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Revealing the Mysteries of Venus: The DAVINCI Mission

  • James B. Garvin
  • , Stephanie A. Getty
  • , Giada N. Arney
  • , Natasha M. Johnson
  • , Erika Kohler
  • , Kenneth O. Schwer
  • , Michael Sekerak
  • , Arlin Bartels
  • , Richard S. Saylor
  • , Vincent E. Elliott
  • , Colby S. Goodloe
  • , Matthew B. Garrison
  • , Valeria Cottini
  • , Noam Izenberg
  • , Ralph Lorenz
  • , Charles A. Malespin
  • , Michael Ravine
  • , Christopher R. Webster
  • , David H. Atkinson
  • , Shahid Aslam
  • Sushil Atreya, Brent J. Bos, William B. Brinckerhoff, Bruce Campbell, David Crisp, Justin R. Filiberto, Francois Forget, Martha Gilmore, Nicolas Gorius, David Grinspoon, Amy E. Hofmann, Stephen R. Kane, Walter Kiefer, Sebastien Lebonnois, Paul R. Mahaffy, Alexander Pavlov, Melissa Trainer, Kevin J. Zahnle, Mikhail Zolotov
  • NASA Goddard Space Flight Center
  • Science and Research Directorate
  • Johns Hopkins University Applied Physics Laboratory
  • Malin Space Science Systems
  • California Institute of Technology
  • University of Michigan, Ann Arbor
  • Smithsonian Institution
  • NASA Johnson Space Center
  • Wesleyan University Middletown
  • Planetary Science Institute
  • University of California, Riverside
  • Lunar and Planetary Institute
  • NASA Ames Research Center
  • Arizona State University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

170 Citations (Scopus)

Résumé

The Deep Atmosphere Venus Investigation of Noble gases, Chemistry, and Imaging (DAVINCI) mission described herein has been selected for flight to Venus as part of the NASA Discovery Program. DAVINCI will be the first mission to Venus to incorporate science-driven flybys and an instrumented descent sphere into a unified architecture. The anticipated scientific outcome will be a new understanding of the atmosphere, surface, and evolutionary path of Venus as a possibly once-habitable planet and analog to hot terrestrial exoplanets. The primary mission design for DAVINCI as selected features a preferred launch in summer/fall 2029, two flybys in 2030, and descent-sphere atmospheric entry by the end of 2031. The in situ atmospheric descent phase subsequently delivers definitive chemical and isotopic composition of the Venus atmosphere during an atmospheric transect above Alpha Regio. These in situ investigations of the atmosphere and near-infrared (NIR) descent imaging of the surface will complement remote flyby observations of the dynamic atmosphere, cloud deck, and surface NIR emissivity. The overall mission yield will be at least 60 Gbits (compressed) new data about the atmosphere and near surface, as well as the first unique characterization of the deep atmosphere environment and chemistry, including trace gases, key stable isotopes, oxygen fugacity, constraints on local rock compositions, and topography of a tessera.

langue originaleAnglais
Numéro d'article117
journalPlanetary Science Journal
Volume3
Numéro de publication5
Les DOIs
étatPublié - 1 mai 2022

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