Hydrodynamic load modeling and analysis of a floating bridge in homogeneous wave conditions Z Cheng, Z Gao, T Moan Marine Structures 59, 122-141, 2018 | 94 | 2018 |
Wave load effect analysis of a floating bridge in a fjord considering inhomogeneous wave conditions Z Cheng, Z Gao, T Moan Engineering Structures 163, 197-214, 2018 | 88 | 2018 |
A fully coupled method for numerical modeling and dynamic analysis of floating vertical axis wind turbines Z Cheng, HA Madsen, Z Gao, T Moan Renewable Energy 107, 604–619, 2017 | 88 | 2017 |
A comparison of extreme structural responses and fatigue damage of semi-submersible type floating horizontal and vertical axis wind turbines Z Cheng, HA Madsen, W Chai, Z Gao, T Moan Renewable Energy 108, 207-219, 2017 | 85 | 2017 |
Effect of the number of blades on the dynamics of floating straight-bladed vertical axis wind turbines Z Cheng, HA Madsen, Z Gao, T Moan Renewable Energy 101, 1285-1298, 2017 | 84 | 2017 |
Power performance and dynamic responses of a combined floating vertical axis wind turbine and wave energy converter concept Z Cheng, TR Wen, MC Ong, K Wang Energy 171, 190-204, 2019 | 79 | 2019 |
Stability and dynamic response analysis of a submerged tension leg platform for offshore wind turbines Y Han, C Le, H Ding, Z Cheng, P Zhang Ocean Engineering 129, 68-82, 2017 | 72 | 2017 |
Operational and extreme responses of a new concept of 10MW semi-submersible wind turbine in intermediate water depth: An experimental study Q Cao, L Xiao, Z Cheng, M Liu, B Wen Ocean Engineering 217, 108003, 2020 | 57 | 2020 |
An integrated dynamic analysis method for simulating installation of single blades for wind turbines Y Zhao, Z Cheng, PC Sandvik, Z Gao, T Moan Ocean Engineering 152, 72-88, 2018 | 54 | 2018 |
Short-term extreme response and fatigue damage of an integrated offshore renewable energy system L Li, Z Cheng, Z Yuan, Y Gao Renewable Energy 126, 617–629, 2018 | 50 | 2018 |
Dynamic responses of a 10 MW semi-submersible wind turbine at an intermediate water depth: A comprehensive numerical and experimental comparison Q Cao, L Xiao, Z Cheng, M Liu Ocean Engineering 232, 109138, 2021 | 49 | 2021 |
Numerical modeling and dynamic analysis of a floating bridge subjected to wind, wave and current loads Z Cheng, Z Gao, T Moan Journal of Offshore Mechanics and Arctic Engineering 141 (1), 011601, 2019 | 47 | 2019 |
Dynamic response analysis of three floating wind turbine concepts with a two-bladed darrieus rotor Z Cheng, K Wang, Z Gao, T Moan Journal of Ocean and Wind Energy 2 (4), 213-222, 2015 | 46 | 2015 |
A comparative study on dynamic responses of spar‐type floating horizontal and vertical axis wind turbines Z Cheng, K Wang, Z Gao, T Moan Wind Energy 20 (2), 305-323, 2017 | 45 | 2017 |
Aerodynamic modeling of floating vertical axis wind turbines using the actuator cylinder flow method Z Cheng, HA Madsen, Z Gao, T Moan Energy Procedia 94, 531-543, 2016 | 45 | 2016 |
Numerical modelling and dynamic response analysis of a 10 MW semi-submersible floating offshore wind turbine subjected to ship collision loads Z Yu, J Amdahl, M Rypestøl, Z Cheng Renewable Energy 184, 677-699, 2022 | 37 | 2022 |
Numerical study on the feasibility of offshore single blade installation by floating crane vessels Y Zhao, Z Cheng, Z Gao, PC Sandvik, T Moan Marine Structures 64, 442-462, 2019 | 37 | 2019 |
Power performance and dynamic responses of an integrated system with a semi-submersible wind turbine and four torus-shaped wave energy converters Y Li, MC Ong, K Wang, L Li, Z Cheng Ocean Engineering 259, 111810, 2022 | 36 | 2022 |
Field measurements of inhomogeneous wave conditions in Bjørnafjorden Z Cheng, E Svangstu, Z Gao, T Moan Journal of Waterway, Port, Coastal, and Ocean Engineering 145 (1), 05018008, 2019 | 35 | 2019 |
Numerical modeling and analysis of the dynamic motion response of an offshore wind turbine blade during installation by a jack-up crane vessel Y Zhao, Z Cheng, PC Sandvik, Z Gao, T Moan, E Van Buren Ocean Engineering 165, 353-364, 2018 | 35 | 2018 |