Local Wind Regime Induced by Giant Linear Dunes: Comparison of ERA5-Land Reanalysis with Surface Measurements
Emergence and growth of sand dunes results from the dynamic interaction between topography, wind flow and sediment transport. While feedbacks between these variables are well studied at the scale of a single and relatively small dune, the average effect of a periodic large-scale dune pattern on atmo...
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Published in: | Boundary-layer meteorology Vol. 185; no. 3; pp. 309 - 332 |
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Main Authors: | , , , , , , |
Format: | Journal Article |
Language: | English |
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01-12-2022
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Abstract | Emergence and growth of sand dunes results from the dynamic interaction between topography, wind flow and sediment transport. While feedbacks between these variables are well studied at the scale of a single and relatively small dune, the average effect of a periodic large-scale dune pattern on atmospheric flows remains poorly constrained, due to a pressing lack of data in major sand seas. Here, we compare local measurements of surface winds to the predictions of the ERA5-Land climate reanalysis at four locations in Namibia, both within and outside the giant linear dune field of the Namib Sand Sea. In the desert plains to the north of the sand sea, observations and predictions agree well. This is also the case in the interdune areas of the sand sea during the day. During the night, however, an additional wind component aligned with the giant dune orientation is measured, in contrast to the easterly wind predicted by the ERA5-Land reanalysis. For the given dune orientation and measured wind regime, we link the observed wind deviation (over
50
∘
) to the daily cycle of the turbulent atmospheric boundary layer. During the night, a shallow boundary layer induces a flow confinement above the giant dunes, resulting in large flow deviations, especially for the slower easterly winds. During the day, the feedback of the giant dunes on the atmospheric flow is much weaker due to the thicker boundary layer and higher wind speeds. Finally, we propose that the confinement mechanism and the associated wind deflections induced by giant dunes could explain the development of smaller-scale secondary dunes, which elongate obliquely in the interdune areas of the primary dune pattern. |
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AbstractList | Emergence and growth of sand dunes results from the dynamic interaction between topography, wind flow and sediment transport. While feedbacks between these variables are well studied at the scale of a single and relatively small dune, the average effect of a periodic large-scale dune pattern on atmospheric flows remains poorly constrained, due to a pressing lack of data in major sand seas. Here, we compare local measurements of surface winds to the predictions of the ERA5-Land climate reanalysis at four locations in Namibia, both within and outside the giant linear dune field of the Namib Sand Sea. In the desert plains to the north of the sand sea, observations and predictions agree well. This is also the case in the interdune areas of the sand sea during the day. During the night, however, an additional wind component aligned with the giant dune orientation is measured, in contrast to the easterly wind predicted by the ERA5-Land reanalysis. For the given dune orientation and measured wind regime, we link the observed wind deviation (over [Formula omitted]) to the daily cycle of the turbulent atmospheric boundary layer. During the night, a shallow boundary layer induces a flow confinement above the giant dunes, resulting in large flow deviations, especially for the slower easterly winds. During the day, the feedback of the giant dunes on the atmospheric flow is much weaker due to the thicker boundary layer and higher wind speeds. Finally, we propose that the confinement mechanism and the associated wind deflections induced by giant dunes could explain the development of smaller-scale secondary dunes, which elongate obliquely in the interdune areas of the primary dune pattern. Emergence and growth of sand dunes results from the dynamic interaction between topography, wind flow and sediment transport. While feedbacks between these variables are well studied at the scale of a single and relatively small dune, the average effect of a periodic large-scale dune pattern on atmospheric flows remains poorly constrained, due to a pressing lack of data in major sand seas. Here, we compare local measurements of surface winds to the predictions of the ERA5-Land climate reanalysis at four locations in Namibia, both within and outside the giant linear dune field of the Namib Sand Sea. In the desert plains to the north of the sand sea, observations and predictions agree well. This is also the case in the interdune areas of the sand sea during the day. During the night, however, an additional wind component aligned with the giant dune orientation is measured, in contrast to the easterly wind predicted by the ERA5-Land reanalysis. For the given dune orientation and measured wind regime, we link the observed wind deviation (over 50 ∘ ) to the daily cycle of the turbulent atmospheric boundary layer. During the night, a shallow boundary layer induces a flow confinement above the giant dunes, resulting in large flow deviations, especially for the slower easterly winds. During the day, the feedback of the giant dunes on the atmospheric flow is much weaker due to the thicker boundary layer and higher wind speeds. Finally, we propose that the confinement mechanism and the associated wind deflections induced by giant dunes could explain the development of smaller-scale secondary dunes, which elongate obliquely in the interdune areas of the primary dune pattern. Emergence and growth of sand dunes results from the dynamic interaction between topography, wind flow and sediment transport. While feedbacks between these variables are well studied at the scale of a single and relatively small dune, the average effect of a periodic large-scale dune pattern on atmospheric flows remains poorly constrained, due to a pressing lack of data in major sand seas. Here, we compare local measurements of surface winds to the predictions of the ERA5-Land climate reanalysis at four locations in Namibia, both within and outside the giant linear dune field of the Namib Sand Sea. In the desert plains to the north of the sand sea, observations and predictions agree well. This is also the case in the interdune areas of the sand sea during the day. During the night, however, an additional wind component aligned with the giant dune orientation is measured, in contrast to the easterly wind predicted by the ERA5-Land reanalysis. For the given dune orientation and measured wind regime, we link the observed wind deviation (over 50∘) to the daily cycle of the turbulent atmospheric boundary layer. During the night, a shallow boundary layer induces a flow confinement above the giant dunes, resulting in large flow deviations, especially for the slower easterly winds. During the day, the feedback of the giant dunes on the atmospheric flow is much weaker due to the thicker boundary layer and higher wind speeds. Finally, we propose that the confinement mechanism and the associated wind deflections induced by giant dunes could explain the development of smaller-scale secondary dunes, which elongate obliquely in the interdune areas of the primary dune pattern. |
Audience | Academic |
Author | Delorme, Pauline Narteau, Clément Claudin, Philippe Gadal, Cyril Nield, Joanna M. Wiggs, Giles F. S. Baddock, Matthew |
Author_xml | – sequence: 1 givenname: Cyril orcidid: 0000-0002-2173-5837 surname: Gadal fullname: Gadal, Cyril email: cyril.gadal@imft.fr organization: Institut de Mécanique des Fluides de Toulouse, Université de Toulouse Paul Sabatier, CNRS, Toulouse INP-ENSEEIHT – sequence: 2 givenname: Pauline surname: Delorme fullname: Delorme, Pauline organization: Energy and Environment Institute, University of Hull, School of Geography and Environmental Science, University of Southampton – sequence: 3 givenname: Clément surname: Narteau fullname: Narteau, Clément organization: Université Paris Cité, Institut de physique du globe de Paris, CNRS – sequence: 4 givenname: Giles F. S. surname: Wiggs fullname: Wiggs, Giles F. S. organization: School of Geography and the Environment, University of Oxford – sequence: 5 givenname: Matthew surname: Baddock fullname: Baddock, Matthew organization: Geography and Environment, Loughborough University – sequence: 6 givenname: Joanna M. surname: Nield fullname: Nield, Joanna M. organization: School of Geography and Environmental Science, University of Southampton – sequence: 7 givenname: Philippe surname: Claudin fullname: Claudin, Philippe organization: Physique et Mécanique des Milieux Hétérogènes, CNRS, ESPCI Paris, PSL Research University, Université de Paris, Sorbonne Université |
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CitedBy_id | crossref_primary_10_1016_j_earscirev_2024_104772 crossref_primary_10_1029_2022JD037524 crossref_primary_10_1029_2022GL102610 crossref_primary_10_1016_j_geomorph_2023_109045 crossref_primary_10_3389_feart_2023_1129360 |
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Issue | 3 |
Keywords | Flow over hills Atmospheric boundary layer Sand dunes Physics - Atmospheric and Oceanic Physics Physics - Geophysics Physics - Fluid Dynamics |
Language | English |
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Snippet | Emergence and growth of sand dunes results from the dynamic interaction between topography, wind flow and sediment transport. While feedbacks between these... |
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SubjectTerms | Analysis Atmospheric boundary layer Atmospheric flows Atmospheric Protection/Air Quality Control/Air Pollution Atmospheric Sciences Atmospheric turbulence Boundary layers Confinement Deserts Deviation Dunes Earth and Environmental Science Earth Sciences Easterlies Local winds Meteorology Night Planetary boundary layer Research Article Sand Sand dunes Sciences of the Universe Sediment transport Surface wind Tropospheric circulation Turbulent boundary layer Wind Wind flow Wind measurement Wind regime Wind speed Winds |
Title | Local Wind Regime Induced by Giant Linear Dunes: Comparison of ERA5-Land Reanalysis with Surface Measurements |
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