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Overview: The Network for the Detection of Atmospheric Composition Change at 35 years: achievements and future strategy

  • Irina Petropavlovskikh
  • , Martine De Mazière
  • , Anne M. Thompson
  • , Jeannette D. Wild
  • , James W. Hannigan
  • , Henry B. Selkirk
  • , Reem A. Hannun
  • , Wolfgang Steinbrecht
  • , Jean Christopher Lambert
  • , Roeland Van Malderen
  • , Elizabeth Asher
  • , Raul R. Cordero
  • , Sophie Godin-Beekmann
  • , Daan Hubert
  • , Sergey Khaykin
  • , Karin Kreher
  • , Thierry Leblanc
  • , Emmanuel Mahieu
  • , Eliane Maillard Barras
  • , Glen McConville
  • Gerald Nedoluha, Ivan Ortega, Alberto Redondas Marrero, Gunther Seckmeyer, Ryan M. Stauffer, Sarah A. Strode, Kim Strong, Takafumi Sugita, Michel Van Roozendael, Voltaire Velazco, Corinne Vigouroux, Bärbel Vogel
  • University of Colorado Boulder
  • Royal Belgian Institute for Space Aeronomy
  • NASA Goddard Space Flight Center
  • University of Maryland, College Park
  • National Oceanic and Atmospheric Administration
  • National Center for Atmospheric Research
  • National Aeronautics and Space Administration
  • NASA Ames Research Center
  • Deutscher Wetterdienst
  • Royal Meteorological Institute of Belgium
  • University of Groningen
  • Universidad de Santiago de Chile
  • Sorbonne Université
  • BK Scientific GmbH
  • California Institute of Technology
  • University of Liege
  • Now at Federal Office of Meteorology and Climatology MeteoSwiss
  • Naval Research Laboratory
  • Izaña Atmospheric Research Center
  • Leibniz University Hannover
  • Morgan State University
  • University of Toronto
  • National Institute for Environmental Studies of Japan
  • Jülich Research Centre

Research output: Contribution to journalArticlepeer-review

Abstract

Since 1991, continuous, consistently calibrated and openly archived ground-based measurements from the Network for the Detection of Atmospheric Composition Change (NDACC) have been collected to investigate processes responsible for decadal-scale changes, anomalies in atmospheric composition, and to validate satellite observations and model simulations. These measurements, from nearly 120 stations, support fundamental research in the area of stratospheric and tropospheric processes impacting ozone chemistry, greenhouse gases, atmospheric radiative forcing, air quality, and interactions with solar radiation and the entire Earth system. NDACC data are supplemented by observations from eleven global Cooperating Networks. The operational principles of Cooperating Networks are well aligned with NDACC objectives and protocols, focusing on data that (a) are high-quality, uniformly processed and traceable to reference standards; and (b) capture short-term (daily to interannual) anomalies and long-term trends. This paper summarizes the NDACC organizational structure. We also review the major accomplishments of NDACC since De Mazière et al. (2018), collaborative research with Cooperating Networks, and interactions with the satellite and modeling communities. Ground-based atmospheric composition monitoring is at a crossroads. Challenges include sustainability of human and financial resources required for complex and intensive data collection, technical issues including aging instrumentation, requirements for FAIR (findable, accessible, interoperable, reusable) data, and lack of data over large parts of Asia, Africa and South America. NDACC is well-positioned to adopt a three-pronged strategy going forward: protecting and modernizing existing stations; promoting the growing use of NDACC data; expanding the number of measured species and network coverage in under-sampled or under-reporting regions.

Original languageEnglish
Pages (from-to)8637-8675
Number of pages39
JournalAtmospheric Chemistry and Physics
Volume26
Issue number12
DOIs
StatePublished - Jun 22 2026
Externally publishedYes

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