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The THINICE Field Campaign: Interactions between Arctic Cyclones, Tropopause Polar Vortices, Clouds, and Sea Ice in Summer

  • Gwendal Rivière
  • , Julien Delanoë
  • , James D. Doyle
  • , John Methven
  • , Chris Barrell
  • , Matthew Fearon
  • , Suzanne Gray
  • , Aaron Johnson
  • , Olivier Jourdan
  • , Tom Lachlan-Cope
  • , Ian Renfrew
  • , Ryan D. Torn
  • , Ambrogio Volonté
  • , Alexandra Weiss
  • , Meryl Wimmer
  • , Clémantyne Aubry
  • , Antoine Baudoux
  • , Eric Bazile
  • , Daniel Beeden
  • , Miriam Bennett
  • Kevin Biernat, Cecilia M. Bitz, Edward Blanchard-Wrigglesworth, Sophie Bounissou, Matthew Bray, Tomer Burg, Joseph Burzdak, Steven Businger, Peyton Capute, Christophe Caudoux, Steven Cavallo, Laure Cossalter, Capucine Cozzolino, Hannah Croad, Vincent Douet, Andrew Elvidge, Peter Finocchio, Christophe Gourbeyre, Ben Harvey, Kevin Huet, Todd Hutchinson, Russ Ladkin, Kai Marshland, Oscar Martinez-Alvarado, Guillaume Mioche, Florian Pantillon, Cameron Paquette, David B. Parsons, Ola Persson, Lea Raillard, Jean Christophe Raut, Yann Seity, Jérémie Trules, Etienne Vignon, Xuguang Wang
  • Université Paris-Saclay
  • Naval Research Laboratory
  • University of Reading
  • University of East Anglia
  • Science Applications International Corporation
  • University of Oklahoma
  • Clermont-Auvergne University
  • British Antarctic Survey
  • State University of New York Albany
  • Université Paul Sabatier
  • National Research Council
  • University of Washington
  • University of Hawaii
  • CNRS
  • WindBorne Systems Inc.
  • Laboratoire d'Aérologie
  • University of Colorado Boulder
  • PSL research University & IPSL
  • Sorbonne Université

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

8 Citations (Scopus)

Résumé

The THINICE field campaign, based in Svalbard in August 2022, provided unique observations of summertime Arctic cyclones, their coupling with cloud cover, and their interactions with tropopause polar vortices and sea ice conditions. THINICE was motivated by the need to advance our understanding of these processes and to improve coupled models used to forecast weather and sea ice, as well as long-term projections of climate change in the Arctic. Two research aircraft were deployed with complementary instrumentation. The Service des Avions Français Instrumentés pour la Recherche en Environnement (Safire) Aerei da Trasporto Regionale 42 (ATR42) aircraft, equipped with the radar–lidar (RALI) remote sensing instrumentation and in situ cloud microphysics probes, flew in the midtroposphere to observe the wind and multiphase cloud structure of Arctic cyclones. The British Antarctic Survey Meteorological Airborne Science Instrumentation (MASIN) aircraft flew at low levels measuring sea ice properties, including surface brightness temperature, albedo and roughness, and the turbulent fluxes that mediate exchange of heat and momentum between the atmosphere and the surface. Long-duration instrumented balloons, operated by WindBorne Systems, sampled meteorological conditions within both cyclones and tropospheric polar vortices across the Arctic. Several novel findings are highlighted. Intense, shallow low-level jets along warm fronts were observed within three Arctic cyclones using the Doppler radar and turbulence probes. A detailed depiction of the interweaving layers of ice crystals and supercooled liquid water in mixed-phase clouds is revealed through the synergistic combination of the Doppler radar, the lidar, and in situ microphysical probes. Measurements of near-surface turbulent fluxes combined with remote sensing measurements of sea ice properties are being used to characterize atmosphere–sea ice interactions in the marginal ice zone.

langue originaleAnglais
Pages (de - à)E2330-E2354
journalBulletin of the American Meteorological Society
Volume105
Numéro de publication12
Les DOIs
étatPublié - 1 déc. 2024

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