Direct observation of wave-coherent pressure work in the atmospheric boundary layer
Direct observation of wave-coherent pressure work in the atmospheric boundary layer
Date
2024-01-23
Authors
Zippel, Seth F.
Edson, James B.
Scully, Malcolm E.
Keefe, Oaklin R.
Edson, James B.
Scully, Malcolm E.
Keefe, Oaklin R.
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DOI
10.1175/jpo-d-23-0097.1
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Keywords
Wind waves
Atmosphere-ocean interaction
Boundary layer
Marine boundary layer
In situ atmospheric observations
Atmosphere-ocean interaction
Boundary layer
Marine boundary layer
In situ atmospheric observations
Abstract
Surface waves grow through a mechanism in which atmospheric pressure is offset in phase from the wavy surface. A pattern of low atmospheric pressure over upward wave orbital motions (leeward side) and high pressure over downward wave orbital motions (windward side) travels with the water wave, leading to a pumping of kinetic energy from the atmospheric boundary layer into the waves. This pressure pattern persists above the air–water interface, modifying the turbulent kinetic energy in the atmospheric wave-affected boundary layer. Here, we present field measurements of wave-coherent atmospheric pressure and velocity to elucidate the transfer of energy from the atmospheric turbulence budget into waves through wave-coherent atmospheric pressure work. Measurements show that the phase between wave-coherent pressure and velocity is shifted slightly above 90° when wind speed exceeds the wave phase speed, allowing for a downward energy flux via pressure work. Although previous studies have reported wave-coherent pressure, to the authors’ knowledge, these are the first reported field measurements of wave-coherent pressure work. Measured pressure work cospectra are consistent with an existing model for atmospheric pressure work. The implications for these measurements and their importance to the turbulent kinetic energy budget are discussed.
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Author Posting. ©American Meteorological Society, 2024. This article is posted here by permission of American Meteorological Society for personal use, not for redistribution. The definitive version was published in Zippel, S., Edson, J., Scully, M., & Keefe, O. (2023). Direct observation of wave-coherent pressure work in the atmospheric boundary layer. Journal of Physical Oceanography, https://doi.org/10.1175/jpo-d-23-0097.1.
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Zippel, S., Edson, J., Scully, M., & Keefe, O. (2023). Direct observation of wave-coherent pressure work in the atmospheric boundary layer. Journal of Physical Oceanography.