Including realistic upper atmospheres in a wind-farm gravity-wave model
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Published:2022-07-07
Issue:4
Volume:7
Page:1367-1382
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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:
Devesse KoenORCID, Lanzilao LucaORCID, Jamaer Sebastiaan, van Lipzig Nicole, Meyers JohanORCID
Abstract
Abstract. Recent research suggests that atmospheric gravity waves can affect offshore wind-farm performance. A fast wind-farm boundary layer model has been proposed to simulate the effects of these gravity waves on wind-farm operation by Allaerts and Meyers (2019). The current work extends the applicability of that model to free atmospheres in which wind and stability vary with altitude.
We validate the model using reference cases from literature on mountain waves. Analysis of a reference flow shows that internal gravity-wave resonance caused by the atmospheric non-uniformity can prohibit perturbations in the atmospheric boundary layer (ABL) at the wavelengths where it occurs. To determine the overall impact of the vertical variations in the atmospheric conditions on wind-farm operation, we consider 1 year of operation of the Belgian–Dutch wind-farm cluster with the extended model. We find that this impact on individual flow cases is often of the same order of magnitude as the total flow perturbation. In 16.6 % of the analyzed flows, the relative difference in upstream velocity reduction between uniform and non-uniform free atmospheres is more than 30 %. However, this impact is small when averaged over all cases. This suggests that variations in the atmospheric conditions should be taken into account when simulating wind-farm operation in specific atmospheric conditions.
Publisher
Copernicus GmbH
Subject
Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment
Reference38 articles.
1. Allaerts, D. and Meyers, J.: Boundary-layer development and gravity waves in
conventionally neutral wind farms, J. Fluid Mech., 814, 95–130,
https://doi.org/10.1017/jfm.2017.11, 2017. a 2. Allaerts, D. and Meyers, J.: Sensitivity and feedback of wind-farm-induced
gravity waves, J. Fluid Mech., 862, 990–1028,
https://doi.org/10.1017/jfm.2018.969, 2019. a, b, c, d, e, f, g, h, i, j, k, l, m, n, o, p, q, r, s, t, u, v, w, x, y, z, aa, ab, ac, ad 3. Allaerts, D., Broucke, S. V., Van Lipzig, N., and Meyers, J.: Annual impact
of wind-farm gravity waves on the Belgian-Dutch offshore wind-farm cluster,
J. Phys.-Conf. Ser., 1037, 072006,
https://doi.org/10.1088/1742-6596/1037/7/072006, 2018. a, b, c, d 4. Baines, P. G.: Topographic effects in stratified flows, Cambridge monographs on
mechanics, Cambridge University Press, ISBN 0-521-62923-3, 1998. a, b, c, d, e, f, g 5. Bastankhah, M. and Porté-Agel, F.: A new analytical model for
wind-turbine wakes, Renew. Energ., 70, 116–123,
https://doi.org/10.1016/j.renene.2014.01.002, 2014. a
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