1 |
Numerical simulations of the flow field and pollutant dispersion in an idealized urban area under different atmospheric stability conditions Guo DP, Zhao P, Wang R, Yao RT, Hu JM Process Safety and Environmental Protection, 136, 310, 2020 |
2 |
Numerical investigations into the idealized diurnal cycle of atmospheric boundary layer and its impact on wind turbine's power performance Tian LL, Song YL, Zhao N, Shen WZ, Wang TG, Zhu CL Renewable Energy, 145, 419, 2020 |
3 |
A new meso-microscale coupled modelling framework for wind resource assessment: A validation study Duran P, Meissner C, Casso P Renewable Energy, 160, 538, 2020 |
4 |
A new analytical model for wind turbine wakes based on Monin-Obukhov similarity theory Cheng Y, Zhang MM, Zhang ZL, Xu JZ Applied Energy, 239, 96, 2019 |
5 |
Numerical simulation studies of the effect of atmospheric stratification on the dispersion of LNG vapor released from the top of a storage tank Guo DP, Zhao P, Wang R, Yao RT, Hu JM Journal of Loss Prevention in The Process Industries, 61, 275, 2019 |
6 |
Study of the energy production of a wind turbine in the open sea considering the continuous variations of the atmospheric stability and the sea surface roughness Bahamonde MI, Litran SP Renewable Energy, 135, 163, 2019 |
7 |
Surface turbulence intensity as a predictor of extrapolated wind resource to the turbine hub height: method's test at a mountain site Gualtieri G Renewable Energy, 120, 457, 2018 |
8 |
Atmospheric stability and topography effects on wind turbine performance and wake properties in complex terrain Han XX, Liu DY, Xu C, Shen WZ Renewable Energy, 126, 640, 2018 |
9 |
Improved near surface wind speed predictions using Gaussian process regression combined with numerical weather predictions and observed meteorological data Hoolohan V, Tomlin AS, Cockerill T Renewable Energy, 126, 1043, 2018 |
10 |
Extending the diabatic surface layer wind shear profile for offshore wind energy Holtslag MC, Bierbooms WAAM, van Bussel GJW Renewable Energy, 101, 96, 2017 |