitting problems. Technical report, Duke University, Durham, NC, October 2013.

Cite article

Cite article

Cite article

OR

Download to reference manager

If you have citation software installed, you can download article citation data to the citation manager of your choice

Share options

Share

Share this article

Share with email
EMAIL ARTICLE LINK
Share on social media

Share access to this article

Sharing links are not relevant where the article is open access and not available if you do not have a subscription.

For more information view the Sage Journals article sharing page.

Information, rights and permissions

Information

Published In

Article first published online: August 3, 2016
Issue published: February 2017

Keywords

  1. Offshore floating wind turbine
  2. dynamic model
  3. dynamic response
  4. structural control
  5. optimization
  6. tuned mass damper

Rights and permissions

© IMechE 2016.
Request permissions for this article.

Authors

Affiliations

Er-Ming He
Department of Aeronautical Structural Engineering, School of Aeronautics, Northwestern Polytechnical University, Xi’an, China
Ya-Qi Hu
Department of Aeronautical Structural Engineering, School of Aeronautics, Northwestern Polytechnical University, Xi’an, China
Yang Zhang
Department of Aeronautical Structural Engineering, School of Aeronautics, Northwestern Polytechnical University, Xi’an, China

Notes

Ya-Qi Hu, Department of Aeronautical Structural Engineering, School of Aeronautics, Northwestern Polytechnical University, No. 127 West You-yi Road, Xi’an 710072, China. Email: [email protected]

Metrics and citations

Metrics

Journals metrics

This article was published in Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment.

VIEW ALL JOURNAL METRICS

Article usage*

Total views and downloads: 701

*Article usage tracking started in December 2016


Articles citing this one

Receive email alerts when this article is cited

Web of Science: 49 view articles Opens in new tab

Crossref: 21

  1. Assessing seismic mitigation schemes of tuned mass dampers for monopil...
    Go to citation Crossref Google Scholar
  2. Active Vibration Suppression of Floating Wind Turbine Based on Fuzzy P...
    Go to citation Crossref Google Scholar
  3. RÜZGÂRA DAYANIKLI YAPILARIN OPTİMUM TASARIMI
    Go to citation Crossref Google Scholar
  4. Fuzzy Airflow-Based Active Structural Control of Integrated Oscillatin...
    Go to citation Crossref Google Scholar
  5. Modeling and optimization of multiple tuned mass dampers for a barge-t...
    Go to citation Crossref Google Scholar
  6. LESO-Based Nonlinear Continuous Robust Stabilization Control of Undera...
    Go to citation Crossref Google Scholar
  7. Active Structure Control of Floating Wind Turbine Using PID Controller
    Go to citation Crossref Google Scholar
  8. Recent Advancement in Assessment and Control of Structures under Multi...
    Go to citation Crossref Google Scholar
  9. A Model-Free Output Feedback Control Approach for the Stabilization of...
    Go to citation Crossref Google Scholar
  10. General Methodology for the Identification of Reduced Dynamic Models o...
    Go to citation Crossref Google Scholar
  11. Complementary Airflow Control of Oscillating Water Columns for Floatin...
    Go to citation Crossref Google Scholar
  12. Advanced robust control techniques for the stabilization of translatio...
    Go to citation Crossref Google Scholar
  13. Analysis of the Effects of the Location of Passive Control Devices on ...
    Go to citation Crossref Google Scholar
  14. A friction-based passive control technique to mitigate wind induced st...
    Go to citation Crossref Google Scholar
  15. Investigation of the effect of the added mass fluctuation and lateral ...
    Go to citation Crossref Google Scholar
  16. Design, assessment and evaluation of structural stabilization system f...
    Go to citation Crossref Google Scholar
  17. Parent Nested Optimizing Structure for Vibration Reduction in Floating...
    Go to citation Crossref Google Scholar
  18. Development of a Frequency-Adjustable Tuned Mass Damper (FATMD) for St...
    Go to citation Crossref Google Scholar
  19. Design Optimization and Coupled Dynamics Analysis of an Offshore Wind ...
    Go to citation Crossref Google Scholar
  20. An investigation on the impacts of passive and semiactive structural c...
    Go to citation Crossref Google Scholar
  21. Passive Vibration Control of a Semi-Submersible Floating Offshore Wind...
    Go to citation Crossref Google Scholar

Figures and tables

Figures & Media

Tables

View Options

Get access

Access options

If you have access to journal content via a personal subscription, university, library, employer or society, select from the options below:

IOM3 members can access this journal content using society membership credentials.

IOM3 members can access this journal content using society membership credentials.


Alternatively, view purchase options below:

Purchase 24 hour online access to view and download content.

Access journal content via a DeepDyve subscription or find out more about this option.

View options

PDF/ePub

View PDF/ePub

Full Text

View Full Text