Kurzfassungen der Meteorologentagung DACH
DACH2022-276, 2022
https://doi.org/10.5194/dach2022-276
DACH2022
© Author(s) 2022. This work is distributed under
the Creative Commons Attribution 4.0 License.

Towards a transient gravity wave parametrization in atmospheric models

Georg Sebastian Voelker1, Gergely Bölöni2, Young-Ha Kim1, and Ulrich Achatz1
Georg Sebastian Voelker et al.
  • 1Goethe-Universität Frankfurt , Institut für Atmosphäre und Umwelt, Frankfurt am Main, Germany
  • 2Deutscher Wetterdienst, Offenbach am Main, Germany

Subgrid-scale internal gravity waves (IGWs) are important distributors of energy in a stratified atmosphere. While they are mostly excited at lower altitudes their effects are most important between the upper troposphere to the mesopause (~85km). During propagation–both in the vertical and the horizontal–nonlinear IGWs can exert a wave drag on the mean winds, interact with the mean potential temperature, and mix atmospheric tracers such as aerosols or greenhouse gases.

In state-of-the art weather prediction models IGWs are typically parametrized using the single-column and the steady-state assumptions. These parametrizations take into account dissipative effects of IGWs but neglect their horizontal propagation and all of their transient interaction mechanisms such as direct wave-mean-flow interactions. However, the latter have been shown to contribute to IGW dynamics in various idealized studies.

Here we present advances of the use of the transient Multi Scale Gravity Wave Model (MS-GWaM) in the upper atmosphere model UA-ICON. Based on Lagrangian ray-tracing the parametrization includes various non-orographic wave sources, transient propagation in both the horizontal and vertical directions, direct wave-mean-flow interactions and wave breaking. The resulting setup satisfactorily reproduces the observed mean-wind and potential temperature climatology and already shows promising insights into the details of the role of IGWs in the atmosphere.

How to cite: Voelker, G. S., Bölöni, G., Kim, Y.-H., and Achatz, U.: Towards a transient gravity wave parametrization in atmospheric models, DACH2022, Leipzig, Deutschland, 21–25 Mar 2022, DACH2022-276, https://doi.org/10.5194/dach2022-276, 2022.