First observations of solar zenith angle modulation of diurnal tidal structure in the MLT region

A global climatology of diurnal tides in the mesosphere and lower thermosphere (MLT) is constructed using multiyear observations from fifteen meteor radars distributed worldwide. The results show that diurnal tidal amplitudes are strongest at low and mid-latitudes (10–50° N/S), with peak values of about 60 m s −1 near 20–30° N/S, and are comparatively weak near the Equator and at polar latitudes. The seasonal variations of the diurnal tide are characterized by maxima around the equinoxes and minima during the solstices. In addition to these global climatological features, we identify a clear modulation of the vertical structure of diurnal tidal amplitude and phase by seasonal variations in solar forcing, represented here by the solar zenith angle (SZA). This modulation is particularly evident at northern low and mid-latitudes, but is much weaker in the Southern Hemisphere. The hemispheric asymmetry suggests that the tidal response to solar forcing is not globally uniform. To further explore the possible cause of this asymmetry, we examine the meridional fluxes of zonal tidal momentum. The results suggest that background zonal winds can influence tidal propagation through filtering effects and momentum drag, thereby contributing to the observed hemispheric differences in tidal structure. These results provide new observational evidence for the coupling between solar forcing and diurnal tides in the MLT region and offer useful constraints for the evaluation of general circulation models. They also improve our understanding of tidal propagation and variability in the middle and upper atmosphere.

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Journal
Atmospheric chemistry and physics
Published
2026-09-24
DOI
https://doi.org/10.5194/acp-26-13441-2026
Primary Topic
Ionosphere and magnetosphere dynamics
Type
article
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article

First observations of solar zenith angle modulation of diurnal tidal structure in the MLT region

Xianghui Xue, Jianmin Wu, Tingdi Chen, Robert A. Vincent et al.
Atmospheric chemistry and physics
Ionosphere and magnetosphere dynamics
article

First observations of solar zenith angle modulation of diurnal tidal structure in the MLT region

Xianghui Xue, Jianmin Wu, Tingdi Chen, Robert A. Vincent, P. P. Batista, Guozhu Li, Xiankang Dou, Njål Gulbrandsen, Baiqi Ning, Masaki Tsutsumi, D. J. Murphy, Tracy Moffat‐Griffin, Chengyun Yang, Wen Yi, Jianyuan Wang, Toshitaka Tsuda, Iain Murray Reid, Nicholas J. Mitchell, Andrew MacKinnon, Haiying Li
article en

Abstract

A global climatology of diurnal tides in the mesosphere and lower thermosphere (MLT) is constructed using multiyear observations from fifteen meteor radars distributed worldwide. The results show that diurnal tidal amplitudes are strongest at low and mid-latitudes (10–50° N/S), with peak values of about 60 m s −1 near 20–30° N/S, and are comparatively weak near the Equator and at polar latitudes. The seasonal variations of the diurnal tide are characterized by maxima around the equinoxes and minima during the solstices. In addition to these global climatological features, we identify a clear modulation of the vertical structure of diurnal tidal amplitude and phase by seasonal variations in solar forcing, represented here by the solar zenith angle (SZA). This modulation is particularly evident at northern low and mid-latitudes, but is much weaker in the Southern Hemisphere. The hemispheric asymmetry suggests that the tidal response to solar forcing is not globally uniform. To further explore the possible cause of this asymmetry, we examine the meridional fluxes of zonal tidal momentum. The results suggest that background zonal winds can influence tidal propagation through filtering effects and momentum drag, thereby contributing to the observed hemispheric differences in tidal structure. These results provide new observational evidence for the coupling between solar forcing and diurnal tides in the MLT region and offer useful constraints for the evaluation of general circulation models. They also improve our understanding of tidal propagation and variability in the middle and upper atmosphere.

Atmospheric chemistry and physicsVol. 26(18)
University of Science and Technology of China (CN), British Antarctic Survey (GB), Australian Antarctic Division (AU), Tianjin University (CN), Kyoto University (JP), National Institute of Polar Research (JP), Atrad (Australia) (AU), Institute of Geology and Geophysics (AZ), Institute of Geology and Geophysics (CN), University of Bath (GB), The University of Adelaide (AU), UiT The Arctic University of Norway (NO), Instituto Nacional de Pesquisas Espaciais (BR)
Climate action
Openalex Percentile: Top 11%
Ionosphere and magnetosphere dynamics
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