Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag

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Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag. / Lenn, Yueng-Djern; Chereskin, Teresa ; Sprintall, Janet et al.
In: Journal of Physical Oceanography, Vol. 41, No. 7, 01.07.2011, p. 1385-1407.

Research output: Contribution to journalArticlepeer-review

HarvardHarvard

Lenn, Y-D, Chereskin, T, Sprintall, J & McClean, J 2011, 'Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag', Journal of Physical Oceanography, vol. 41, no. 7, pp. 1385-1407. https://doi.org/10.1175/JPO-D-10-05017.1

APA

Lenn, Y.-D., Chereskin, T., Sprintall, J., & McClean, J. (2011). Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag. Journal of Physical Oceanography, 41(7), 1385-1407. https://doi.org/10.1175/JPO-D-10-05017.1

CBE

Lenn Y-D, Chereskin T, Sprintall J, McClean J. 2011. Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag. Journal of Physical Oceanography. 41(7):1385-1407. https://doi.org/10.1175/JPO-D-10-05017.1

MLA

VancouverVancouver

Lenn YD, Chereskin T, Sprintall J, McClean J. Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag. Journal of Physical Oceanography. 2011 Jul 1;41(7):1385-1407. doi: https://doi.org/10.1175/JPO-D-10-05017.1

Author

Lenn, Yueng-Djern ; Chereskin, Teresa ; Sprintall, Janet et al. / Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag. In: Journal of Physical Oceanography. 2011 ; Vol. 41, No. 7. pp. 1385-1407.

RIS

TY - JOUR

T1 - Near-Surface Eddy Heat and Momentum Fluxes in the Antarctic Circumpolar Current in Drake Passag

AU - Lenn, Yueng-Djern

AU - Chereskin, Teresa

AU - Sprintall, Janet

AU - McClean, Julie

PY - 2011/7/1

Y1 - 2011/7/1

N2 - The authors present new estimates of the eddy momentum and heat fluxes from repeated high-resolution upper-ocean velocity and temperature observations in Drake Passage and interpret their role in the regional Antarctic Circumpolar Current (ACC) momentum balance. The observations span 7 yr and are compared to eddy fluxes estimated from a 3-yr set of output archived from an eddy-resolving global Parallel Ocean Program (POP) numerical simulation. In both POP and the observations, the stream-averaged cross-stream eddy momentum fluxes correspond to forcing consistent with both a potential vorticity flux into the axis of the Subantarctic Front (SAF) and a sharpening of all three main ACC fronts through Drake Passage. Further, the POP analysis indicates that the mean momentum advection terms reflect the steering of the mean ACC fronts and are not fully balanced by the eddy momentum forcing, which instead impacts the strength and number of ACC fronts.The comparison between POP and observed eddy heat fluxes was less favorable partly because of model bias in the water mass stratification. Observed cross-stream eddy heat fluxes are generally surface intensified and poleward in the ACC fronts, with values up to approximately −290 ± 80 kW m−2 in the Polar and Southern ACC Fronts. Interfacial form stresses FT, derived from observed eddy heat fluxes in the SAF, show little depth dependence below the Ekman layer. Although FT appears to balance the surface wind stress directly, the estimated interfacial form stress divergence is only an order of magnitude greater than the eddy momentum forcing in the SAF. Thus, although the eddy momentum forcing is of secondary importance in the momentum balance, its effect is not entirely negligible.

AB - The authors present new estimates of the eddy momentum and heat fluxes from repeated high-resolution upper-ocean velocity and temperature observations in Drake Passage and interpret their role in the regional Antarctic Circumpolar Current (ACC) momentum balance. The observations span 7 yr and are compared to eddy fluxes estimated from a 3-yr set of output archived from an eddy-resolving global Parallel Ocean Program (POP) numerical simulation. In both POP and the observations, the stream-averaged cross-stream eddy momentum fluxes correspond to forcing consistent with both a potential vorticity flux into the axis of the Subantarctic Front (SAF) and a sharpening of all three main ACC fronts through Drake Passage. Further, the POP analysis indicates that the mean momentum advection terms reflect the steering of the mean ACC fronts and are not fully balanced by the eddy momentum forcing, which instead impacts the strength and number of ACC fronts.The comparison between POP and observed eddy heat fluxes was less favorable partly because of model bias in the water mass stratification. Observed cross-stream eddy heat fluxes are generally surface intensified and poleward in the ACC fronts, with values up to approximately −290 ± 80 kW m−2 in the Polar and Southern ACC Fronts. Interfacial form stresses FT, derived from observed eddy heat fluxes in the SAF, show little depth dependence below the Ekman layer. Although FT appears to balance the surface wind stress directly, the estimated interfacial form stress divergence is only an order of magnitude greater than the eddy momentum forcing in the SAF. Thus, although the eddy momentum forcing is of secondary importance in the momentum balance, its effect is not entirely negligible.

U2 - https://doi.org/10.1175/JPO-D-10-05017.1

DO - https://doi.org/10.1175/JPO-D-10-05017.1

M3 - Article

VL - 41

SP - 1385

EP - 1407

JO - Journal of Physical Oceanography

JF - Journal of Physical Oceanography

SN - 0022-3670

IS - 7

ER -