4.7 Review

Opportunistic experiments to constrain aerosol effective radiative forcing

期刊

ATMOSPHERIC CHEMISTRY AND PHYSICS
卷 22, 期 1, 页码 641-674

出版社

COPERNICUS GESELLSCHAFT MBH
DOI: 10.5194/acp-22-641-2022

关键词

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资金

  1. European Research Council Project constRaining the EffeCts of Aerosols on Precipitation under the European Union's Horizon 2020 research and innovation program [724602]
  2. FORCeS project under the European Union's Horizon 2020 research program [821205]
  3. Enabling Aerosolcloud interactions at GLobal convection-permitting scalES (EAGLES) project - US Department of Energy, Office of Science, Office of Biological and Environmental Research, Earth System Model Development program [74358]
  4. US Department of Energy [DE-AC05-76RL01830]
  5. Natural Environment Research Council (UK) project ACRUISE [NE/S005390/1]
  6. Estonian Research Council [PSG202]
  7. NASA headquarters under the NASA Earth and Space Science Fellowship Program [NNX-80NSSC17K0404]
  8. CIRES Visiting Fellows Program - National Oceanic and Atmospheric Administration (NOAA) Cooperative Agreement
  9. CIRES [NA17OAR4320101]
  10. ONR of ACTIVATE [N00014-21-1-2115]
  11. NASA of ACTIVATE [80NSSC19K0442]
  12. NASA's Earth Science Division and managed through the Earth System Science Pathfinder Program Office
  13. NERC [NE/S00436X/1, NE/T006897/1, NE/P013406/1]
  14. US National Science Foundation [AGS1837811]
  15. NASA [80NSSC20K0131]
  16. NOAA Climate and Global Change Postdoctoral Fellowship Program [NA18NWS4620043B]
  17. Federal Ministry of Education and Research (BMBF) under the Make our Planet Great Again -German Research Initiative [57429624]
  18. Royal Society University Research Fellowship [URF/R1/191602]
  19. Branco Weiss Fellowship - Society in Science
  20. Veni grant of the Dutch Research Council (NWO)
  21. EU [GA 875036, GA 821205]
  22. US National Oceanographic and Atmospheric Administration (NOAA award) [NA20OAR4320271]
  23. NOAA Earth's Radiation Budget grant, NOAA CPO Climate CI [03-01-07-001]
  24. US National Science Foundation
  25. Natural Environment Research Council's of the National Centre for Earth Observation [PR140015]
  26. Israeli Science Foundation [1419/21]

向作者/读者索取更多资源

Aerosol-cloud interactions are the most uncertain driver of radiative forcing due to human activities. Opportunistic experiments provide a way to investigate these interactions and improve assessments of aerosol radiative forcing and climate change.
Aerosol-cloud interactions (ACIs) are considered to be the most uncertain driver of present-day radiative forcing due to human activities. The nonlinearity of cloud-state changes to aerosol perturbations make it challenging to attribute causality in observed relationships of aerosol radiative forcing. Using correlations to infer causality can be challenging when meteorological variability also drives both aerosol and cloud changes independently. Natural and anthropogenic aerosol perturbations from well-defined sources provide opportunistic experiments (also known as natural experiments) to investigate ACI in cases where causality may be more confidently inferred. These perturbations cover a wide range of locations and spatiotemporal scales, including point sources such as volcanic eruptions or industrial sources, plumes from biomass burning or forest fires, and tracks from individual ships or shipping corridors. We review the different experimental conditions and conduct a synthesis of the available satellite datasets and field campaigns to place these opportunistic experiments on a common footing, facilitating new insights and a clearer understanding of key uncertainties in aerosol radiative forcing. Cloud albedo perturbations are strongly sensitive to background meteorological conditions. Strong liquid water path increases due to aerosol perturbations are largely ruled out by averaging across experiments. Opportunistic experiments have significantly improved process-level understanding of ACI, but it remains unclear how reliably the relationships found can be scaled to the global level, thus demonstrating a need for deeper investigation in order to improve assessments of aerosol radiative forcing and climate change.

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