4.5 Article

Surface atmospheric forcing as the driver of long-term pathways and timescales of ocean ventilation

Journal

OCEAN SCIENCE
Volume 17, Issue 4, Pages 935-952

Publisher

COPERNICUS GESELLSCHAFT MBH
DOI: 10.5194/os-17-935-2021

Keywords

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Funding

  1. Natural Environment Research Council [NE/P019293/1]
  2. European Union Horizon 2020 [817578]
  3. NERC [NE/P019293/1] Funding Source: UKRI

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By utilizing numerical simulations with an ocean-sea-ice model, this study investigates the subduction of water and uptake of properties from the atmosphere by the ocean, along with the transport and redistribution of these properties over time. Through the use of simulated seawater vintage dyes, the analysis shows the regional and depth distribution of water and associated properties absorption, aiding in understanding the temporal and spatial variability of passive tracers in the ocean.
The ocean takes up 93% of the excess heat in the climate system and approximately a quarter of the anthropogenic carbon via air-sea fluxes. Ocean ventilation and subduction are key processes that regulate the transport of water (and associated properties) from the surface mixed layer, which is in contact with the atmosphere, to the ocean's interior, which is isolated from the atmosphere for a timescale set by the large-scale circulation. Utilising numerical simulations with an ocean-sea-ice model using the NEMO (Nucleus for European Modelling of the Ocean) framework, we assess where the ocean subducts water and, thus, takes up properties from the atmosphere; how ocean currents transport and redistribute these properties over time; and how, where, and when these properties are ventilated. Here, the strength and patterns of the net uptake of water and associated properties are analysed by including simulated seawater vintage dyes that are passive tracers released annually into the ocean surface layers between 1958 and 2017. The dyes' distribution is shown to capture years of strong and weak convection at deep and mode water formation sites in both hemispheres, especially when compared to observations in the North Atlantic subpolar gyre. Using this approach, relevant to any passive tracer in the ocean, we can evaluate the regional and depth distribution of the tracers, and determine their variability on interannual to multidecadal timescales. We highlight the key role of variations in the subduction rate driven by changes in surface atmospheric forcing in setting the different sizes of the long-term inventory of the dyes released in different years and the evolution of their distribution. This suggests forecasting potential for determining how the distribution of passive tracers will evolve, from having prior knowledge of mixed-layer properties, with implications for the uptake and storage of anthropogenic heat and carbon in the ocean.

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