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On the role of seamounts in upwelling deep-ocean waters through turbulent mixing
Turbulent mixing in the ocean exerts an important control on the rate and structure of the overturning circulation. However, the balance of processes underpinning this mixing is subject to significant uncertainties, limiting our understanding of the overturning’s deep upwelling limb. Here, we investigate the hitherto primarily neglected role of tens of thousands of seamounts in sustaining deep-ocean upwelling. Dynamical theory indicates that seamounts may stir and mix deep waters by generating lee waves and topographic wake vortices. At low latitudes, stirring and mixing are predicted to be enhanced by a layered vortex regime in the wakes. Using three realistic regional simulations spanning equatorial to middle latitudes, we show that layered wake vortices and elevated mixing are widespread around seamounts. We identify scalings that relate mixing rate within seamount wakes to topographic and hydrographic parameters. We then apply such scalings to a global seamount dataset and an ocean climatology to show that seamount-generated mixing makes an important contribution to the upwelling of deep waters. Our work thus brings seamounts to the fore of the deep-ocean mixing problem and urges observational, theoretical, and modeling efforts toward incorporating the seamounts’ mixing effects in conceptual and numerical ocean circulation models.
Keyword(s)
seamounts, ocean, mixing, upwelling, circulation
Full Text
File | Pages | Size | Access | |
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Publisher's official version | 10 | 27 Mo | ||
Movie S1. The movie available at: https://drive.google.com/file/d/1yJ8ocUSYfPafhF08qYYCunJlgdeRc2BK/view?usp=drive_link shows relative vorticity at 2600 m and 3000 m depths and along... | - | 34 Mo | ||
Movie S2. The movie available at: https://drive.google.com/file/d/1DlqmIYzukzhxiQwmlc3b4-KDmjeKr8hG/view?usp=drive_link shows relative vorticity at 2800 m depth and along a vertical section for the .. | - | 18 Mo | ||
Movie S3. The movie available at: https://drive.google.com/file/d/1dkGXndbZ9wwrJ8yhTQ1Vi6gN-iZGPfQ4/view?usp=drive_link shows relative vorticity at 4000 m and along a vertical section for ... | - | 49 Mo |