Rapid Downwelling of Tracer Particles Across the Boundary Layer and Into the Pycnocline at Submesoscale Ocean Fronts

被引:0
|
作者
Pham, Hieu T. [1 ]
Verma, Vicky [2 ]
Sarkar, Sutanu [1 ,3 ]
Shcherbina, Andrey Y. [4 ]
D'Asaro, Eric A. [4 ]
机构
[1] Univ Calif San Diego, Mech & Aerosp Engn, La Jolla, CA 92093 USA
[2] Tel Aviv Univ, Porter Sch Environm & Earth Sci, Tel Aviv, Israel
[3] Univ Calif San Diego, Scripps Inst Oceanog, La Jolla, CA USA
[4] Univ Washington, Appl Phys Lab, Seattle, WA USA
关键词
subduction; turbulence; submesoscale front; Lagrangian floats; INSTABILITY; SUBDUCTION; DISPERSION; TURBULENCE; TRANSPORT;
D O I
10.1029/2024GL109674
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
A neutrally buoyant float deployed in an atmospherically driven turbulent ocean boundary layer on the dense side of a submesoscale front was repeatedly carried across the boundary layer by the turbulence and then trapped beneath the slumping front. Lagrangian particles in a large-eddy simulation of a similar baroclinically unstable front forced by surface cooling move along convergent surface filaments toward filament junctions. They are also caught by convective plumes that downwell them at speeds similar to those of the float. Subsequently, some are trapped in the pycnocline by frontal slumping due to ageostrophic secondary frontal circulations. In both observations and simulations, boundary layer turbulence and frontal circulations work together to trap and subduct particles from the mixed layer. The small-scale boundary layer motions move them vertically within the boundary layer and larger, submesoscale frontal circulations move them laterally out of the boundary layer and under the slumping fronts. The present study provides evidence for enhanced tracer transport at ocean fronts in both observation and numerical simulation. The finding suggests a pathway for pollutants (e.g., microplastics) to accumulate in the ocean interior. The transport pathway is driven by both large-scale eddy dynamics and finescale turbulence, of which the latter plays a larger role in downwelling speed while the spatial sites of subduction are determined by the former. Lagrangian float observations reveal downwelling across and trapping beneath the turbulent mixed layer at a submesoscale front Similar particle trajectories in convectively forced LES result from joint effects of boundary layer turbulence and submesoscale dynamics Downwelling is due to finescale convective plumes while trapping and restratificationare due to the submesoscale circulation of the front
引用
收藏
页数:10
相关论文
共 15 条
  • [1] Seasonality of submesoscale flows in the ocean surface boundary layer
    Buckingham, Christian E.
    Garabato, Alberto C. Naveira
    Thompson, Andrew F.
    Brannigan, Liam
    Lazar, Ayah
    Marshall, David P.
    Nurser, A. J. George
    Damerell, Gillian
    Heywood, Karen J.
    Belcher, Stephen E.
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2016, 43 (05) : 2118 - 2126
  • [2] Response of the Atmospheric Boundary Layer to Submesoscale Sea Surface Temperature Fronts
    Wenegrat, J. O.
    Arthur, R. S.
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2018, 45 (24) : 13505 - 13512
  • [3] The Contribution of Surface and Submesoscale Processes to Turbulence in the Open Ocean Surface Boundary Layer
    Buckingham, Christian E.
    Lucas, Natasha S.
    Belcher, Stephen E.
    Rippeth, Tom P.
    Grant, Alan L. M.
    Le Sommer, Julien
    Ajayi, Adekunle Opeoluwa
    Garabato, Alberto C. Naveira
    [J]. JOURNAL OF ADVANCES IN MODELING EARTH SYSTEMS, 2019, 11 (12) : 4066 - 4094
  • [4] EVIDENCE FOR SLOW MIXING ACROSS THE PYCNOCLINE FROM AN OPEN-OCEAN TRACER-RELEASE EXPERIMENT
    LEDWELL, JR
    WATSON, AJ
    LAW, CS
    [J]. NATURE, 1993, 364 (6439) : 701 - 703
  • [5] Marine atmospheric boundary layer over some Southern Ocean fronts during the IPY BGH 2008 cruise
    Messager, C.
    Speich, S.
    Key, E.
    [J]. OCEAN SCIENCE, 2012, 8 (06) : 1001 - 1023
  • [6] Atmospheric boundary-layer across Hadley and Ferrel cells over the Indian Ocean
    Bhat, G. S.
    Rao, Prashanth L.
    Sangolli, V. G.
    [J]. CURRENT SCIENCE, 2010, 99 (10): : 1378 - 1383
  • [7] Wind- and Wave-Driven Ocean Surface Boundary Layer in a Frontal Zone: Roles of Submesoscale Eddies and Ekman-Stokes Transport
    Yuan, Jianguo
    Liang, Jun-Hong
    [J]. JOURNAL OF PHYSICAL OCEANOGRAPHY, 2021, 51 (08) : 2655 - 2680
  • [8] Rapid restratification of the ocean surface boundary layer during the suppressed phase of the MJO in austral spring
    Hsu, Je-Yuan
    Feng, Ming
    Wijffels, Susan
    [J]. ENVIRONMENTAL RESEARCH LETTERS, 2022, 17 (02)
  • [9] ANALYSIS OF MEDNIKOVS EQUATION FOR TRANSPORT OF AEROSOL-PARTICLES ACROSS A TURBULENT BOUNDARY-LAYER
    BEECKMANS, JM
    [J]. CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1974, 52 (02): : 273 - 275
  • [10] Continental impact on marine boundary layer coarse particles over the Atlantic Ocean between Europe and Antarctica
    Niemi, JV
    Tervahattu, H
    Virkkula, A
    Hillamo, R
    Teinilä, K
    Koponen, IK
    Kulmala, M
    [J]. ATMOSPHERIC RESEARCH, 2005, 75 (04) : 301 - 321