Accelerating deployment of offshore wind energy alter wind climate and reduce future power generation potentials

被引:74
作者
Akhtar, Naveed [1 ]
Geyer, Beate [1 ]
Rockel, Burkhardt [1 ]
Sommer, Philipp S. [1 ]
Schrum, Corinna [1 ]
机构
[1] Helmholtz Zentrum Hereon, Inst Coastal Syst Anal & Modeling, Geesthacht, Germany
关键词
TURBINE WAKES; ENVIRONMENTAL-IMPACT; FARMS; MODEL; PERFORMANCE;
D O I
10.1038/s41598-021-91283-3
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The European Union has set ambitious CO2 reduction targets, stimulating renewable energy production and accelerating deployment of offshore wind energy in northern European waters, mainly the North Sea. With increasing size and clustering, offshore wind farms (OWFs) wake effects, which alter wind conditions and decrease the power generation efficiency of wind farms downwind become more important. We use a high-resolution regional climate model with implemented wind farm parameterizations to explore offshore wind energy production limits in the North Sea. We simulate near future wind farm scenarios considering existing and planned OWFs in the North Sea and assess power generation losses and wind variations due to wind farm wake. The annual mean wind speed deficit within a wind farm can reach 2-2.5 ms(-1) depending on the wind farm geometry. The mean deficit, which decreases with distance, can extend 35-40 km downwind during prevailing southwesterly winds. Wind speed deficits are highest during spring (mainly March-April) and lowest during November-December. The large-size of wind farms and their proximity affect not only the performance of its downwind turbines but also that of neighboring downwind farms, reducing the capacity factor by 20% or more, which increases energy production costs and economic losses. We conclude that wind energy can be a limited resource in the North Sea. The limits and potentials for optimization need to be considered in climate mitigation strategies and cross-national optimization of offshore energy production plans are inevitable.
引用
收藏
页数:12
相关论文
共 56 条
[1]   Influence of atmospheric stability on wind-turbine wakes: A large-eddy simulation study [J].
Abkar, Mahdi ;
Porte-Agel, Fernando .
PHYSICS OF FLUIDS, 2015, 27 (03)
[2]   Large eddy simulation of wind turbine wake dynamics in the stable boundary layer using the Weather Research and Forecasting Model [J].
Aitken, Matthew L. ;
Kosovic, Branko ;
Mirocha, Jeffrey D. ;
Lundquist, Julie K. .
JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2014, 6 (03)
[3]  
Akhtar N., 2020, Wind farm parametrization in cosmo5.0_clm15, DOI [10.35089/WDCC/WindFarmPCOSMO5.0clm15, DOI 10.35089/WDCC/WINDFARMPCOSMO5.0CLM15]
[4]  
Akhtar N., 2020, COASTDAT 3 COSMO CLM
[5]  
Akhtar N, 2020, COASTDAT 3 COSMO CLM
[6]   Optimum turbine-site matching [J].
Albadi, M. H. ;
El-Saadany, E. F. .
ENERGY, 2010, 35 (09) :3593-3602
[7]  
Allaerts D., 2016, Large-eddy Simulation of Wind Farms in Conventionally Neutral and Stable Atmospheric Boundary Layers
[8]  
[Anonymous], 2020, Offshore Wind in Europe-Key Trends and Statistics 2019
[9]  
Badger J, 2020, Metashape python reference, P1
[10]  
Barfuss Konrad, 2019, PANGAEA, DOI 10.1594/PANGAEA.902845