Parsing the kinetic energy budget of the ocean surface mixed layer

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Date
2022-01-10
Authors
Zippel, Seth F.
Farrar, J. Thomas
Zappa, Christopher J.
Plueddemann, Albert J.
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DOI
10.1029/2021GL095920
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Keywords
Air/sea interaction
Turbulence
Mixed layer
Wind work
Boundary layer
Waves
Abstract
The total rate of work done on the ocean by the wind is of considerable interest for understanding global energy balances, as the energy from the wind drives ocean currents, grows surface waves, and forces vertical mixing. A large but unknown fraction of this atmospheric energy is dissipated by turbulence in the upper ocean. The focus of this work is twofold. First, we describe a framework for evaluating the vertically integrated turbulent kinetic energy (TKE) equation using measurable quantities from a surface mooring, showing the connection to the atmospheric, mean oceanic, and wave energy. Second, we use this framework to evaluate turbulent energetics in the mixed layer using 10 months of mooring data. This evaluation is made possible by recent advances in estimating TKE dissipation rates from long-enduring moorings. We find that surface fluxes are balanced by TKE dissipation rates in the mixed layer to within a factor of two.
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© The Author(s), 2022. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Zippel, S. F., Farrar, J. T., Zappa, C. J., & Plueddemann, A. J. Parsing the kinetic energy budget of the ocean surface mixed layer. Geophysical Research Letters, 49(2), (2022): 2021GL095920, https://doi.org/10.1029/2021GL095920.
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Zippel, S. F., Farrar, J. T., Zappa, C. J., & Plueddemann, A. J. (2022). Parsing the kinetic energy budget of the ocean surface mixed layer. Geophysical Research Letters, 49(2), e2021GL095920.
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