Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5487461 | Journal of Atmospheric and Solar-Terrestrial Physics | 2017 | 32 Pages |
Abstract
The propagation of acoustic-gravity waves (AGW) from a source on the Earth's surface to the upper atmosphere is investigated with methods of mathematical modeling. The applied non-linear model of wave propagation in the atmosphere is based on numerical integration of a complete set of two-dimensional hydrodynamic equations. The source on the Earth's surface generates waves with frequencies near to the Brunt-Vaisala frequency. The results of simulation have revealed that some region of heating the atmosphere by propagated upward and dissipated AGWs arises above the source at altitudes nearby of 200Â km. The horizontal scale of this heated region is about 1000Â km in the case of the source that radiates AGWs during approximately 1Â h. The appearing of the heated region has changed the conditions of AGW propagation in the atmosphere. When the heated region in the upper atmosphere has been formed, further a waveguide regime of propagation of waves with the periods shorter the Brunt-Vaisala period is realized. The upper boundary of the wave-guide coincides with the arisen heated region in the upper atmosphere. The considered mechanism of formation of large-scale disturbances in the upper atmosphere may be useful for explanation of connections of processes in the upper and lower atmospheric layers.
Related Topics
Physical Sciences and Engineering
Earth and Planetary Sciences
Geophysics
Authors
I.V. Karpov, S.P. Kshevetskii,