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    Ocean Heat Storage in Response to Changing Ocean Circulation Processes

    Source: Journal of Climate:;2020:;volume( 33 ):;issue: 021::page 9065
    Author:
    Dias, Fabio Boeira;Fiedler, R.;Marsland, S. J.;Domingues, C. M.;Clément, L.;Rintoul, S. R.;Mcdonagh, E. L.;Mata, M. M.;Savita, A.
    DOI: 10.1175/JCLI-D-19-1016.1
    Publisher: American Meteorological Society
    Abstract: Ocean heat storage due to local addition of heat (“added”) and due to changes in heat transport (“redistributed”) were quantified in ocean-only 2xCO2 simulations. While added heat storage dominates globally, redistribution makes important regional contributions, especially in the tropics. Heat redistribution is dominated by circulation changes, summarized by the super-residual transport, with only minor effects from changes in vertical mixing. While previous studies emphasized the contribution of redistribution feedback at high latitudes, this study shows that redistribution of heat also accounts for 65% of heat storage at low latitudes and 25% in the midlatitude (35°–50°S) Southern Ocean. Tropical warming results from the interplay between increased stratification and equatorward heat transport by the subtropical gyres, which redistributes heat from the subtropics to lower latitudes. The Atlantic pattern is remarkably distinct from other basins, resulting in larger basin-average heat storage. Added heat storage is evenly distributed throughout midlatitude Southern Ocean and dominates the total storage. However, redistribution stores heat north of the Antarctic Circumpolar Current in the Atlantic and Indian sectors, having an important contribution to the peak of heat storage at 45°S. Southern Ocean redistribution results from intensified heat convergence in the subtropical front and reduced stratification in response to surface heat, freshwater, and momentum flux perturbations. These results highlight that the distribution of ocean heat storage reflects both passive uptake of heat and active redistribution of heat by changes in ocean circulation processes. The redistributed heat transport must therefore be better understood for accurate projection of changes in ocean heat uptake efficiency, ocean heat storage, and thermosteric sea level.
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      Ocean Heat Storage in Response to Changing Ocean Circulation Processes

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4264278
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    contributor authorDias, Fabio Boeira;Fiedler, R.;Marsland, S. J.;Domingues, C. M.;Clément, L.;Rintoul, S. R.;Mcdonagh, E. L.;Mata, M. M.;Savita, A.
    date accessioned2022-01-30T17:58:17Z
    date available2022-01-30T17:58:17Z
    date copyright9/24/2020 12:00:00 AM
    date issued2020
    identifier issn0894-8755
    identifier otherjclid191016.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4264278
    description abstractOcean heat storage due to local addition of heat (“added”) and due to changes in heat transport (“redistributed”) were quantified in ocean-only 2xCO2 simulations. While added heat storage dominates globally, redistribution makes important regional contributions, especially in the tropics. Heat redistribution is dominated by circulation changes, summarized by the super-residual transport, with only minor effects from changes in vertical mixing. While previous studies emphasized the contribution of redistribution feedback at high latitudes, this study shows that redistribution of heat also accounts for 65% of heat storage at low latitudes and 25% in the midlatitude (35°–50°S) Southern Ocean. Tropical warming results from the interplay between increased stratification and equatorward heat transport by the subtropical gyres, which redistributes heat from the subtropics to lower latitudes. The Atlantic pattern is remarkably distinct from other basins, resulting in larger basin-average heat storage. Added heat storage is evenly distributed throughout midlatitude Southern Ocean and dominates the total storage. However, redistribution stores heat north of the Antarctic Circumpolar Current in the Atlantic and Indian sectors, having an important contribution to the peak of heat storage at 45°S. Southern Ocean redistribution results from intensified heat convergence in the subtropical front and reduced stratification in response to surface heat, freshwater, and momentum flux perturbations. These results highlight that the distribution of ocean heat storage reflects both passive uptake of heat and active redistribution of heat by changes in ocean circulation processes. The redistributed heat transport must therefore be better understood for accurate projection of changes in ocean heat uptake efficiency, ocean heat storage, and thermosteric sea level.
    publisherAmerican Meteorological Society
    titleOcean Heat Storage in Response to Changing Ocean Circulation Processes
    typeJournal Paper
    journal volume33
    journal issue21
    journal titleJournal of Climate
    identifier doi10.1175/JCLI-D-19-1016.1
    journal fristpage9065
    journal lastpage9082
    treeJournal of Climate:;2020:;volume( 33 ):;issue: 021
    contenttypeFulltext
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