Stationary Rossby waves dominate subduction of anthropogenic carbon in the Southern Ocean
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作者:
Langlais, C. E.
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CSIRO Oceans & Atmosphere, Hobart, Tas 7000, AustraliaCSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
Langlais, C. E.
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Lenton, A.
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CSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
Univ Tasmania, Antarctic Climate & Ecosyst Cooperat Res Ctr, Private Bag 80, Hobart, Tas 7001, Australia
CSIRO Castray Esplanade, Ctr Southern Hemisphere Oceans Res, Hobart, Tas 7000, AustraliaCSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
Lenton, A.
[1
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Matear, R.
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CSIRO Oceans & Atmosphere, Hobart, Tas 7000, AustraliaCSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
Matear, R.
[1
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Monselesan, D.
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CSIRO Oceans & Atmosphere, Hobart, Tas 7000, AustraliaCSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
Monselesan, D.
[1
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Legresy, B.
[1
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Cougnon, E.
[2
,4
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Rintoul, S.
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CSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
Univ Tasmania, Antarctic Climate & Ecosyst Cooperat Res Ctr, Private Bag 80, Hobart, Tas 7001, Australia
CSIRO Castray Esplanade, Ctr Southern Hemisphere Oceans Res, Hobart, Tas 7000, AustraliaCSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
Rintoul, S.
[1
,2
,3
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机构:
[1] CSIRO Oceans & Atmosphere, Hobart, Tas 7000, Australia
[2] Univ Tasmania, Antarctic Climate & Ecosyst Cooperat Res Ctr, Private Bag 80, Hobart, Tas 7001, Australia
[3] CSIRO Castray Esplanade, Ctr Southern Hemisphere Oceans Res, Hobart, Tas 7000, Australia
[4] Univ Tasmania, Inst Marine & Antarctic Studies, IMAS Hobart Private Bag 129, Hobart, Tas 7001, Australia
The Southern Ocean has taken up more than 40% of the total anthropogenic carbon (C-ant) stored in the oceans since the preindustrial era, mainly in subantarctic mode and intermediate waters (SAMW-AAIW). However, the physical mechanisms responsible for the transfer of C-ant into the ocean interior remain poorly understood. Here, we use high resolution (1/10 degrees) ocean simulations to investigate these mechanisms at the SAMW-AAIW subduction hotspots. Mesoscale Stationary Rossby Waves (SRWs), generated where the Antarctic Circumpolar Current interacts with topography, make the dominant contribution to the C-ant transfer in SAMW-AAIW in the Indian and Pacific sectors (66% and 95% respectively). Eddy-resolving simulations reproduce the observed C-ant sequestration in these layers, while lower spatial resolution models, that do not reproduce SRWs, underestimate the inventory of C-ant in these layers by 40% and overestimate the storage in denser layers. A key implication is that climate model simulations, that lack sufficient resolution to represent sequestration by SRWs, are therefore likely to overestimate the residence time of C-ant in the ocean, with implications for simulated rates of climate change.