Modulation of Western South Atlantic Marine Heatwaves by Meridional Ocean Heat Transport

被引:3
|
作者
Goes, Marlos [1 ,2 ]
Dong, Shenfu [2 ]
Foltz, Gregory R. [2 ]
Goni, Gustavo [2 ]
Volkov, Denis L. [1 ,2 ]
Wainer, Ilana [3 ]
机构
[1] Univ Miami, Cooperat Inst Marine & Atmospher Studies, Coral Gables, FL 33124 USA
[2] NOAA, Atlantic Oceanog & Meteorol Lab, Miami, FL 33149 USA
[3] Univ Sao Paulo, Oceanog Inst, Sao Paulo, Brazil
基金
美国海洋和大气管理局;
关键词
marine heatwaves; AMOC; heat budget; propagating modes; sea level; OVERTURNING CIRCULATION; TEMPORAL VARIABILITY; SURFACE-TEMPERATURE; COUPLED VARIABILITY; UNITED-STATES; OSCILLATION; INSTABILITY; IMPACTS; MODEL;
D O I
10.1029/2023JC019715
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Marine heatwaves and cold spells are extreme surface temperature events that have been associated with adverse societal and ecosystem impacts in several regions around the globe. Predicting these events presents a challenge because of their generally short-lived nature and dependence on air-sea interactions, both locally and remotely. Here we analyze oceanic propagating features that promote the occurrence of marine heatwaves and cold spells in the western subtropical South Atlantic. The main interannual feature detected from satellite sea level data since 1993 shows a westward propagating zonal pattern with a periodicity of 3-5 years. The pattern has a significant in-phase correlation with sea surface temperature (SST) anomalies in the western South Atlantic, explaining 82% of the daily extreme warm (90th percentile) and cold (10th percentile) SST anomalies and consequently modulating interannual variations in the intensity and duration of marine heatwave and cold spell events. It is found that meridional oceanic advection plays an important role in the regional heat budget associated with the westward-propagating mode, modulating the meridional exchange of tropical (warm) and extratropical (cold) waters in the western subtropical South Atlantic region and thereby setting a baseline for temperature extremes on interannual timescales. This propagating mode is well correlated (r > 0.6) with the strength of the meridional overturning circulation at 25(degrees)S and 30 degrees S with a lag of approximately 3-9 months. The lagged response provides a potential source of predictability of extreme events in the western South Atlantic.A recent theorem of Diverio-Trapani and Wu-Yau asserts that a compact K & auml;hlermanifold with a K & auml;hler metric of quasi-negative holomorphic sectional curvature isprojective and canonically polarized. This confirms a long-standing conjecture of Yau.We consider the notion of(epsilon, delta)-quasi-negativity, generalizing quasi-negativity, andobtain gap-type theorems for integral Xc1(KX)n>0 in terms of the real bisectional curvatureand weighted orthogonal Ricci curvature. These theorems are also a generalization ofthat results by Zhang-Zheng (arXiv:2010.01314v4) and Chu-Lee-Tam (Trans AmMath Soc 375(11):7925-7944, 2022)
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Characteristics and drivers of marine heatwaves in the western South Atlantic
    Artana, Camila
    Rodrigues, Regina R.
    Fevrier, Juliette
    Coll, Marta
    COMMUNICATIONS EARTH & ENVIRONMENT, 2024, 5 (01):
  • [2] Future Summer Marine Heatwaves in the Western South Atlantic
    Costa, Natasha, V
    Rodrigues, Regina R.
    GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (22)
  • [3] Meridional transport of dissolved inorganic carbon in the South Atlantic Ocean
    Holfort, J
    Johnson, KM
    Schneider, B
    Siedler, G
    Wallace, DWR
    GLOBAL BIOGEOCHEMICAL CYCLES, 1998, 12 (03) : 479 - 499
  • [4] Synergy of In Situ and Satellite Ocean Observations in Determining Meridional Heat Transport in the Atlantic Ocean
    Dong, Shenfu
    Goni, Gustavo
    Domingues, Ricardo
    Bringas, Francis
    Goes, Marlos
    Christophersen, Jonathan
    Baringer, Molly
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2021, 126 (04)
  • [5] Atlantic meridional ocean heat transport at 26° N: impact on subtropical ocean heat content variability
    Sonnewald, M.
    Hirschi, J. J. -M.
    Marsh, R.
    McDonagh, E. L.
    King, B. A.
    OCEAN SCIENCE, 2013, 9 (06) : 1057 - 1069
  • [6] Meridional Oceanic Heat Transport Influences Marine Heatwaves in the Tasman Sea on Interannual to Decadal Timescales
    Behrens, Erik
    Fernandez, Denise
    Sutton, Phil
    FRONTIERS IN MARINE SCIENCE, 2019, 6
  • [7] Geostrophic Velocity Measurement Techniques for the Meridional Overturning Circulation and Meridional Heat Transport in the South Atlantic
    Perez, Renellys C.
    Garzoli, Silvia L.
    Meinen, Christopher S.
    Matano, Ricardo P.
    JOURNAL OF ATMOSPHERIC AND OCEANIC TECHNOLOGY, 2011, 28 (11) : 1504 - 1521
  • [8] Meridional Eddy Heat Transport Variability in the Surface Mixed Layer of the Atlantic Ocean
    Mueller, Vasco
    Melnichenko, Oleg
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2021, 126 (12)
  • [9] Meridional heat transport determined with expandable bathythermographs - Part II: South Atlantic transport
    Garzoli, Silvia L.
    Baringer, Molly O.
    DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2007, 54 (08) : 1402 - 1420
  • [10] MERIDIONAL DISTRIBUTION OF SILICATE IN WESTERN ATLANTIC-OCEAN
    MANN, CR
    COOTE, AR
    GARNER, DM
    DEEP-SEA RESEARCH, 1973, 20 (09): : 791 - 801