Rayleigh-Bénard convective motion of stratified fluids in the Earth's troposphere
arXiv:2408.02441 · doi:10.1016/j.jastp.2025.106442
Abstract
Recently, Kaladze and Misra [Phys. Scr. 99 (2024) 085013] showed that the tropospheric stratified fluid flows may be unstable by the effects of the negative temperature gradient and the temperature-dependent density inhomogeneity arising from the thermal expansion. They also predicted that the modification in the Brunt-V{ä}is{ä}l{ä} frequency by the density inhomogeneity can lead to Rayleigh-B{é}nard convective instability in the tropospheric unbounded layers. The purpose of the present work is to revisit the Rayleigh-B{é}nard convective instability in more detail by considering both unbounded and bounded tropospheric layers. Starting from a set of fluid equations for incompressible neutral fluids with temperature gradients and using the Boussinesq approximation, we derive the general dispersion relations for Rayleigh-B{é}nard convective waves in unbounded and bounded tropospheric domains and analyze them with some particular cases both analytically and numerically. We show that the conditions for instability in these two cases significantly differ. Furthermore, we obtain and analyze the critical values of the Raleigh numbers and the expressions for the instability growth rates of thermal waves in the two cases. In the case of the bounded region, we also derive the necessary boundary conditions and note that the vertical wave number is quantified, and the corresponding eigenvalue problem is well-set.
13 pages, 5 figures. The revised version (minor changes to the text) to appear in the Journal of Atmospheric and Solar-Terrestrial Physics (2025)
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