Ion-sound waves during the interaction of meteoroid tails with the Earth’s ionosphere
- Authors: Morozova T.I.1, Popel S.I.1
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Affiliations:
- Space Research Institute, Russian Academy of Sciences
- Issue: Vol 50, No 7 (2024)
- Pages: 788-793
- Section: ПЫЛЕВАЯ ПЛАЗМА
- URL: https://consilium.orscience.ru/0367-2921/article/view/683716
- DOI: https://doi.org/10.31857/S0367292124070084
- EDN: https://elibrary.ru/OINEYN
- ID: 683716
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Abstract
The ion-acoustic instability in the tails of meteoroids as a result of their passage through the Earth’s atmosphere is studied and the conditions under which it develops are given. The development of this instability occurs as a result of the relative motion of the plasma of meteoroid tails and the dusty plasma of the Earth’s ionosphere. Dust, in turn, creates conditions when this instability can develop in a situation of approximately equal ion and electron temperatures, which is observed in the plasma–dust system under consideration. The mechanism of the excitation of ion-sound waves as a result of the development of the ionacoustic instability in meteoroid tails is shown. The growth rates of the ion-acoustic instability and the characteristic times of its development are found. It is shown that the instability has time to develop during the time of passage of a meteoroid body in the Earth’s atmosphere and the formation of a meteoroid trail, which has values much greater than the time of development of ion-acoustic instability in the system under consideration. The wave vectors and velocities of meteoric bodies, at which the development of the ion-acoustic instability is expected, are found. It is noted that the instability can reach a nonlinear regime at possible large wave amplitudes.
About the authors
T. I. Morozova
Space Research Institute, Russian Academy of Sciences
Author for correspondence.
Email: timoroz@yandex.ru
Russian Federation, Moscow, 117997
S. I. Popel
Space Research Institute, Russian Academy of Sciences
Email: timoroz@yandex.ru
Russian Federation, Moscow, 117997
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