Generation and Propagation of Eastern Subpolar North Atlantic Salinity Anomalies

Abstract The Eastern Subpolar North Atlantic (E‐SPNA) upper ocean experiences pronounced interannual salinity variations that influence the global overturning circulation, yet a quantitative understanding of their life cycle remains lacking. Based on an ocean circulation state estimate, we combine budget analysis with particle tracking to quantify the generation and propagation of E‐SPNA salinity anomalies. Analyzing salinity for each day between 1992 and 2017 reveals that changes in circulation, forcing, and stratification contribute similarly to interannual salinity variability. Most anomalies originate within 2 years prior to entering the E‐SPNA, near the Grand Banks and along the North Atlantic Current (NAC). Two salinity extremes are also examined. The 2016 E‐SPNA fresh event primarily resulted from circulation changes near the Grand Banks, with a smaller contribution from vertical diffusion at its onset, whereas the 2007 E‐SPNA salty event arose from a combination of dry atmospheric conditions and Subtropical Gyre expansion along the NAC.

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Publication Details

Journal
Journal of Geophysical Research Oceans
Published
2026-09-30
DOI
https://doi.org/10.1029/2025jc023736
Primary Topic
Oceanographic and Atmospheric Processes
Type
article
Field-Weighted Citation Impact
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article

Generation and Propagation of Eastern Subpolar North Atlantic Salinity Anomalies

Wenrui Jiang, Thomas W. N. Haine
Journal of Geophysical Research Oceans
Oceanographic and Atmospheric Processes
article

Generation and Propagation of Eastern Subpolar North Atlantic Salinity Anomalies

Wenrui Jiang, Thomas W. N. Haine
article en

Abstract

Abstract The Eastern Subpolar North Atlantic (E‐SPNA) upper ocean experiences pronounced interannual salinity variations that influence the global overturning circulation, yet a quantitative understanding of their life cycle remains lacking. Based on an ocean circulation state estimate, we combine budget analysis with particle tracking to quantify the generation and propagation of E‐SPNA salinity anomalies. Analyzing salinity for each day between 1992 and 2017 reveals that changes in circulation, forcing, and stratification contribute similarly to interannual salinity variability. Most anomalies originate within 2 years prior to entering the E‐SPNA, near the Grand Banks and along the North Atlantic Current (NAC). Two salinity extremes are also examined. The 2016 E‐SPNA fresh event primarily resulted from circulation changes near the Grand Banks, with a smaller contribution from vertical diffusion at its onset, whereas the 2007 E‐SPNA salty event arose from a combination of dry atmospheric conditions and Subtropical Gyre expansion along the NAC.

Journal of Geophysical Research OceansVol. 131(10)
Johns Hopkins University (US)
Openalex Percentile: Top 15%
Oceanographic and Atmospheric Processes
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