Planetary Wave (PW) generation in the thermosphere driven by the PW-modulated tidal spectrum
The National Center for Atmospheric Research thermosphere-ionosphere-electrodynamics general circulation model (TIE-GCM) is used to conduct numerical experiments that isolate and elucidate a substantial modification of the quasi-6-day wave (Q6DW) above 110âkm due to presence of the planetary wave (PW)-modulated tidal spectrum. A two-stage nonlinear tidal interaction is proposed, and its role in vertical coupling by the Q6DW is quantified. The theory enables calculation of net Q6DW accelerations and heating rates in the height-latitude domain (90â300âkm; ±75°) due to wave-wave interactions of up to 10âmsâ1âdayâ1 and 8âKâdayâ1, respectively. The Global-Scale Wave Model (GSMW) is used to demonstrate that these forcings produce Q6DW zonal and meridional wind amplitudes, and temperatures, of order 5â20âmsâ1, 5â15âmsâ1, and 5â10âK, respectively. Notably, Q6DW thermal forcing in the GSWM accounts for near-doubling of the wind magnitudes calculated with momentum forcing alone. The computed values are comparable to the 10â22âmsâ1, 3â12âmsâ1, and 4â12âKQ6DW amplitudes calculated with lower-boundary forcing of the Q6DW also included. The proposed two-stage interaction plausibly impacts other PW wind structures in the dynamo region and thus how PW in general participate in atmosphere-ionosphere coupling.
document
https://n2t.org/ark:/85065/d7vx0jb9
eng
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2016-01-01T00:00:00Z
publication
2020-05-01T00:00:00Z
Copyright 2020 American Geophysical Union.
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