Related Publications
PACOG:
- R. A. Akmaev, J. M. Forbes, F.-J. Lübken, D. J. Murphy, and J. Höffner. Tides in the mesopause region over Antarctica: Comparison of Whole Atmosphere Model simulations with ground-based observations. J. Geophys. Res., 121:1156–1169, 2016.
- G. Baumgarten, J. Fiedler, J. Hildebrand, and F.-J. Lübken. Inertia gravity wave in the stratosphere and mesosphere observed by Doppler wind and temperature lidar. Geophys. Res. Lett., 42:10,929–10,936, 2015.
- E. Becker. Mean-flow effects of thermal tides in the mesosphere and lower thermosphere. J. Atmos. Sci., 2016. submitted
- J. L. Chau, P. Hoffmann, N. M. Pedatella, V. Matthias, and G. Stober. Upper mesospheric lunar tides over middle and high latitudes during sudden stratospheric warming events. J. Geophys. Res., 120:3084–3096, 2015.
- D. C. Fritts, L. Wang, G. Baumgarten, A. D. Miller, M. A. Geller, G. Jones, M. Limon, D. Chapman, J. Didier, C. B. Kjellstrand, D. Araujo, S. Hillbrand, A. Korotkov, G. Tucker, and J. Vinokurov. High-resolution observations and modeling of turbulence sources, structures, and intensities in the upper mesosphere. J. Atmos. Solar-Terr. Phys., 2016. submitted.
- T. Fuller-Rowell, T.-W. Fang, H. Wang, V. Matthias, P. Hoffmann, K. Hocke, and S. Studer. Impact of migrating tides on electrodynamics during the January 2009 sudden stratospheric warming. In Ionospheric Space Weather: Longitude Dependence and Lower Atmosphere Forcing. ..., 2016. accepted.
- A. Gassmann. Entropy production due to subgrid-scale thermal fluxes in breaking gravity waves. J. Atmos. Sci., 2016. submitted.
R. S. Lieberman, D. M. Riggin, V. Nguyen, S. E. Palo, D. E. Siskind, N. J. Mitchell, G. Stober, S. Wilhelm, and N. J. Livesey. Global observations of two-day wave coupling to the diurnal tide. J. Geophys. Res., 2016. submitted. - M. Gerding, K. Baumgarten, J. Höffner, and F.-J. Lübken. Lidar soundings between 30 and 100 km altitude during day and night for observation of temperatures, gravity waves and tides. EPJ Web of Conferences, 119:13001, 2015.
- M. Gerding, M. Kopp, J. Höffner, K. Baumgarten und F.-J. Lübken, Mesospheric temperature soundings with the new, daylight-capable IAP RMR lidar, Atmos. Meas. Tech., 9(8), 3707-3715, doi:10.5194/amt-9-3707-2016, 2016
- M. Kopp, M. Gerding, J. Höffner, and F.-J. Lübken. Tidal signatures in temperatures derived from daylight lidar soundings above Kühlungsborn (54°N, 12°E). J. Atmos. Solar-Terr. Phys., pages 37–50, 2015.
- F. I. Laskar, J. L. Chau, G. Stober, P. Hoffmann, C. M. Hall, and M. Tsutsumi. Quasi biennial oscillation modulation of the middle- and high-latitude mesospheric semidiurnal tides during August - September. J. Geophys. Res., 121:4869–4879, 2016.
- V. Matthias, T. G. Shepherd, P. Hoffmann, and M. Rapp. The hiccup: A dynamical coupling process during the autumn transition in the Northern Hemisphere - similarities and differences to sudden stratospheric warmings. Ann. Geophys., 33:199–206, 2015.
- V. Matthias, A. Dörnbrack, and G. Stober. The extraordinary strong and cold polar vortex in the early northern winter 2015/16, Geophys. Res. Lett., 43, 12287-12294, doi:10.1002/2016GL071676, 2016.
- M. Placke, P. Hoffmann, R. Latteck, and M. Rapp. Gravity wave momentum fluxes from MF and meteor radar measurements in the polar MLT region. J. Geophys. Res., 120:736–750, 2015.
- M. Placke, P. Hoffmann, and M. Rapp. First experimental verification of summertime mesospheric momentum balance based on radar wind measurements at 69°N. Ann. Geophys., 33:1091–1096, 2015.
- G. Stober, V. Matthias, C. Jacobi, S. Wilhelm, J. Höffner und J. L. Chau, Exceptionally strong summer-like zonal wind reversal in the upper mesosphere during winter 2015/16, Ann. Geophys., accepted, 2017.
SI:
- Wei, J., F. Zhang & J. H. Richter, 2016: An Analysis of Gravity Wave Spectral Characteristics in Moist Baroclinic Jet–Front Systems. J. Atmos. Sci. 73, 8: 3133-3155. doi:10.1175/jas-d-15-0316.1
ICON:
- Baldauf, M. and D. Reinert and G. Zängl, 2014:
An analytical solution for linear gravity and sound waves on the sphere as a test for compressible, non-hydrostatic numerical models.
Quart. J. Roy. Meteor. Soc., 140, 1974-1985.
http://onlinelibrary.wiley.com/doi/10.1002/qj.2277/abstract - Keane, R., G. C. Craig, C. Keil and G. Zängl, 2014: The Plant-Craig stochastic convection scheme in ICON
and its scale-adaptivity. J. Atmos. Sci., 71, 3404-3415.
http://journals.ametsoc.org/doi/abs/10.1175/JAS-D-13-0331.1 - Rieger, D., M. Bangert, I. Bischoff-Gauss, J. Förstner, K. Lundgren, D. Reinert, J. Schröter,
H. Vogel, G. Zängl, R. Ruhnke, and B. Vogel, 2015: ICON-ART 1.0 -- a new online-coupled model system from the global to regional scale.
Geosci. Model Dev., 8, 1659-1676.
http://www.geosci-model-dev.net/8/1659/2015/gmd-8-1659-2015.html - Ripodas, P., A. Gassmann, J. Förstner, D. Majewski, M. Giorgetta, P. Korn, L. Kornblueh, H. Wan,
G. Zängl, L. Bonaventura, and T. Heinze, 2009: Icosahedral Shallow Water Model (ICOSWM): results
of shallow water test cases and sensitivity to model parameters.
Geosci. Model Dev., 2, 231-251.
http://www.geosci-model-dev.net/2/231/2009/gmd-2-231-2009.html - Wan, H., M. A. Giorgetta, G. Zängl, M. Restelli, D. Majewski, L. Bonaventura, K. Fröhlich, D. Reinert,
- P. Ripodas, L. Kornblueh, and J. Förstner, 2013: The ICON-1.2 hydrostatic atmospheric dynamical core on triangular grids -- Part 1: Formulation and performance of the baseline version. Geosci. Model Dev., 6, 735-763.
- http://www.geosci-model-dev.net/6/735/2013/gmd-6-735-2013.html
- Zängl, G., 2012: Extending the numerical stability limit of terrain-following-coordinate models over steep slopes. Mon. Wea. Rev., 140, 3722-3733. http://journals.ametsoc.org/doi/abs/10.1175/MWR-D-12-00049.1
- Zängl, G., D. Reinert, P. Ripodas and M. Baldauf, 2015: The ICON (ICOsahedral Nonhydrostatic) modelling framework of DWD and MPI-M: Description of the nonhydrostatic dynamical core. Quart. J. Roy. Meteor. Soc., 141, 563-579.
http://onlinelibrary.wiley.com/doi/10.1002/qj.2378/abstract