Pitch motion reduction of semisubmersible floating offshore wind turbine substructure using a tuned liquid multicolumn damper
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P. Lin | Mi-An Xue | Jinhai Zheng | Xiaoli Yuan | Peng Dou
[1] Mi-An Xue,et al. A review on liquid sloshing hydrodynamics , 2021, Journal of Hydrodynamics.
[2] K. Sun,et al. Aerodynamic performance of semi-submersible floating wind turbine under pitch motion , 2021, Sustainable Energy Technologies and Assessments.
[3] Zhike Peng,et al. On the aerodynamic loading effect of a model Spar-type floating wind turbine: An experimental study , 2021, Renewable Energy.
[4] Cunming Ma,et al. Experimental research on the aerodynamic responses of a long-span pipeline suspension bridge , 2021 .
[5] P. Lin,et al. Sloshing dynamics in cylindrical tank with porous layer under harmonic and seismic excitations , 2021 .
[6] Lars Johanning,et al. Experimental and numerical analysis on the mooring tensions of the coupled tunnel-barge system in waves , 2021 .
[7] Le Quang Sang,et al. Wind tunnel and numerical study of a floating offshore wind turbine based on the cyclic pitch control , 2021, Renewable Energy.
[8] Mi-An Xue,et al. Numerical study of porous material layer effects on mitigating sloshing in a membrane LNG tank , 2020 .
[9] Hong-Zhong Huang,et al. Reliability analysis of a floating offshore wind turbine using Bayesian Networks , 2020 .
[10] Yaoyu Li,et al. Platform Stabilization of Floating Offshore Wind Turbines by Artificial Muscle Based Active Mooring Line Force Control , 2020, IEEE/ASME Transactions on Mechatronics.
[11] Liang Cao,et al. Development and validation of a nonlinear dynamic model for tuned liquid multiple columns dampers , 2020 .
[12] P. Cheng,et al. Verification of a Passive Tuned Liquid Multi-Column Damper for Floating Wind Turbine , 2020 .
[13] Mohammad Eghtesad,et al. Semi-active vibration control of a semi-submersible offshore wind turbine using a tuned liquid multi-column damper , 2020, Journal of Ocean Engineering and Marine Energy.
[14] Xin Jin,et al. Applying multiple tuned mass dampers to control structural loads of bottom-fixed offshore wind turbines with inclusion of soil-structure interaction , 2020, Ocean Engineering.
[15] Matthew A. Lackner,et al. Multi-objective optimization of orthogonal TLCDs for reducing fatigue and extreme loads of a floating offshore wind turbine , 2020 .
[16] Lin Chen,et al. Multi-resolution wavelet pitch controller for spar-type floating offshore wind turbines including wave-current interactions , 2020 .
[17] Mi-An Xue,et al. Numerical and experimental study of tuned liquid damper effects on suppressing nonlinear vibration of elastic supporting structural platform , 2020 .
[18] Rodolfo T. Gonçalves,et al. Experimental Study on Flow-Induced Motions (FIM) of a Floating Offshore Wind Turbine Semi-Submersible Type (OC4 Phase II Floater) , 2019, ASME 2019 2nd International Offshore Wind Technical Conference.
[19] D. Wan,et al. LES Study of Wake Meandering in Different Atmospheric Stabilities and Its Effects on Wind Turbine Aerodynamics , 2019 .
[20] Carlos Soares,et al. OpenFOAM analysis of the wave radiation by a box-type floating structure , 2019 .
[21] Mi-An Xue,et al. Fluid dynamics analysis of sloshing pressure distribution in storage vessels of different shapes , 2019, Ocean Engineering.
[22] A. Mojtahedi,et al. Suppressing structural vibration of a jacket-type platform employing a novel Magneto-Rheological Tuned Liquid Column Gas Damper (MR-TLCGD) , 2019, Ocean Engineering.
[23] M. Tahani,et al. Wind shear effect on aerodynamic performance and energy production of horizontal axis wind turbines with developing blade element momentum theory , 2019, Journal of Cleaner Production.
[24] J. Ou,et al. Vibration Mitigation of Suspension Bridge Suspender Cables Using a Ring-Shaped Tuned Liquid Damper , 2019, Journal of Bridge Engineering.
[25] Nguyen Van Khang,et al. Optimal control of vibration by multiple tuned liquid dampers using Taguchi method , 2019, Journal of Mechanical Science and Technology.
[26] Gong-You Tang,et al. Networked predictive vibration control for offshore platforms with random time delays, packet dropouts and disordering , 2019, Journal of Sound and Vibration.
[27] Decheng Wan,et al. A numerical model for fully coupled aero-hydrodynamic analysis of floating offshore wind turbine , 2019, Ocean Engineering.
[28] C. S. Lee,et al. Nonlinear Series-Type Tuned Mass Damper-Tuned Sloshing Damper for Improved Structural Control , 2018, Journal of Vibration and Acoustics.
[29] Bing Yang,et al. Experimental study of a hybrid TMD and TLD on structure motion reduction , 2018, Ocean Engineering.
[30] N. Petit,et al. Modelling of a tuned liquid multi-column damper. Application to floating wind turbine for improved robustness against wave incidence , 2018, Ocean Engineering.
[31] Ahmet Can Altunişik,et al. Experimental study on control performance of tuned liquid column dampers considering different excitation directions , 2018 .
[32] Jinhai Zheng,et al. Experimental study on vertical baffles of different configurations in suppressing sloshing pressure , 2017 .
[33] Vikram Pakrashi,et al. Tuned Liquid Column Damper based Reduction of Dynamic Responses of Scaled Offshore Platforms in Different Ocean Wave Basins , 2017 .
[34] Hadi Malekghasemi,et al. Experimental investigations of tuned liquid damper-structure interactions in resonance considering multiple parameters , 2017 .
[35] Krista M. Kecskemety,et al. Benchmarking of a Free Vortex Wake Model for Prediction of Wake Interactions , 2017, Renewable Energy.
[36] Amir Reza Ghaemmaghami,et al. Numerical modeling of dynamic behavior of annular tuned liquid dampers for the application in wind towers under seismic loading , 2016 .
[37] Pengzhi Lin,et al. A two-phase flow model for wave–structure interaction using a virtual boundary force method , 2016 .
[38] Cheolung Cheong,et al. Pitch motion mitigation of spar-type floating substructure for offshore wind turbine using multilayer tuned liquid damper , 2016 .
[39] Diego Lopez-Garcia,et al. Modeling and experimental validation of a new type of tuned liquid damper , 2016, Acta Mechanica.
[40] Maurizio Collu,et al. Offshore floating vertical axis wind turbines, dynamics modelling state of the art. Part II: Mooring line and structural dynamics , 2014 .
[41] Matthew Lackner,et al. Offshore Wind Turbine Load Reduction Employing Optimal Passive Tuned Mass Damping Systems , 2013, IEEE Transactions on Control Systems Technology.
[42] Seyed Amin Mousavi,et al. Optimum geometry of tuned liquid column-gas damper for control of offshore jacket platform vibrations under seismic excitation , 2012, Earthquake Engineering and Engineering Vibration.
[43] Mohammad Ali Goudarzi,et al. Investigation of nonlinear sloshing effects in seismically excited tanks , 2012 .
[44] Mi-An Xue,et al. Numerical study of ring baffle effects on reducing violent liquid sloshing , 2011 .
[45] Odd M. Faltinsen,et al. Analytical modeling of liquid sloshing in a two-dimensional rectangular tank with a slat screen , 2011 .
[46] Mario A. Rotea,et al. Structural control of floating wind turbines , 2011 .
[47] Gong-You Tang,et al. Feedforward and feedback optimal control with memory for offshore platforms under irregular wave forces , 2009 .
[48] Michael Tait,et al. The performance of structure‐tuned liquid damper systems with different tank geometries , 2008 .
[49] Filippo Ubertini,et al. Active feedback control for cable vibrations , 2008 .
[50] Qiao Jin,et al. Experimental and numerical study on tuned liquid dampers for controlling earthquake response of jacket offshore platform , 2007 .
[51] Odd M. Faltinsen,et al. Resonant three-dimensional nonlinear sloshing in a square-base basin. Part 2. Effect of higher modes , 2005, Journal of Fluid Mechanics.
[52] Mohamed Abdel-Rohman,et al. Structural control of a steel jacket platform , 1996 .
[53] T. Guo,et al. A combined system of tuned immersion mass and sloshing liquid for vibration suppression: Optimization and characterization , 2018 .
[54] P. Troch,et al. Numerical simulation of an array of heaving floating point absorber wave energy converters using openfoam , 2017 .
[55] Javier L. Lara,et al. Three-dimensional interaction of waves and porous coastal structures using OpenFOAM®. Part I: Formulation and validation , 2014 .
[56] Javier L. Lara,et al. Three-dimensional interaction of waves and porous coastal structures using OpenFOAM®. Part II: Application , 2014 .
[57] Bijan Samali,et al. Experimental investigation of utilizing TLD with baffles in a scaled down 5-story benchmark building , 2012 .
[58] R. S. Jangid,et al. ACTIVE CONTROL OF OFFSHORE JACKET PLATFORMS , 2003 .
[59] van Gjw Gerard Bussel,et al. The use of the asymptotic accelertion potential method for horizontal axis windturbine rotor aerodynamics , 1992 .