Aug 2026· Journal of Geophysical Research - Oceans· Vol 131· 0 citations· 26 references
Abstract
Marine heatwaves (MHWs) exert profound impacts on marine ecosystems and socio‐economic systems. Although individual extreme events have been widely investigated, the mechanisms underlying decadal‐scale abrupt shifts in MHW regimes under global warming remain poorly understood. Here, we identify a pronounced abrupt change in MHW accumulated days over the Gulf Stream (GS) extension around 2013, marked by a stepwise increase of 8.75 days substantially exceeding the long‐term linear trend. Using a random forest framework, we show that a rapid buildup of subsurface ocean heat content (OHC), rather than anomalous surface heat fluxes, is the dominant contributor to this abrupt change. Mechanistic analyses further indicate that this subsurface heat accumulation is dynamically associated with a northward displacement of the Gulf Stream, driven by anomalous southerly winds. By combining observations with CESM2 pacemaker experiments and targeted AGCM sensitivity simulations, we trace the origin of these atmospheric anomalies to an abrupt warming in the subtropical eastern Pacific. This remote forcing excites a transcontinental, quasi‐stationary Rossby wave train, which sustains a deep, equivalent‐barotropic anticyclonic circulation over the GS Extension. Our results identify a previously underappreciated teleconnection linking Pacific climate variability to Atlantic subsurface heat redistribution, underscoring the capacity of remote atmospheric forcing to induce abrupt MHWs abrupt changes in western boundary current regions.
Marine heatwaves (MHWs) are persistent extreme warm events in the ocean that pose substantial threats to marine ecosystems, fisheries, aquaculture, and offshore energy infrastructure. In 2024, the Yellow Sea experienced the most intense MHW on record in terms of cumulative intensity, with sea surface temperature (SST)...
Aimei Wang, Dong Wang, Jingxin Luo et al.· Journal of Marine Science an...· 0 citations
The East/Japan Sea (EJS) is a semi‐enclosed marginal sea that has experienced rapid sea surface temperature (SST) warming exceeding 0.9°C since the 1980s, which has intensified the occurrence of marine heatwaves (MHWs). Its semi‐enclosed nature amplifies the influence of external climate forcing, making reliable projec...
Seok-Geun Oh, Kyung-Geun Lim, Yu-Kyeong Kang et al.· Earth's Future· 0 citations
The 2013–2016 marine heatwave (MHW) in the Northeastern Pacific ranks among the most intense extratropical ocean warming events on record. Its intricate evolution has complicated efforts to understand the underlying dynamics crucial for predicting future MHWs. Here, we track the MHW using a closed, three-dimensional La...
Wenrui Jiang, G. Forget, Yuan-Yuan Song et al.· Nature Communications· 0 citations
Near‐surface wind regimes govern critical Earth system processes including dust mobilization, ocean mixing, and wildfire spread, yet their multi‐decadal evolution under anthropogenic forcing remains poorly constrained. Here we quantify extreme wind frequency changes (1981–2024) using ERA5‐Land reanalysis with a monthly...
Adil Salhi, E. Heggy· Journal of Geophysical Resea...· 0 citations
The warm, swift Gulf Stream (GS) plays a key role in shaping weather and climate patterns across the North Atlantic. Using 31‐year (1993–2023) of continuous satellite altimeter observations, we identify a pronounced intensification of the free‐flowing GS after its separation from the coast beginning around 2014 and per...
Shenfu Dong, M. Goes, D. Volkov et al.· Geophysical Research Letters· 0 citations
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