An assessment of air–sea heat fluxes from ocean and coupled reanalyses

被引:0
|
作者
Maria Valdivieso
Keith Haines
Magdalena Balmaseda
You-Soon Chang
Marie Drevillon
Nicolas Ferry
Yosuke Fujii
Armin Köhl
Andrea Storto
Takahiro Toyoda
Xiaochun Wang
Jennifer Waters
Yan Xue
Yonghong Yin
Bernard Barnier
Fabrice Hernandez
Arun Kumar
Tong Lee
Simona Masina
K. Andrew Peterson
机构
[1] University of Reading,National Centre for Earth Observation (NCEO), Department of Meteorology
[2] European Centre for Medium-Range Weather Forecasts (ECMWF),Geophysical Fluid Dynamic Laboratory
[3] National Oceanic and Atmospheric Administration (GFDL/NOAA),Department of Earth Science
[4] Kongju National University,Meteorological Research Institute (MRI)
[5] Mercator-Océan,Joint Institute for Regional Earth System Science and Engineering
[6] Japan Meteorological Agency (JMA),Climate Prediction Center
[7] University of Hamburg,Centre for Australia Weather and Climate Research
[8] Centro Euro-Mediterraneo sui Cambiamenti Climatici (CMCC),Laboratoire de Glaciologie et Géophysique de l’Environnement (LGGE)
[9] University of California,Jet Propulsion Laboratory (JPL)
[10] Met Office,undefined
[11] NOAA/NWS/NCEP,undefined
[12] Bureau of Meteorology (BOM),undefined
[13] Centre National de Recherche Scientifique (CNRS),undefined
[14] Institut de Recherche pour le Developpement (IRD),undefined
[15] California Institute of Technology,undefined
来源
Climate Dynamics | 2017年 / 49卷
关键词
Surface heat fluxes; Assimilation fluxes; Flux variability; Flux comparisons with in situ buoy flux data; Ocean and coupled reanalyses;
D O I
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中图分类号
学科分类号
摘要
Sixteen monthly air–sea heat flux products from global ocean/coupled reanalyses are compared over 1993–2009 as part of the Ocean Reanalysis Intercomparison Project (ORA-IP). Objectives include assessing the global heat closure, the consistency of temporal variability, comparison with other flux products, and documenting errors against in situ flux measurements at a number of OceanSITES moorings. The ensemble of 16 ORA-IP flux estimates has a global positive bias over 1993–2009 of 4.2 ± 1.1 W m−2. Residual heat gain (i.e., surface flux + assimilation increments) is reduced to a small positive imbalance (typically, +1–2 W m−2). This compensation between surface fluxes and assimilation increments is concentrated in the upper 100 m. Implied steady meridional heat transports also improve by including assimilation sources, except near the equator. The ensemble spread in surface heat fluxes is dominated by turbulent fluxes (>40 W m−2 over the western boundary currents). The mean seasonal cycle is highly consistent, with variability between products mostly <10 W m−2. The interannual variability has consistent signal-to-noise ratio (~2) throughout the equatorial Pacific, reflecting ENSO variability. Comparisons at tropical buoy sites (10°S–15°N) over 2007–2009 showed too little ocean heat gain (i.e., flux into the ocean) in ORA-IP (up to 1/3 smaller than buoy measurements) primarily due to latent heat flux errors in ORA-IP. Comparisons with the Stratus buoy (20°S, 85°W) over a longer period, 2001–2009, also show the ORA-IP ensemble has 16 W m−2 smaller net heat gain, nearly all of which is due to too much latent cooling caused by differences in surface winds imposed in ORA-IP.
引用
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页码:983 / 1008
页数:25
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