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April 10, 2026Geophysical Research Letters2 citationsOpen Access

Do Eclipse‐Induced Thermospheric TADs Originate From Above or Below?

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YJYu JiaoJLJing LiuSLShuhan Li

Key Points

  • This research aims to determine whether eclipse-induced Traveling Atmospheric Disturbances originate from the upper or lower atmosphere.
  • Utilized the Whole Atmosphere Community Climate Model with thermosphere–ionosphere extension (WACCM-X)
  • Simulated atmospheric conditions during the 26 December 2019 annular solar eclipse
  • Analyzed thermospheric heating rates, temperature, and neutral wind along TAD propagation paths.
  • Eclipse-induced TADs primarily originate from above 80 km altitude
  • 80%-90% of disturbance amplitudes are from the upper atmosphere
  • TADs propagate at approximately 550 m/s along the eclipse path.

Abstract

Abstract Solar eclipses generate significant wave activity in the Earth's upper atmosphere. The source region of eclipse‐induced Traveling Atmospheric Disturbances (TADs) in the upper thermosphere—particularly the relative contributions of gravity waves from the thermosphere itself versus the lower atmosphere—remains unknown. Using the Whole Atmosphere Community Climate Model with thermosphere–ionosphere extension (WACCM‐X), we investigate TADs triggered by the 26 December 2019 annular solar eclipse. Simulations demonstrate that eclipse‐shadow passage launches thermospheric wave disturbances as TADs, with primary excitation occurring above 80 km altitude rather than in the lower atmosphere. These TADs propagate at speeds of ∼550 m/s, with trajectories dictated by the eclipse path. Thermospheric heating rates, temperature, and neutral wind analyses along propagation paths reveal that 80%–90% of the disturbance amplitudes originate in the upper atmosphere, while the lower atmosphere contributes 10%–20% of the disturbance amplitudes.

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Cite This Study

Jiao et al. (2026) studied this question.

synapsesocial.com/papers/69d895486c1944d70ce06372https://doi.org/10.1029/2025gl119407
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