How Deep Argo Will Improve the Deep Ocean in an Ocean Reanalysis

被引:24
|
作者
Gasparin, Florent [1 ]
Hamon, Mathieu [1 ]
Remy, Elisabeth [1 ]
Le Traon, Pierre-Yves [1 ,2 ]
机构
[1] Mercator Ocean Int, Ramonville St Agne, France
[2] IFREMER, Plouzane, France
关键词
Ocean; Thermocline circulation; Bottom currents; bottom water; In situ oceanic observations; Reanalysis data; Oceanic variability; SEA-LEVEL RISE; DATA ASSIMILATION; OVERTURNING CIRCULATION; GLOBAL HEAT; PACIFIC; VARIABILITY; ABYSSAL; SYSTEM; OSSE;
D O I
10.1175/JCLI-D-19-0208.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Global ocean sampling with autonomous floats going to 4000-6000 m, known as the deep Argo array, constitutes one of the next challenges for tracking climate change. The question here is how such a global deep array will impact ocean reanalyses. Based on the different behavior of four ocean reanalyses, we first identified that large uncertainty exists in current reanalyses in representing local heat and freshwater fluxes in the deep ocean (1 W m(-2) and 10 cm yr(-1) regionally). Additionally, temperature and salinity comparison with deep Argo observations demonstrates that reanalysis errors in the deep ocean are of the same size as, or even stronger than, the deep ocean signal. An experimental approach, using the 1/4 degrees GLORYS2V4 (Global Ocean Reanalysis and Simulation) system, is then presented to anticipate how the evolution of the global ocean observing system (GOOS), with the advent of deep Argo, would contribute to ocean reanalyses. Based on observing system simulation experiments (OSSE), which consist in extracting observing system datasets from a realistic simulation to be subsequently assimilated in an experimental system, this study suggests that a global deep Argo array of 1200 floats will significantly constrain the deep ocean by reducing temperature and salinity errors by around 50%. Our results also show that such a deep global array will help ocean reanalyses to reduce error in temperature changes below 2000 m, equivalent to global ocean heat fluxes from 0.15 to 0.07 W m(-2), and from 0.26 to 0.19 W m(-2) for the entire water column. This work exploits the capabilities of operational systems to provide comprehensive information for the evolution of the GOOS.
引用
收藏
页码:77 / 94
页数:18
相关论文
共 50 条
  • [31] Upper-ocean changes with hurricane-strength wind events: a study using Argo profiles and an ocean reanalysis
    Sala, Jacopo
    Giglio, Donata
    Hu, Addison
    Kuusela, Mikael
    Wood, Kimberly M.
    Lee, Ann B.
    OCEAN SCIENCE, 2024, 20 (06) : 1441 - 1455
  • [32] SURFACE-OCEAN COLOR AND DEEP-OCEAN CARBON FLUX - HOW CLOSE A CONNECTION
    DEUSER, WG
    MULLERKARGER, FE
    EVANS, RH
    BROWN, OB
    ESAIAS, WE
    FELDMAN, GC
    DEEP-SEA RESEARCH PART A-OCEANOGRAPHIC RESEARCH PAPERS, 1990, 37 (08): : 1331 - 1343
  • [33] Deep ocean influence on upper ocean baroclinic instability
    Olascoaga, MJ
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2001, 106 (C11) : 26863 - 26877
  • [34] The origin of deep ocean microseisms in the North Atlantic Ocean
    Kedar, Sharon
    Longuet-Higgins, Michael
    Webb, Frank
    Graham, Nicholas
    Clayton, Robert
    Jones, Cathleen
    PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2008, 464 (2091): : 777 - 793
  • [35] DEEP OCEAN MAGNETOTELLURIC SOUNDING IN NORTHEAST PACIFIC OCEAN
    CHAVE, AD
    VONHERZEN, RP
    POEHLS, KA
    DANIEL, TH
    COX, CS
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1978, 59 (04): : 269 - 269
  • [36] Deep ocean iron balance
    Homoky, William B.
    NATURE GEOSCIENCE, 2017, 10 (03) : 162 - 164
  • [37] DEEP OCEAN INSPECTION EQUIPMENT
    PATTERSON, RB
    REPORT OF NRL PROGRESS, 1966, (JAN): : 35 - +
  • [38] INFRAGRAVITY WAVES IN THE DEEP OCEAN
    WEBB, SC
    ZHANG, X
    CRAWFORD, W
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1991, 96 (C2) : 2723 - 2736
  • [39] PROSPECTING FOR SCIENCE IN THE DEEP OCEAN
    FIFIELD, R
    NEW SCIENTIST, 1984, 101 (1398) : 8 - 8
  • [40] Moving windows to the deep ocean
    Veronica Tamsitt
    Nature Climate Change, 2018, 8 : 941 - 942