Javascript must be enabled to continue!
Role of Ocean Memory in Subpolar North Atlantic Decadal Variability
View through CrossRef
The decadal variability in the subpolar North Atlantic Ocean heat content is significantly influenced by the atmosphere. The impact of seasonal-annual atmospheric perturbations lasts for many years in the oceans due to the ocean's long memory. The anomalous air-sea heat fluxes and winds associated with atmospheric perturbations first rapidly modify upper ocean temperatures, initiating a short-term or local ocean response. Subsequently, these modifications can alter meridional heat transport rates, leading to anomalous heat convergence persisting for several years—a long-term or far-field ocean response—in the subpolar ocean (Khatri et al., 2022, Geophys Res Lett).We propose a novel technique that incorporates these two ocean responses to evaluate ocean memory and examine its role in driving decadal ocean variability. Here, we combine heat budget analysis with linear response theory to examine how the North Atlantic Oscillation (NAO), which captures about 40% of atmospheric variability, controls the decadal variability in upper ocean temperatures and quantify the associated ocean memory. Utilising CMIP6 climate model outputs and observations, our estimations suggest ocean memory for the subpolar North Atlantic to be between 10 to 20 years. Furthermore, we find that the NAO strongly influences long-term ocean variability, explaining 30% to 40% of subpolar ocean heat content variability on decadal timescales. Specifically, the impact of seasonal atmospheric events on the ocean persists for more than a decade through a combination of local and far-field ocean responses. The proposed ocean memory-based framework, integrating local and far-field ocean effects into a single metric, can be utilised to analyse how relatively short-timescale atmospheric variability drives changes in the ocean state over decadal timescales.
Title: Role of Ocean Memory in Subpolar North Atlantic Decadal Variability
Description:
The decadal variability in the subpolar North Atlantic Ocean heat content is significantly influenced by the atmosphere.
The impact of seasonal-annual atmospheric perturbations lasts for many years in the oceans due to the ocean's long memory.
The anomalous air-sea heat fluxes and winds associated with atmospheric perturbations first rapidly modify upper ocean temperatures, initiating a short-term or local ocean response.
Subsequently, these modifications can alter meridional heat transport rates, leading to anomalous heat convergence persisting for several years—a long-term or far-field ocean response—in the subpolar ocean (Khatri et al.
, 2022, Geophys Res Lett).
We propose a novel technique that incorporates these two ocean responses to evaluate ocean memory and examine its role in driving decadal ocean variability.
Here, we combine heat budget analysis with linear response theory to examine how the North Atlantic Oscillation (NAO), which captures about 40% of atmospheric variability, controls the decadal variability in upper ocean temperatures and quantify the associated ocean memory.
Utilising CMIP6 climate model outputs and observations, our estimations suggest ocean memory for the subpolar North Atlantic to be between 10 to 20 years.
Furthermore, we find that the NAO strongly influences long-term ocean variability, explaining 30% to 40% of subpolar ocean heat content variability on decadal timescales.
Specifically, the impact of seasonal atmospheric events on the ocean persists for more than a decade through a combination of local and far-field ocean responses.
The proposed ocean memory-based framework, integrating local and far-field ocean effects into a single metric, can be utilised to analyse how relatively short-timescale atmospheric variability drives changes in the ocean state over decadal timescales.
Related Results
Pathways and impacts of increased Greenland and Arctic freshwater fluxes to the Subpolar North Atlantic
Pathways and impacts of increased Greenland and Arctic freshwater fluxes to the Subpolar North Atlantic
In the coming decades, climate change is expected to lead to increasing freshwater input to the subpolar North Atlantic from Greenland and the Arctic. This could affect the ocean c...
Resilience of the North Atlantic Circulation on Decadal Timescales
Resilience of the North Atlantic Circulation on Decadal Timescales
The circulation of the North Atlantic Ocean plays a vital role in the Earth’s climate system. Numerous studies, primarily through computer simulations, have examined the stability ...
Resilience of the North Atlantic Circulation on Decadal Timescales
Resilience of the North Atlantic Circulation on Decadal Timescales
The circulation of the North Atlantic Ocean plays a vital role in the Earth's climate system. Numerous studies, mainly through computer simulations, have examined the stability of ...
Effects of Contextual Cues on False Memory: A Comparative Experimental Approach
Effects of Contextual Cues on False Memory: A Comparative Experimental Approach
Research on false memory formation using the Deese-Roediger-McDermott (DRM) paradigm has been extensively conducted in Western contexts. Yet, a significant gap remains in experimen...
Towards an "eddy-resolving" climate prediction system
Towards an "eddy-resolving" climate prediction system
<p>We have developed, implemented and preliminary evaluated the performance of the first &#8220;eddy-resolving&#8221; decadal prediction prototype sys...
Access impact of observations
Access impact of observations
The accuracy of the Copernicus Marine Environment and Monitoring Service (CMEMS) ocean analysis and forecasts highly depend on the availability and quality of observations to be as...
Multidecadal Variability of Ocean Climate and Circulation of the North Atlantic Ocean
Multidecadal Variability of Ocean Climate and Circulation of the North Atlantic Ocean
The North Atlantic's surface has been heating up for decades. There was concern that the thermohaline circulation and essential climate variables, such as the seawater temperature ...
Drivers of sea ice decline in the Fram Strait and north of Svalbard 
Drivers of sea ice decline in the Fram Strait and north of Svalbard 
<p>The Arctic Ocean is undergoing rapid change. Satellite observations indicate significant negative Arctic sea ice extent trends in all months and substantial reduct...

