Changing the rotational direction of a wind turbine under veering inflow: a parameter study
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Published:2020-11-23
Issue:4
Volume:5
Page:1623-1644
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ISSN:2366-7451
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Container-title:Wind Energy Science
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language:en
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Short-container-title:Wind Energ. Sci.
Author:
Englberger Antonia, Lundquist Julie K.ORCID, Dörnbrack AndreasORCID
Abstract
Abstract. All current-day wind-turbine blades rotate in clockwise direction as seen from an upstream perspective. The choice of the rotational direction
impacts the wake if the wind profile changes direction with height. Here, we investigate the respective wakes for veering and backing winds in both
hemispheres by means of large-eddy simulations. We quantify the sensitivity of the wake to the strength of the wind veer, the wind speed, and the
rotational frequency of the rotor in the Northern Hemisphere. A veering wind in combination with counterclockwise-rotating blades results in a
larger streamwise velocity output, a larger spanwise wake width, and a larger wake deflection angle at the same downwind distance in comparison to a
clockwise-rotating turbine in the Northern Hemisphere. In the Southern Hemisphere, the same wake characteristics occur if the turbine rotates
counterclockwise. These downwind differences in the wake result from the amplification or weakening or reversion of the spanwise wind component due to
the effect of the superimposed vortex of the rotor rotation on the inflow's shear. An increase in the directional shear or the rotational frequency
of the rotor under veering wind conditions increases the difference in the spanwise wake width and the wake deflection angle between clockwise- and
counterclockwise-rotating actuators, whereas the wind speed lacks a significant impact.
Publisher
Copernicus GmbH
Subject
Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment
Reference38 articles.
1. Abkar, M. and Porté-Agel, F.:
Influence of the Coriolis force on the structure and evolution of wind turbine wakes,
Physical Review Fluids, 1, 063701, https://doi.org/10.1103/PhysRevFluids.1.063701, 2016. a 2. Abkar, M., Sharifi, A., and Porté-Agel, F.:
Wake flow in a wind farm during a diurnal cycle,
J. Turbul.,
17, 420–441, https://doi.org/10.1080/14685248.2015.1127379, 2016. a 3. Bak, C., Zahle, F., Bitsche, R., Kim, T., Yde, A., Henriksen, L. C., Hansen, M. H., Blasques, J. P. A. A., Gaunaa, M., and Natarajan, A.:
The DTU 10-MW reference wind turbine,
in: Danish Wind Power Research 2013, DTU
Trinity, Fredericia, Denmark from 27 May 2013–28 May 2013. a 4. Bhaganagar, K. and Debnath, M.:
Implications of Stably Stratified Atmospheric Boundary Layer Turbulence on the Near-Wake Structure of Wind Turbines,
Energies,
7, 5740–5763, https://doi.org/10.3390/en7095740, 2014. a 5. Bodini, N., Zardi, D., and Lundquist, J. K.: Three-dimensional structure of wind turbine wakes as measured by scanning lidar, Atmos. Meas. Tech., 10, 2881–2896, https://doi.org/10.5194/amt-10-2881-2017, 2017. a
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