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AERO-MAP: a data compilation and modeling approach to understand spatial variability in fine- and coarse-mode aerosol composition

  • Natalie M. Mahowald*
  • , Longlei Li
  • , Julius Vira
  • , Marje Prank
  • , Douglas S. Hamilton
  • , Hitoshi Matsui
  • , Ron L. Miller
  • , P. Louis Lu
  • , Ezgi Akyuz
  • , Daphne Meidan
  • , Peter Hess
  • , Heikki Lihavainen
  • , Christine Wiedinmyer
  • , Jenny Hand
  • , Maria Grazia Alaimo
  • , Célia Alves
  • , Andres Alastuey
  • , Paulo Artaxo
  • , Africa Barreto
  • , Francisco Barraza
  • Silvia Becagli, Giulia Calzolai, Shankararaman Chellam, Ying Chen, Patrick Chuang, David D. Cohen, Cristina Colombi, Evangelia Diapouli, Gaetano Dongarra, Konstantinos Eleftheriadis, Johann Engelbrecht, Corinne Galy-Lacaux, Cassandra Gaston, Dario Gomez, Yenny González Ramos, Roy M. Harrison, Chris Heyes, Barak Herut, Philip Hopke, Christoph Hüglin, Maria Kanakidou, Zsofia Kertesz, Zbigniew Klimont, Katriina Kyllönen, Fabrice Lambert, Xiaohong Liu, Remi Losno, Franco Lucarelli, Willy Maenhaut, Beatrice Marticorena, Randall V. Martin, Nikolaos Mihalopoulos, Yasser Morera-Gómez, Adina Paytan, Joseph Prospero, Sergio Rodríguez, Patricia Smichowski, Daniela Varrica, Brenna Walsh, Crystal L. Weagle, Xi Zhao
*Bu çalışma için yazışmadan sorumlu yazar
  • Cornell University
  • Finnish Meteorological Institute
  • North Carolina State University
  • Nagoya University
  • Columbia University
  • Duke University
  • Cornell University
  • SIOS Knowledge Centre
  • University of Colorado Boulder
  • Cooperative Institute for Research in the Atmosphere
  • University of Palermo
  • University of Aveiro
  • IDAEA-CSIC
  • Universidade de São Paulo
  • Agencia Estatal de Meteorología (AEMET),
  • Saw Science
  • University of Florence
  • Texas A&m University
  • Fudan University
  • University of California at Santa Cruz
  • Australian Nuclear Science and Technology Organisation
  • ARPA Lombardia
  • Demokritos National Centre for Scientific Research
  • Desert Research Institute
  • Laboratoire d'Aerologie
  • University of Miami
  • Comisión Nacional de Energía Atómica
  • CIMEL
  • University of Birmingham
  • International Institute for Applied Systems Analysis, Laxenburg
  • Israel Oceanographic & Limnological Research Ltd.
  • University of Haifa
  • Clarkson University
  • University of Rochester
  • Swiss Federal Laboratories for Materials Science and Technology (Empa)
  • University of Crete
  • Foundation for Research and Technology-Hellas
  • University of Bremen
  • Institute for Nuclear Research
  • Pontificia Universidad Católica de Chile
  • Universidad de Concepción
  • Texas A&M University
  • Institut de Physique du Globe de Paris
  • Ghent University
  • Universités Paris Est-Paris Diderot-Paris 7
  • Washington University St. Louis
  • National Observatory of Athens
  • University of Navarra
  • IPNA CSIC

Araştırma çıktısı: Dergi yayınıMakaleHakem

8 Atıf (Scopus)

Özet

Aerosol particles are an important part of the Earth climate system, and their concentrations are spatially and temporally heterogeneous, as well as being variable in size and composition. Particles can interact with incoming solar radiation and outgoing longwave radiation, change cloud properties, affect photochemistry, impact surface air quality, change the albedo of snow and ice, and modulate carbon dioxide uptake by the land and ocean. High particulate matter concentrations at the surface represent an important public health hazard. There are substantial data sets describing aerosol particles in the literature or in public health databases, but they have not been compiled for easy use by the climate and air quality modeling community. Here, we present a new compilation of PM2:5 and PM10 surface observations, including measurements of aerosol composition, focusing on the spatial variability across different observational stations. Climate modelers are constantly looking for multiple independent lines of evidence to verify their models, and in situ surface concentration measurements, taken at the level of human settlement, present a valuable source of information about aerosols and their human impacts complementarily to the column averages or integrals often retrieved from satellites. We demonstrate a method for comparing the data sets to outputs from global climate models that are the basis for projections of future climate and large-scale aerosol transport patterns that influence local air quality. Annual trends and seasonal cycles are discussed briefly and are included in the compilation. Overall, most of the planet or even the land fraction does not have sufficient observations of surface concentrations - and, especially, particle composition - to characterize and understand the current distribution of particles. Climate models without ammonium nitrate aerosols omit _10% of the globally averaged surface concentration of aerosol particles in both PM2:5 and PM10 size fractions, with up to 50% of the surface concentrations not being included in some regions. In these regions, climate model aerosol forcing projections are likely to be incorrect as they do not include important trends in short-lived climate forcers.

Orijinal dilİngilizce
Sayfa (başlangıç-bitiş)4665-4702
Sayfa sayısı38
DergiAtmospheric Chemistry and Physics
Hacim25
Basın numarası9
DOI'lar
Yayın durumuYayınlandı - 6 May 2025

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Publisher Copyright:
© Author(s) 2025.

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