World Ocean Circulation Experiment – Argo Global Hydrographic Climatology
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Published:2018-09-27
Issue:5
Volume:14
Page:1127-1146
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ISSN:1812-0792
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Container-title:Ocean Science
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language:en
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Short-container-title:Ocean Sci.
Abstract
Abstract. The paper describes the new gridded World Ocean Circulation Experiment-Argo Global
Hydrographic Climatology (WAGHC). The climatology has a 1∕4∘ spatial resolution resolving the annual cycle of temperature and salinity on
a monthly basis. Two versions of the climatology were produced and differ
with respect to whether the spatial interpolation was performed on isobaric or isopycnal
surfaces, respectively. The WAGHC climatology is based on the quality controlled
temperature and salinity profiles obtained before January 2016, and the
average climatological year is in the range from 2008 to 2012. To avoid biases due to the significant step-like decrease of the data below
2 km, the profile extrapolation procedure is implemented. We compare the
WAGHC climatology to the 1∕4∘ resolution isobarically averaged WOA13
climatology, produced by the NOAA Ocean Climate Laboratory (Locarnini et
al., 2013) and diagnose a generally good agreement between these two gridded
products. The differences between the two climatologies are basically attributed
to the interpolation method and the considerably extended data
basis. Specifically, the WAGHC climatology improved the representation of
the thermohaline structure, in both the data poor polar regions and
several data abundant regions like the Baltic Sea, the Caspian sea, the Gulf of
California, the Caribbean Sea, and the Weddell Sea. Further, the dependence of
the ocean heat content anomaly (OHCA) time series on the baseline
climatology was tested. Since the 1950s, both of the baseline climatologies
produce almost identical OHCA time series. The gridded dataset can be found
at https://doi.org/10.1594/WDCC/WAGHC_V1.0 (Gouretski, 2018).
Publisher
Copernicus GmbH
Subject
Cell Biology,Developmental Biology,Embryology,Anatomy
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