Menken, Julia und Wildmann, Norman (2026) Impact of atmospheric stability and turbulence on wind turbine wake characteristics: a nacelle lidar study. Wind Energy Science (11), Seiten 2783-2800. Copernicus Publications. doi: 10.5194/wes-11-2783-2026. ISSN 2366-7443.
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Offizielle URL: https://doi.org/10.5194/wes-11-2783-2026
Kurzfassung
Wind turbine wakes reduce the generated power and increase loads on downstream turbines. Their characteristics depend strongly on the atmospheric conditions in the boundary layer. This study addresses the turbine–atmosphere interaction specifically in the near-wake region up to 4 rotor diameters downstream of a utility-scale wind turbine. We utilize an exceptionally large database of concurrent measurements of inflow conditions and wake characteristics collected from November 2023 to June 2024 at the WiValdi research wind farm in northern Germany. The dataset comprises measurements from a downstream-looking Doppler wind lidar mounted on the nacelle, a meteorological inflow mast, and wind turbine operational data. Wake characteristics and near-wake lengths are deduced from the lidar scanning at multiple horizontal planes and are analyzed across a wide range of atmospheric conditions, including stability, wind shear, veer, and turbulence. The wake velocity deficit is observed to be reduced with stronger turbulence and enhanced under stable conditions. Stronger wind veering across the rotor layer, in the absence of yaw misalignment, correlates to intensified lateral wake center deflection and to stronger vertical skewness. A high shear exponent and potential temperature gradient are associated with increased lateral asymmetry of the velocity deficit’s double-Gaussian peaks at 1 rotor diameter downstream. We find that the near wake extends on average 2.0 rotor diameters downstream, with a standard deviation of 0.42 rotor diameters. The near-wake length exhibits greater sensitivity to atmospheric conditions than to turbine operational parameters, with the strongest correlations found for turbulence intensity and static stability. Under strongly stable conditions and weak turbulence, near-wake lengths are particularly long, reaching up to 3.8 rotor diameters downstream.
| elib-URL des Eintrags: | https://elib.dlr.de/226037/ | ||||||||||||
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| Dokumentart: | Zeitschriftenbeitrag | ||||||||||||
| Titel: | Impact of atmospheric stability and turbulence on wind turbine wake characteristics: a nacelle lidar study | ||||||||||||
| Autoren: |
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| Datum: | 3 August 2026 | ||||||||||||
| Erschienen in: | Wind Energy Science | ||||||||||||
| Referierte Publikation: | Ja | ||||||||||||
| Open Access: | Ja | ||||||||||||
| Gold Open Access: | Ja | ||||||||||||
| In SCOPUS: | Ja | ||||||||||||
| In ISI Web of Science: | Ja | ||||||||||||
| DOI: | 10.5194/wes-11-2783-2026 | ||||||||||||
| Seitenbereich: | Seiten 2783-2800 | ||||||||||||
| Verlag: | Copernicus Publications | ||||||||||||
| ISSN: | 2366-7443 | ||||||||||||
| Status: | veröffentlicht | ||||||||||||
| Stichwörter: | lidar, stability, wind turbine wake | ||||||||||||
| HGF - Forschungsbereich: | Energie | ||||||||||||
| HGF - Programm: | Materialien und Technologien für die Energiewende | ||||||||||||
| HGF - Programmthema: | Photovoltaik und Windenergie | ||||||||||||
| DLR - Schwerpunkt: | Energie | ||||||||||||
| DLR - Forschungsgebiet: | E SW - Solar- und Windenergie | ||||||||||||
| DLR - Teilgebiet (Projekt, Vorhaben): | E - Windenergie | ||||||||||||
| Standort: | Oberpfaffenhofen | ||||||||||||
| Institute & Einrichtungen: | Institut für Physik der Atmosphäre > Angewandte Meteorologie | ||||||||||||
| Hinterlegt von: | Menken, Julia | ||||||||||||
| Hinterlegt am: | 06 Aug 2026 08:38 | ||||||||||||
| Letzte Änderung: | 06 Aug 2026 08:38 |
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