Interpreting Observed Interactions between Near-Inertial Waves and Mesoscale Eddies

Fuente: arXiv
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Autores principales: Conn, Scott, Fitzgerald, Joseph, Callies, Jörn
Formato: Preprint
Publicado: 2023
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author Conn, Scott
Fitzgerald, Joseph
Callies, Jörn
author_facet Conn, Scott
Fitzgerald, Joseph
Callies, Jörn
contents The evolution of wind-generated near-inertial waves (NIWs) is known to be influenced by the mesoscale eddy field, yet it remains a challenge to disentangle the effects of this interaction in observations. Here, the model of Young and Ben Jelloul (YBJ), which describes NIW evolution in the presence of slowly evolving mesoscale eddies, is compared to observations from a mooring array in the Northeast Atlantic Ocean. The model captures the evolution of both the observed NIW amplitude and phase much more accurately than a slab mixed layer model. The YBJ model allows for the identification of specific physical processes that drive the observed evolution. It reveals that differences in the NIW amplitude across the mooring array are caused by the refractive concentration of NIWs into anticyclones. Advection and wave dispersion also make important contributions to the observed wave evolution. Stimulated generation, a process by which mesoscale kinetic energy acts as a source of NIW potential energy, is estimated to be 20$μ$W/m$^2$ in the region of the mooring array, which is two orders of magnitude smaller than the global average input to mesoscale kinetic energy and likely not an important contribution to the mesoscale kinetic energy budget in this region. Overall, the results show that the YBJ model is a quantitatively useful tool to interpret observations of NIWs.
format Preprint
id arxiv_https___arxiv_org_abs_2308_00889
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Interpreting Observed Interactions between Near-Inertial Waves and Mesoscale Eddies
Conn, Scott
Fitzgerald, Joseph
Callies, Jörn
Atmospheric and Oceanic Physics
The evolution of wind-generated near-inertial waves (NIWs) is known to be influenced by the mesoscale eddy field, yet it remains a challenge to disentangle the effects of this interaction in observations. Here, the model of Young and Ben Jelloul (YBJ), which describes NIW evolution in the presence of slowly evolving mesoscale eddies, is compared to observations from a mooring array in the Northeast Atlantic Ocean. The model captures the evolution of both the observed NIW amplitude and phase much more accurately than a slab mixed layer model. The YBJ model allows for the identification of specific physical processes that drive the observed evolution. It reveals that differences in the NIW amplitude across the mooring array are caused by the refractive concentration of NIWs into anticyclones. Advection and wave dispersion also make important contributions to the observed wave evolution. Stimulated generation, a process by which mesoscale kinetic energy acts as a source of NIW potential energy, is estimated to be 20$μ$W/m$^2$ in the region of the mooring array, which is two orders of magnitude smaller than the global average input to mesoscale kinetic energy and likely not an important contribution to the mesoscale kinetic energy budget in this region. Overall, the results show that the YBJ model is a quantitatively useful tool to interpret observations of NIWs.
title Interpreting Observed Interactions between Near-Inertial Waves and Mesoscale Eddies
topic Atmospheric and Oceanic Physics
url https://arxiv.org/abs/2308.00889