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Atmospheric tides and their consequences on the rotational dynamics of terrestrial planets
- Source :
- EAS Publications Series, EAS Publications Series Volume 82 (2019) Astro Fluid: An International Conference in Memory of Professor Jean-Paul Zahn's Great Scientific Achievements Institut d'Astrophysique de Paris, France, June 27–30, 2016 A.S. Brun, S. Mathis, C. Charbonnel and B. Dubrulle (Eds.), EAS Publications Series Volume 82 (2019) Astro Fluid: An International Conference in Memory of Professor Jean-Paul Zahn's Great Scientific Achievements Institut d'Astrophysique de Paris, France, June 27–30, 2016 A.S. Brun, S. Mathis, C. Charbonnel and B. Dubrulle (Eds.), Jun 2016, Paris, France. ⟨10.1051/eas/1982008⟩
- Publication Year :
- 2019
- Publisher :
- EDP Sciences, 2019.
-
Abstract
- Atmospheric tides can have a strong impact on the rotational dynamics of planets. They are of most importance for terrestrial planets located in the habitable zone of their host star, where their competition with solid tides is likely to drive the body towards non-synchronized rotation states of equilibrium, as observed in the case of Venus. Contrary to other planetary layers, the atmosphere is sensitive to both gravitational and thermal forcings, through a complex dynamical coupling involving the effects of Coriolis acceleration and characteristics of the atmospheric structure. These key physics are usually not taken into account in modelings used to compute the evolution of planetary systems, where tides are described with parametrised prescriptions. In this work, we present a new ab initio modeling of atmospheric tides adapting the theory of the Earth's atmospheric tides (Chapman & Lindzen 1970) to other terrestrial planets. We derive analytic expressions of the tidal torque, as a function of the tidal frequency and parameters characterizing the internal structure (e.g. the Brunt-V��is��l�� frequency, the radiative frequency, the pressure heigh scale). We show that stratification plays a key role, the tidal torque being strong in the case of convective atmospheres (i.e. with a neutral stratification) and weak in case of atmosphere convectively stable. In a second step, the model is used to determine the non-synchronized rotation states of equilibrium of Venus-like planets as functions of the physical parameters of the system. These results are detailed in Auclair-Desrotour et al. (2017a) and Auclair-Desrotour et al. (2017b).<br />Proceedings for Astro Fluid conference in memory of Jean-Paul Zahn (Paris, June 2016), 9 pages, 5 figures
- Subjects :
- 010504 meteorology & atmospheric sciences
[SDU.ASTR.EP]Sciences of the Universe [physics]/Astrophysics [astro-ph]/Earth and Planetary Astrophysics [astro-ph.EP]
FOS: Physical sciences
01 natural sciences
Physics::Geophysics
Gravitation
Atmosphere
Planet
0103 physical sciences
Radiative transfer
010303 astronomy & astrophysics
0105 earth and related environmental sciences
Earth and Planetary Astrophysics (astro-ph.EP)
Physics
Computer Science::Information Retrieval
Atmospheric tide
General Engineering
Astronomy and Astrophysics
Geophysics
Planetary system
85-06
13. Climate action
Space and Planetary Science
Physics::Space Physics
Terrestrial planet
Astrophysics::Earth and Planetary Astrophysics
Circumstellar habitable zone
Astrophysics - Earth and Planetary Astrophysics
Subjects
Details
- ISSN :
- 16381963 and 16334760
- Volume :
- 82
- Database :
- OpenAIRE
- Journal :
- EAS Publications Series
- Accession number :
- edsair.doi.dedup.....72a6c71b0c9884de94ac291fc8ed8787