Journal of Energy Management and Technology

Journal of Energy Management and Technology

Locating of The Jacket Type Offshore Wind Turbine with Tuned Liquid ‎Column Gas Damper for Iranian Shores

Document Type : Original Article

Authors
1 Faculty of New Sciences and Technologies, University of Tehran, Tehran, 1961733114, Iran
2 Faculty of New Sciences and Technologies, University of Tehran
Abstract
Regarding the high wind potential in the Iranian shores, the best ‎place for installing wind turbines ‎is a location away from the beach.In this research, a sample of an offshore wind turbine with a jacketed ‎type foundation equipped with a damper was considered. It is ‎necessary to use a damper system to reduce wind and wave ‎vibrations and ‎lower damage. In this regard, the Tuned Liquid Column ‎Gas Damper (TLCGD) system which is ‎one of the most effective ‎dampers were used. The best places to install this item in the three shores of Iran were ‎examined by considering the data of 26 oceanographic stations. The equations of hydrodynamic and ‎aerodynamic forces acting on ‎this five degrees of freedom sample were ‎obtained, and expanded in MATLAB with the effects of 10,000 wave and wind data of ‎selected points. Equatin was ‎solved by the ode45 ‎function. The main objective of this study is to find suitable locations ‎‎with minimum fluid movement in TLCGD (cm) and the highest power ‎generation capacity ‎‎(W).‎ Then, the range of each area was located using the average results of ‎each point and ArcGIS software. Using the theory of Multi Objective Optimization, the optimum points was extracted.‎ The results ‎showed that for the Caspian Sea, Point (‎37.0 N‎, 53.2 E‎) ‎and the surrounding areas in the east and Point (‎38.0 N‎, ‎49.4 E‎) and ‎‎26 in the northwest were suitable for installing turbines.
Keywords

Subjects


[1] A. Østergaard, N. Duic, Y. Noorollahi, and S. A. Kalogirou, "Recent advances in renewable energy technology for the energy transition," vol. 179, ed: Elsevier, 2021, pp. 877-884.
[2] A. Østergaard, N. Duic, Y. Noorollahi, and S. Kalogirou, "Renewable energy for sustainable development," ed: Elsevier, 2022.
[3] Wu et al., "Foundations of offshore wind turbines: A review," Renewable and Sustainable Energy Reviews, vol. 104, pp. 379-393, 2019.
[4] Kumar et al., "Wind energy: Trends and enabling technologies," Renewable and Sustainable Energy Reviews, vol. 53, pp. 209-224, 2016.
[5] W. E. Council, "Global offshore wind report 2020," GWEC: Brussels, Belgium, vol. 19, pp. 10-12, 2020.
[6] Luengo, V. Negro, J. García-Barba, J.-S. López-Gutiérrez, and M. D. Esteban, "New detected uncertainties in the design of foundations for offshore wind turbines," Renewable Energy, vol. 131, pp. 667-677, 2019.
[7] J. Dvorak, C. L. Archer, and M. Z. Jacobson, "California offshore wind energy potential," Renewable energy, vol. 35, no. 6, pp. 1244-1254, 2010.
[8] Luo, L. Pacheco, Y. Vidal Seguí, and H. Li, "Smart structural control strategies for offshore wind power generation with floating wind turbines," in Renewable energies & power quality journal (RE&PQJ), no. 10, 25th April 2012, 2012.
[9] Malliotakis, P. Alevras, and C. Baniotopoulos, "Recent advances in vibration control methods for wind turbine towers," Energies, vol. 14, no. 22, p. 7536, 2021.
[10] Nazokkar and R. Dezvareh, "Vibration control of floating offshore wind turbine using semi-active liquid column gas damper," Ocean Engineering, vol. 265, p. 112574, 2022.
[11] Peng, S. Li, L. Shangguan, Y. Fan, and H. Zhang, "Analysis of wind turbine equipment failure and intelligent operation and maintenance research," Sustainability, vol. 15, no. 10, p. 8333, 2023.
[12] Colwell and B. Basu, "Tuned liquid column dampers in offshore wind turbines for structural control," Engineering Structures, vol. 31, no. 2, pp. 358-368, 2009.
[13] L. Jin-Yang, Z. Songye, J. Zhang, M. Ruisheng, and Z. Haoran, "Vibration control of offshore wind turbines with a novel energy-adaptive self-powered active mass damper," Engineering Structures, 302, p. 117450, 2024.
[14] Awada, R. Younes, and A. Ilinca, "Review of vibration control methods for wind turbines," Energies, vol. 14, no. 11, p. 3058, 2021.
[15] Sandal and V. Zania, "Optimization of pile design for offshore wind turbine jacket foundations," OPTIMIZATION, vol. 1000, p. 3, 2016.
[16] R. Dezvareh, K. Bargi, and S. A. Mousavi, "Control of wind/wave-induced vibrations of jacket-type offshore wind turbines through tuned liquid column gas dampers," Structure and Infrastructure Engineering, 12, no. 3, pp. 312-326, 2016.
[17] Konar and A. Ghosh, "A review on various configurations of the passive tuned liquid damper," Journal of Vibration and Control, vol. 29, no. 9-10, pp. 1945-1980, 2023.
[18] Ahmad and S. Ahmad, "Active control of non-linearly coupled TLP response under wind and wave environments," Computers & structures, vol. 72, no. 6, pp. 735-747, 1999.
[19] A. Lackner and M. A. Rotea, "Passive structural control of offshore wind turbines," Wind energy, vol. 14, no. 3, pp. 373-388, 2011.
[20] A. Lackner and M. A. Rotea, "Structural control of floating wind turbines," Mechatronics, vol. 21, no. 4, pp. 704-719, 2011.
[21] L. Brodersen, A. S. Bjørke, and J. Høgsberg, "Active tuned mass damper for damping of offshore wind turbine vibrations," Wind Energy, vol. 20, no. 5, pp. 783-796, 2017.
[22] Wang, B. Li, X. Zhou, D. Zhu, and X. Huang, "Effectiveness of installing multiple tuned mass dampers for seismic mitigation of steel–concrete wind turbine hybrid tower," in Structures, 2024, vol. 60: Elsevier, p. 105838.
[23] V. Dinh and B. Basu, "Passive control of floating offshore wind turbine nacelle and spar vibrations by multiple tuned mass dampers," Structural Control and Health Monitoring, vol. 22, no. 1, pp. 152-176, 2015.
[24] Zhao, H. Gao, Z. Wang, and Z. Lu, "Shaking table test on vibration control effects of a monopile offshore wind turbine with a tuned mass damper," Wind energy, vol. 21, no. 12, pp. 1309-1328, 2018.
[25] Zhang, X. Liang, L. Wang, B. Wang, and L. Wang, "The influence of tuned mass dampers on vibration control of monopile offshore wind turbines under wind-wave loadings," Ocean Engineering, vol. 278, p. 114394, 2023.
[26] Zhang et al., "Experimental study on mitigating vibration of floating offshore wind turbine using tuned mass damper," Ocean Engineering, vol. 288, p. 115974, 2023.
[27] Jin, X. Li, N. Sun, J. Zhou, and J. Guan, "Experimental and numerical study on tuned liquid dampers for controlling earthquake response of jacket offshore platform," Marine Structures, vol. 20, no. 4, pp. 238-254, 2007.
[28] J. Hochrainer and F. Ziegler, "Control of tall building vibrations by sealed tuned liquid column dampers," Structural Control and Health Monitoring: The Official Journal of the International Association for Structural Control and Monitoring and of the European Association for the Control of Structures, vol. 13, no. 6, pp. 980-1002, 2006.
[29] A. Mousavi, S. M. Zahrai, and K. Bargi, "Optimum geometry of tuned liquid column-gas damper for control of offshore jacket platform vibrations under seismic excitation," Earthquake Engineering and Engineering Vibration, vol. 11, no. 4, pp. 579-592, 2012.
[30] A. Mousavi, K. Bargi, and S. M. Zahrai, "Optimum parameters of tuned liquid column–gas damper for mitigation of seismic‐induced vibrations of offshore jacket platforms," Structural Control and Health Monitoring, vol. 20, no. 3, pp. 422-444, 2013.
[31] Coudurier, O. Lepreux, and N. Petit, "Modelling of a tuned liquid multi-column damper. Application to floating wind turbine for improved robustness against wave incidence," Ocean Engineering, vol. 165, pp. 277-292, 2018.
[32] Balendra, C. Wang, and H. Cheong, "Effectiveness of tuned liquid column dampers for vibration control of towers," Engineering Structures, vol. 17, no. 9, pp. 668-675, 1995.
[33] Gao, K. Kwok, and B. Samali, "Optimization of tuned liquid column dampers," Engineering structures, vol. 19, no. 6, pp. 476-486, 1997.
[34] K. Vandiver and S. Mitome, "The effect of liquid storage tanks on the dynamic response of offshore platforms," Journal of Petroleum Technology, vol. 31, no. 10, pp. 1231-1240, 1979.
[35] Yamamoto and M. Kawahara, "Structural oscillation control using tuned liquid damper," Computers & structures, vol. 71, no. 4, pp. 435-446, 1999.
[36] S. Yalla and A. Kareem, "Optimum absorber parameters for tuned liquid column dampers," Journal of Structural Engineering, vol. 126, no. 8, pp. 906-915, 2000.
[37] Bargi, R. Dezvareh, and S. A. Mousavi, "Contribution of tuned liquid column gas dampers to the performance of offshore wind turbines under wind, wave, and seismic excitations," Earthquake Engineering and Engineering Vibration, vol. 15, no. 3, pp. 551-561, 2016.
[38] Sathish and A. Sajith, "Study of Offshore Jacket Platform Attached With Tuned Liquid Column Gas Damper," in International Conference on Offshore Mechanics and Arctic Engineering, 2017, vol. 57632: American Society of Mechanical Engineers, p. V001T01A067.
[39] H. Jahangir, S. A. Mousavi, and M. A. V. Rad, "A techno-economic comparison of a photovoltaic/thermal organic Rankine cycle with several renewable hybrid systems for a residential area in Rayen, Iran," Energy Conversion and Management, vol. 195, pp. 244-261, 2019.
[40] A. Lotfollahi-Yaghin, H. Ahmadi, and H. Tafakhor, "Seismic responses of an offshore jacket-type platform incorporated with tuned liquid dampers," Advances in Structural Engineering, vol. 19, no. 2, pp. 227-238, 2016.
[41] Ziegler, "Special design of tuned liquid column-gas dampers for the control of spatial structural vibrations," Acta Mechanica, vol. 201, no. 1-4, pp. 249-267, 2008.
[42] K. Kwon, A. Kareem, and K. Butler, "Gust-front loading effects on wind turbine tower systems," Journal of wind engineering and industrial aerodynamics, vol. 104, pp. 109-115, 2012.
[43] Sathish and A. Sajith, "Study of Offshore Jacket Platform Attached With Tuned Liquid Column Gas Damper," in ASME 2017 36th International Conference on Ocean, Offshore and Arctic Engineering, 2017: American Society of Mechanical Engineers Digital Collection.
[44] O. Hansen, "Aerodynamics of wind turbines. Earthscan," James & James, vol. 8, no. 9, p. 14, 2008.
[45] J. Laya, J. J. Connor, and S. S. Sunder, "Hydrodynamic forces on flexible offshore structures," Journal of engineering mechanics, vol. 110, no. 3, pp. 433-448, 1984.
[46] Amirinia, B. Kamranzad, and S. Mafi, "Wind and wave energy potential in southern Caspian Sea using uncertainty analysis," Energy, vol. 120, pp. 332-345, 2017.
[47] F. Manwell, J. G. McGowan, and A. L. Rogers, Wind energy explained: theory, design and application. John Wiley & Sons, 2010.
[48] Yan, Y. Yang, M. Bashir, C. Li, and J. Wang, "Dynamic analysis of 10 MW offshore wind turbines with different support structures subjected to earthquake loadings," Renewable Energy, vol. 193, pp. 758-777, 2022.
[49] Meng, Y.-p. He, Y.-d. Liu, Y.-s. Zhao, and L. Yu, "Numerical study on influence of turbulent and steady winds on coupled dynamic response of 6-MW Spar-type FOWT," in ISOPE International Ocean and Polar Engineering Conference, 2018: ISOPE, pp. ISOPE-I-18-025.
[50] Meng, T. Zhou, Y.-p. He, Y.-s. Zhao, and Y.-d. Liu, "Concept design and coupled dynamic response analysis on 6-MW Spar-type floating offshore wind turbine," China Ocean Engineering, vol. 31, pp. 567-577, 2017.
[51] Meng et al., "Dynamic response of 6MW spar type floating offshore wind turbine by experiment and numerical analyses," China Ocean Engineering, vol. 34, no. 5, pp. 608-620, 2020.
[52] -H. Ju, Y.-C. Huang, and Y.-Y. Huang, "Study of optimal large-scale offshore wind turbines," Renewable Energy, vol. 154, pp. 161-174, 2020.
[53] Zheng, J. Chen, H. Liang, Y. Zhao, and Y. Shao, "Hydrodynamic responses of a 6 MW spar-type floating offshore wind turbine in regular waves and uniform current," Fluids, vol. 5, no. 4, p. 187, 2020.
[54] J. Choi, S. H. Nam, J. H. Jeong, and K. C. Kim, "CFD study on aerodynamic power output changes with inter-turbine spacing variation for a 6 mw offshore wind farm," Energies, vol. 7, no. 11, pp. 7483-7498, 2014.
[55] Żywicki, P. Dymarski, E. Ciba, and C. Dymarski, "Design of structure of Tension Leg Platform for 6 MW offshore wind turbine based on FEM analysis," Polish Maritime Research, pp. 230-241, 2017.
[56] Chen and M.-H. Kim, "Review of recent offshore wind turbine research and optimization methodologies in their design," Journal of Marine Science and Engineering, vol. 10, no. 1, p. 28, 2022.
[57] Köller, J. Köppel, and W. Peters, Offshore wind energy: research on environmental impacts. Springer Science & Business Media, 2006.
[58] Hochrainer and P. Fotiu, "Design of coupled tuned liquid column gas dampers for multi-mode reduction in vibrating structures," Acta Mechanica, vol. 229, no. 2, pp. 911-928, 2018.
[59] Petrini, H. Li, and F. Bontempi, "Basis of design and numerical modeling of offshore wind turbines," Structural engineering & mechanics, vol. 36, no. 5, p. 599, 2010.
[60] Hokmabady, S. Mohammadyzadeh, and A. Mojtahedi, "Suppressing structural vibration of a jacket-type platform employing a novel Magneto-Rheological Tuned Liquid Column Gas Damper (MR-TLCGD)," Ocean Engineering, vol. 180, pp. 60-70, 2019.
[61] P. Corten and H. F. Veldkamp, "Insects can halve wind-turbine power," Nature, vol. 412, no. 6842, pp. 41-42, 2001.
[62] Kamranzad, "Persian Gulf zone classification based on the wind and wave climate variability," Ocean Engineering, vol. 169, pp. 604-635, 2018.
[63] Amirinia, S. Mafi, and S. Mazaheri, "Offshore wind resource assessment of Persian Gulf using uncertainty analysis and GIS," Renewable Energy, vol. 113, pp. 915-929, 2017.
[64] Kamranzad, A. Etemad-Shahidi, and V. Chegini, "Assessment of wave energy variation in the Persian Gulf," Ocean Engineering, vol. 70, pp. 72-80, 2013.
[65] Saket and A. Etemad-Shahidi, "Wave energy potential along the northern coasts of the Gulf of Oman, Iran," Renewable Energy, vol. 40, no. 1, pp. 90-97, 2012.
[66]   M. Rahime, M. Gholamalifard, and A. R. E. Hesari, "Modelling the temporal and spatial wind energy trend in the Caspian Sea," 2020.
Volume 8, Issue 4
Autumn 2024
Pages 369-380

Supplementary File

  • Receive Date 07 January 2024
  • Revise Date 16 September 2024
  • Accept Date 18 September 2024