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EUREC4A observations from the SAFIRE ATR42 aircraft

  • Sandrine Bony
  • , Marie Lothon
  • , Julien Delanoë
  • , Pierre Coutris
  • , Jean Claude Etienne
  • , Franziska Aemisegger
  • , Anna Lea Albright
  • , Thierry André
  • , Hubert Bellec
  • , Alexandre Baron
  • , Jean François Bourdinot
  • , Pierre Etienne Brilouet
  • , Aurélien Bourdon
  • , Jean Christophe Canonici
  • , Christophe Caudoux
  • , Patrick Chazette
  • , Michel Cluzeau
  • , Céline Cornet
  • , Jean Philippe Desbios
  • , Dominique Duchanoy
  • Cyrille Flamant, Benjamin Fildier, Christophe Gourbeyre, Laurent Guiraud, Tetyana Jiang, Claude Lainard, Christophe Le Gac, Christian Lendroit, Julien Lernould, Thierry Perrin, Frédéric Pouvesle, Pascal Richard, Nicolas Rochetin, Kevin Salaün, Alfons Schwarzenboeck, Guillaume Seurat, Bjorn Stevens, Julien Totems, Ludovic Touzé-Peiffer, Gilles Vergez, Jessica Vial, Leonie Villiger, Raphaela Vogel
  • Laboratoire d'Aérologie
  • Université Versailles-Saint Quentin
  • Clermont-Auvergne University
  • Université Paul Sabatier
  • ETH Zurich
  • Sorbonne Université
  • Centre National d'études Spatiales
  • Université de Lille
  • PSL research University & IPSL
  • Max Planck Institute for Meteorology

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

23 Citations (Scopus)

Résumé

As part of the EUREC4A (Elucidating the role of cloud-circulation coupling in climate) field campaign, which took place in January and February 2020 over the western tropical Atlantic near Barbados, the French SAFIRE ATR42 research aircraft (ATR) conducted 19 flights in the lower troposphere. Each flight followed a common flight pattern that sampled the atmosphere around the cloud base level, at different heights of the subcloud layer, near the sea surface and in the lower free troposphere. The aircraft's payload included a backscatter lidar and a Doppler cloud radar that were both horizontally oriented; a Doppler cloud radar looking upward; microphysical probes; a cavity ring-down spectrometer for water isotopes; a multiwavelength radiometer; a visible camera; and multiple meteorological sensors, including fast rate sensors for turbulence measurements. With this instrumentation, the ATR characterized the macrophysical and microphysical properties of trade-wind clouds together with their thermodynamical, turbulent and radiative environment. This paper presents the airborne operations, the flight segmentation, the instrumentation, the data processing and the EUREC4A datasets produced from the ATR measurements. It shows that the ATR measurements of humidity, wind and cloud base cloud fraction measured with different techniques and samplings are internally consistent; that meteorological measurements are consistent with estimates from dropsondes launched from an overflying aircraft (the High Altitude and LOng Range Research Aircraft, HALO); and that water-isotopic measurements are well correlated with data from the Barbados Cloud Observatory. This consistency demonstrates the robustness of the ATR measurements of humidity, wind, cloud base cloud fraction and water-isotopic composition during EUREC4A. It also confirms that through their repeated flight patterns, the ATR and HALO measurements provided a statistically consistent sampling of trade-wind clouds and of their environment. The ATR datasets are freely available at the locations specified in Table .

langue originaleAnglais
Pages (de - à)2021-2064
Nombre de pages44
journalEarth System Science Data
Volume14
Numéro de publication4
Les DOIs
étatPublié - 27 avr. 2022

SDG des Nations Unies

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