[1] ESTEBAN M D,DIEZ J J,LÓPEZ J S,et al. Why offshore wind energy?[J]. Renewable Energy,2011,36(2):444-450. [2] KALDELLIS J K,KAPSALI M,KATSANOU E. Renewable energy applications in Greece:What is the public attitude?[J]. Energy Policy,2012,42:37-48. [3] ZHANG D,CROSS P,MA X,et al. Improved control of individual blade pitch for wind turbines[J]. Sensors and Actuators A:Physical,2013,198:8-14. [4] NAMIK H,STOL K. Performance analysis of individual blade pitch control of offshore wind turbines on two floating platforms[J]. Mechatronics,2011,21(4):691-703. [5] CHEN Z J,STOL K,MACE B R. Wind turbine blade optimisation with individual pitch and trailing edge flap control[J]. Renewable Energy,2017,103:750-765. [6] LACKNER M A,ROTEA M A. Passive structural control of offshore wind turbines[J]. Wind Energy,2011,14(3):373-388. [7] STEWART G M,LACKNER M A. The impact of passive tuned mass dampers and wind-wave misalignment on offshore wind turbine loads[J]. Engineering Structures,2014,73:54-61. [8] STEWART G M,LACKNER M A. Offshore wind turbine load reduction employing optimal passive tuned mass damping systems[J]. IEEE Transactions on Control Systems Technology,2013,21(4):1090-1104. [9] JIN X,XIE S,HE J,et al. Optimization of tuned mass damper parameters for floating wind turbines by using the artificial fish swarm algorithm[J]. Ocean Engineering,2018,167:130-141. [10] HE J,JIN X,XIE S,et al. Multi-body dynamics modeling and TMD optimization based on the improved AFSA for floating wind turbines[J]. Renewable Energy,2019,141:305-321. [11] SI Y,KARIMI H,GAO H. Modelling and optimization of a passive structural control design for a spar-type floating wind turbine[J]. Engineering Structures,2014,69:168-182. [12] HU Y,CHEN M,LI C. Active structural control for load mitigation of wind turbines via adaptive sliding-mode approach[J]. Journal of the Franklin Institute,2017,354(11):4311-4330. [13] ADRIAN G,YUL Y N. Collective pitch control with active tower damping of a wind turbine by using a nonlinear PID approach[J]. IFAC-PapersOnLine,2018,51(4):238-243. [14] 贺尓铭,熊波,杨佳佳.基于TMD-HMD的海上浮式风力机主被动综合振动控制[J].机械工程学报,2020,56(3):73-79. HE Erming,XIONG Bo,YANG Jiajia. Study on active-passive integrated vibration control of offshore floating wind turbine based on TMD-HMD[J]. Journal of Mechanical Engineering,2020,56(3):73-79. [15] HU Y,HE E,ZHANG Y. Optimization design of TMD for vibration suppression of offshore floating wind turbine[J]. International Journal of Plant Engineering and Management,2015,1(20):13-27. [16] 贺尔铭,张扬,胡亚琪. 3种典型海上浮动式风机动力学特性比较分析[J].太阳能学报,2015,36(12):2874-2881. HE Erming,ZHANG Yang,HU Yaqi. Comparison and analysis of dynamic characteristics of three typical floating wind turbines[J]. ActaEnergiae Solaris Sinica,2015,36(12):2874-2881. [17] 杨佳佳,贺尔铭,胡亚琪.浮动平台内TMD对Barge式海上浮动风机的振动抑制研究[J].西北工业大学学报,2018,36(2):238-245. YANG Jiajia,HE Erming,HU Yaqi. Vibration mitigation of the Barge-type offshore wind turbine with a tuned mass damper on floating platform[J]. Journal of Northwestern Polytechnical University,2018,36(2):238-245. [18] HU Y Q,HE E M. Active structural control of a floating wind turbine with a stroke-limited hybrid mass damper[J]. Journal of Sound and Vibration,2017,410:447-472. [19] YANG J,HE E M,HU Y Q. Dynamic modeling and vibration suppression for an offshore wind turbine with a tuned mass damper in floating platform[J]. Applied Ocean Research,2019,83:21-29. [20] YANG J J,HE E M. Coupled modeling and structural vibration control for floating offshore wind turbine[J]. Renewable Energy,2020,157:678-694. [21] SI Y,KARIMI H R. Gain scheduling H2/H∞ structural control of a floating wind turbine[J]. IFAC Proceedings Volumes,2014,47(3):6788-6793. |