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The Dynamics and Chemistry of the Summer Stratosphere (DCOTSS) Project

  • Kenneth P. Bowman
  • , Frank N. Keutsch
  • , Cameron R. Homeyer
  • , David S. Sayres
  • , Jessica B. Smith
  • , David M. Wilmouth
  • , James G. Anderson
  • , Elliot L. Atlas
  • , Eric Apel
  • , Kristopher Bedka
  • , T. Paul Bui
  • , Daniel Cziczo
  • , Bruce Daube
  • , Erin R. Delaria
  • , John Dykema
  • , Thomas F. Hanisco
  • , R. Hannun
  • , Brad Hall
  • , Eric Hintsa
  • , Laila Howar
  • Dale F. Hurst, Justin Louis Jacquot, Alexander Laskin, Yaowei Li, Chuntao Liu, Fred Moore, Gretchen Mullendore, Paul Newman, Amit Kumar Pandit, Anita D. Rapp, Ross J. Salawitch, Xiaoli Shen, Jason M. St. Clair, Rei Ueyama, Jean Paul Vernier, Steven C. Wofsy
  • Texas A&M University
  • Harvard University
  • University of Oklahoma
  • University of Miami
  • National Center for Atmospheric Research
  • NASA Langley Research Center
  • NASA Ames Research Center
  • Purdue University
  • NASA Goddard Space Flight Center
  • University of Maryland, College Park
  • National Oceanic and Atmospheric Administration
  • University of Colorado Boulder
  • Texas A&M University-Corpus Christi
  • University of North Dakota
  • National Institute of Aerospace

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

Overshooting storms are convective systems with updrafts that penetrate through the tropopause into the overlying stratosphere. These storms can rapidly transport a wide variety of chemical species and aerosols from the boundary layer and free troposphere directly to the stratosphere. The central plains of the United States and the Sierra Madre Occidental of Mexico are two of the global hotspots for overshooting convection. While the existence of these storms has been known for several decades, the amount of tropospheric air, including water vapor, trace gases, and aerosols, transported across the tropopause is poorly understood, as is their impact on the dynamics, chemistry, and radiative balance of the stratosphere. Climate models suggest that as Earth’s climate continues to warm, overshooting convection over the United States may increase, potentially causing changes to stratospheric composition and transport. To address these scientific questions, the NASA ER-2 high-altitude research aircraft flew 31 missions during the summers of 2021 and 2022 to make observations of the outflow from overshooting storms in the stratosphere over North America and the eastern Pacific Ocean as part of the Dynamics and Chemistry of the Summer Stratosphere (DCOTSS) project. The ER-2 carried a payload of 12 instruments to measure meteorological parameters, water and its isotopologues, trace gases, and aerosol properties. Ozone, water vapor, and aerosol sondes were also launched on balloons during the field deployments. This paper describes the science goals of the DCOTSS project, the aircraft measurement strategy, the data produced by the project, and highlights of science results to date.

Original languageEnglish
Pages (from-to)E696-E717
JournalBulletin of the American Meteorological Society
Volume107
Issue number3
DOIs
StatePublished - Mar 2026
Externally publishedYes

Keywords

  • Aerosols/ particulates
  • Atmospheric chemistry
  • Convection
  • Ozone
  • Stratospheretroposphere coupling
  • Trace gases

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