4.6 Article

An Overview of ARTMIP's Tier 2 Reanalysis Intercomparison: Uncertainty in the Detection of Atmospheric Rivers and Their Associated Precipitation

Journal

Publisher

AMER GEOPHYSICAL UNION
DOI: 10.1029/2021JD036155

Keywords

atmospheric river; reanalysis intercomparison; MERRA-2; ERA5; JRA-55

Funding

  1. U.S. Department of Energy Office of Science Biological and Environmental Research (BER) as part of the Regional and Global Model Analysis program area
  2. NASA's Earth Science Research Program
  3. NASA [80NSSC20K1344, 80NSSC21K1007]
  4. California Department of Water Resources
  5. Scientific Employment Stimulus 2017 - FundacAo para a Ciencia e a Tecnologia(FCT), Portugal [CEECIND/00027/2017]
  6. HOLMODRIVE-North Atlantic Atmospheric Patterns Influence on Western Iberia Climate: From the Late Glacial to the Present - FundacAo para a Ciencia e a Tecnologia(FCT), Portugal [PTDC/CTA-GEO/29029/2017]
  7. Agence Nationale de la Recherche [ANR-20-CE01-0013, ANR-14-CE01-0001, ANR-16-CE01-0011]
  8. U.S. Department of Energy, Office of Science, Office of Biological and Environmental Research, Climate and Environmental Sciences Division, Regional & Global Model Analysis Program [DE-AC02-05CH11231]
  9. Environmental Resilience Institute - Indiana University's Prepared for Environmental Change Grand Challenge initiative
  10. Ridge to Reef Graduate Training Program - NSF-NRT [DGE-1735040]
  11. Australian Government Research Training Program Scholarship
  12. Australian Research Council [DE180100638]
  13. National Computational Infrastructure Australia
  14. U.S. Department of Energy, Office of Science, Office of Biological & Environmental Research (BER), Regional and Global Model Analysis (RGMA) component of the Earth and Environmental System Modeling Program [DE-SC0022070]
  15. National Science Foundation (NSF) [IA 1947282]
  16. National Center for Atmospheric Research (NCAR) - NSF [1852977]
  17. Center for Western Weather and Water Extremes (CW3E) at Scripps Institute for Oceanography at the University of California, San Diego
  18. Agence Nationale de la Recherche (ANR) [ANR-20-CE01-0013] Funding Source: Agence Nationale de la Recherche (ANR)
  19. Fundação para a Ciência e a Tecnologia [PTDC/CTA-GEO/29029/2017] Funding Source: FCT

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Atmospheric rivers play a crucial role in the hydrologic cycle by transporting water vapor poleward and causing precipitation, but their detection in large datasets still contains a lot of uncertainty. By comparing different algorithms and datasets, they found that the results of detection tools vary in different seasons and datasets.
Atmospheric rivers, or long but narrow regions of enhanced water vapor transport, are an important component of the hydrologic cycle as they are responsible for much of the poleward transport of water vapor and result in precipitation, sometimes extreme in intensity. Despite their importance, much uncertainty remains in the detection of atmospheric rivers in large datasets such as reanalyses and century scale climate simulations. To understand this uncertainty, the Atmospheric River Tracking Method Intercomparison Project (ARTMIP) developed tiered experiments, including the Tier 2 Reanalysis Intercomparison that is presented here. Eleven detection algorithms submitted hourly tags--binary fields indicating the presence or absence of atmospheric rivers--of detected atmospheric rivers in the Modern Era Retrospective Analysis for Research and Applications, version 2 (MERRA-2) and European Centre for Medium-Range Weather Forecasts' Reanalysis Version 5 (ERA5) as well as six-hourly tags in the Japanese 55-year Reanalysis (JRA-55). Due to a higher climatological mean for integrated water vapor transport in MERRA-2, atmospheric rivers were detected more frequently relative to the other two reanalyses, particularly in algorithms that use a fixed threshold for water vapor transport. The finer horizontal resolution of ERA5 resulted in narrower atmospheric rivers and an ability to detect atmospheric rivers along resolved coastlines. The fraction of hemispheric area covered by ARs varies throughout the year in all three reanalyses, with different atmospheric river detection tools having different seasonal cycles.

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