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Effects of Multiscale Phase-Mixing and Interior Conductance in the Lunar-like Pickup Ion Plasma Wake. First Results from 3-D Hybrid Kinetic ModelingThe study of multiscale pickup ion phase-mixing in the lunar plasma wake with a hybrid model is the main subject of our investigation in this paper. Photoionization and charge exchange of protons with the lunar exosphere are the ionization processes included in our model. The computational model includes the self-consistent dynamics of the light (hydrogen ions or hydrogen molecule ion or helium ion), and heavy (sodium ion ) pickup ions. The electrons are considered as a fluid. The lunar interior is considered as a weakly conducting body. In this paper we considered for the first time the cumulative effect of heavy neutrals in the lunar exosphere (e.g., Aluminum, Argon), an effect which was simulated with one species of sodium ion but with a tenfold increase in total production rates. We find that various species produce various types of plasma tail in the lunar plasma wake. Specifically, sodium ion and helium ion pickup ions form a cycloid-like tail, whereas the hydrogen ion or hydrogen molecule ion pickup ions form a tail with a high density core and saw-like periodic structures in the flank region. The length of these structures varies from 1:5 R(sub M) to 3:3 R(sub M) depending on the value of gyro radius for hydrogen ion or hydrogen molecule ion pickup ions. The light pickup ions produce more symmetrical jump in the density and magnetic field at the Mach cone which is mainly controlled by the conductivity of the interior, an effect previously unappreciated. Although other pickup ion species had little effect on the nature of the interaction of the Moon with the solar wind, the global structure of the lunar tail in these simulations appeared quite different when the hydrogen molecule ion production rate was high.
Document ID
20180003351
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Lipatov, A.S.
(Institute of Physics Moscow, Russian Federation)
Sarantos, M.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Farrell, William M.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Cooper, John F.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Date Acquired
June 4, 2018
Publication Date
July 1, 2018
Publication Information
Publication: Planetary & Space Science
Publisher: Elsevier
Volume: 156
ISSN: 0032-0633
Subject Category
Solar Physics
Report/Patent Number
GSFC-E-DAA-TN54820
Funding Number(s)
CONTRACT_GRANT: NNG11PL02A
Distribution Limits
Public
Copyright
Other

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