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dc.contributor.author
Alexander, Pedro Manfredo  
dc.contributor.author
de la Torre, Alejandro  
dc.contributor.author
Llamedo Soria, Pablo Martin  
dc.contributor.author
Hierro, Rodrigo Federico  
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Marcos, Tomas  
dc.contributor.author
Kaifler, Bernd  
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Kaifler, Natalie  
dc.contributor.author
Geldenhuys, Markus  
dc.contributor.author
Preusse, Peter  
dc.contributor.author
Giez, Andreas  
dc.contributor.author
Rapp, Markus  
dc.contributor.author
Hormaechea, José Luis  
dc.date.available
2024-01-25T15:10:40Z  
dc.date.issued
2023-02  
dc.identifier.citation
Alexander, Pedro Manfredo; de la Torre, Alejandro; Llamedo Soria, Pablo Martin; Hierro, Rodrigo Federico; Marcos, Tomas; et al.; The Coexistence of Gravity Waves From Diverse Sources During a SOUTHTRAC Flight; John Wiley & Sons; Journal of Geophysical Research: Atmospheres; 128; 5; 2-2023; 1-32  
dc.identifier.issn
2169-897X  
dc.identifier.uri
http://hdl.handle.net/11336/224871  
dc.description.abstract
We use observations from one of the SOUTHTRAC (Southern Hemisphere Transport, Dynamics, and Chemistry) Campaign flights in Patagonia and the Antarctic Peninsula during September 2019 to analyze possible sources of gravity waves (GW) in this hotspot during austral late winter and early spring. Data from two of the instruments onboard the German High Altitude and Long Range Research Aircraft (HALO) are employed: the Airborne Lidar for Middle Atmosphere research (ALIMA) and the Basic HALO Measurement and Sensor System (BAHAMAS). The former provides vertical temperature profiles along the trajectory, while the latter gives the three components of velocity, pressure, and temperature at the flight position. GW-induced perturbations are obtained from these observations. We include numerical simulations from the Weather Research and Forecast (WRF) model to place a four-dimensional context for the GW observed during the flight and to present possible interpretations of the measurements, for example, the orientation or eventual propagation sense of the waves may not be inferred using only data obtained onboard. We first evaluate agreements and discrepancies between the model outcomes and the observations. This allowed us an assessment of the WRF performance in the generation, propagation, and eventual dissipation of diverse types of GW through the troposphere, stratosphere, and lower mesosphere. We then analyze the coexistence and interplay of mountain waves (MW) and non-orographic (NO) GW. The MW dominate above topographic areas and in the direction of the so-called GW belt, whereas the latter waves are mainly relevant above oceanic zones. WRF simulates NOGW as mainly upward propagating entities above the lower stratosphere. Model runs show that deep vertical propagation conditions are in general favorable during this flight but also that in the upper stratosphere and lower mesosphere and mainly above topography there is some potential for wave breaking. The numerical simulations evaluate the GW drag for the whole flight area and find that the strongest effect is located in the zonal component around the stratopause. The general behavior against height resembles that obtained with a local fixed lidar data. According to WRF results, up to 100 km horizontal wavelength MW account for about half of the force opposing the circulation of the atmosphere.  
dc.format
application/pdf  
dc.language.iso
eng  
dc.publisher
John Wiley & Sons  
dc.rights
info:eu-repo/semantics/openAccess  
dc.rights.uri
https://creativecommons.org/licenses/by/2.5/ar/  
dc.subject
GRAVITY WAVES  
dc.subject
SOUTHTRAC  
dc.subject
WRF  
dc.subject.classification
Meteorología y Ciencias Atmosféricas  
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Ciencias de la Tierra y relacionadas con el Medio Ambiente  
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CIENCIAS NATURALES Y EXACTAS  
dc.title
The Coexistence of Gravity Waves From Diverse Sources During a SOUTHTRAC Flight  
dc.type
info:eu-repo/semantics/article  
dc.type
info:ar-repo/semantics/artículo  
dc.type
info:eu-repo/semantics/publishedVersion  
dc.date.updated
2024-01-25T10:42:16Z  
dc.identifier.eissn
2169-8996  
dc.journal.volume
128  
dc.journal.number
5  
dc.journal.pagination
1-32  
dc.journal.pais
Estados Unidos  
dc.description.fil
Fil: Alexander, Pedro Manfredo. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Ciudad Universitaria. Instituto de Física de Buenos Aires. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Instituto de Física de Buenos Aires; Argentina  
dc.description.fil
Fil: de la Torre, Alejandro. Universidad Austral; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.description.fil
Fil: Llamedo Soria, Pablo Martin. Universidad Austral; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.description.fil
Fil: Hierro, Rodrigo Federico. Universidad Austral; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.description.fil
Fil: Marcos, Tomas. Universidad Austral; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.description.fil
Fil: Kaifler, Bernd. German Aerospace Center.; Alemania  
dc.description.fil
Fil: Kaifler, Natalie. German Aerospace Center.; Alemania  
dc.description.fil
Fil: Geldenhuys, Markus. Helmholtz Gemeinschaft. Forschungszentrum Jülich; Alemania  
dc.description.fil
Fil: Preusse, Peter. Helmholtz Gemeinschaft. Forschungszentrum Jülich; Alemania  
dc.description.fil
Fil: Giez, Andreas. German Aerospace Center.; Alemania  
dc.description.fil
Fil: Rapp, Markus. German Aerospace Center.; Alemania  
dc.description.fil
Fil: Hormaechea, José Luis. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina. Universidad Nacional de La Plata. Facultad de Ciencias Astronómicas y Geofísicas; Argentina  
dc.journal.title
Journal of Geophysical Research: Atmospheres  
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/url/https://onlinelibrary.wiley.com/doi/10.1029/2022JD037276  
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/doi/http://dx.doi.org/10.1029/2022JD037276