Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Wu, Xiawei
Hu, Weihao
Huang, Qi
Chen, Cong
Chen, Zhe
and
Blaabjerg, Frede
2019.
Optimized Placement of Onshore Wind Farms Considering Topography.
Energies,
Vol. 12,
Issue. 15,
p.
2944.
Quon, Eliot W.
Doubrawa, Paula
Annoni, Jennifer
Hamilton, Nicholas
and
Churchfield, Matthew J.
2019.
Validation of Wind Power Plant Modeling Approaches in Complex Terrain.
Qian, Guo-Wei
and
Ishihara, Takeshi
2019.
Numerical study of wind turbine wakes over escarpments by a modified delayed detached eddy simulation.
Journal of Wind Engineering and Industrial Aerodynamics,
Vol. 191,
Issue. ,
p.
41.
Tabas, Daniel
Fang, Jiannong
and
Porté-Agel, Fernando
2019.
Wind Energy Prediction in Highly Complex Terrain by Computational Fluid Dynamics.
Energies,
Vol. 12,
Issue. 7,
p.
1311.
Porté-Agel, Fernando
Bastankhah, Majid
and
Shamsoddin, Sina
2020.
Wind-Turbine and Wind-Farm Flows: A Review.
Boundary-Layer Meteorology,
Vol. 174,
Issue. 1,
p.
1.
Brogna, Roberto
Feng, Ju
Sørensen, Jens Nørkær
Shen, Wen Zhong
and
Porté-Agel, Fernando
2020.
A new wake model and comparison of eight algorithms for layout optimization of wind farms in complex terrain.
Applied Energy,
Vol. 259,
Issue. ,
p.
114189.
Ge, Mingwei
Zhang, Shuaibin
Meng, Hang
and
Ma, Hongliang
2020.
Study on interaction between the wind-turbine wake and the urban district model by large eddy simulation.
Renewable Energy,
Vol. 157,
Issue. ,
p.
941.
Liu, Luoqin
and
Stevens, Richard J. A. M.
2020.
Effects of Two-Dimensional Steep Hills on the Performance of Wind Turbines and Wind Farms.
Boundary-Layer Meteorology,
Vol. 176,
Issue. 2,
p.
251.
Witha, Björn
2021.
Handbook of Wind Energy Aerodynamics.
p.
1.
Liu, Zhenqing
Lu, Shengyu
and
Ishihara, Takeshi
2021.
Large eddy simulations of wind turbine wakes in typical complex topographies.
Wind Energy,
Vol. 24,
Issue. 8,
p.
857.
Liu, Luoqin
and
Stevens, Richard J. A. M.
2021.
Enhanced wind-farm performance using windbreaks.
Physical Review Fluids,
Vol. 6,
Issue. 7,
Tian, Wei
Zheng, Kuan
and
Hu, Hui
2021.
Investigation of the wake propagation behind wind turbines over hilly terrain with different slope gradients.
Journal of Wind Engineering and Industrial Aerodynamics,
Vol. 215,
Issue. ,
p.
104683.
Cai, Tengfei
Cheng, Shyuan
Segalini, Antonio
and
Chamorro, Leonardo P.
2021.
Local topography‐induced pressure gradient effects on the wake and power output of a model wind turbine.
Theoretical and Applied Mechanics Letters,
Vol. 11,
Issue. 5,
p.
100297.
Liu, Luoqin
and
Stevens, Richard J.A.M.
2021.
Effects of atmospheric stability on the performance of a wind turbine located behind a three-dimensional hill.
Renewable Energy,
Vol. 175,
Issue. ,
p.
926.
Revaz, Tristan
and
Porté-Agel, Fernando
2021.
Large-Eddy Simulation of Wind Turbine Flows: A New Evaluation of Actuator Disk Models.
Energies,
Vol. 14,
Issue. 13,
p.
3745.
Dar, Arslan Salim
and
Porté-Agel, Fernando
2022.
An Analytical Model for Wind Turbine Wakes under Pressure Gradient.
Energies,
Vol. 15,
Issue. 15,
p.
5345.
Dar, Arslan Salim
and
Porté-Agel, Fernando
2022.
Wind turbine wakes on escarpments: A wind-tunnel study.
Renewable Energy,
Vol. 181,
Issue. ,
p.
1258.
Witha, Björn
2022.
Handbook of Wind Energy Aerodynamics.
p.
1001.
Li, Li
Huang, Zhi
Ge, Mingwei
and
Zhang, Qiying
2022.
A novel three-dimensional analytical model of the added streamwise turbulence intensity for wind-turbine wakes.
Energy,
Vol. 238,
Issue. ,
p.
121806.
Wang, Qiang
Luo, Kun
Wu, Chunlei
Zhu, Zhaofan
and
Fan, Jianren
2022.
Mesoscale simulations of a real onshore wind power base in complex terrain: Wind farm wake behavior and power production.
Energy,
Vol. 241,
Issue. ,
p.
122873.