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http://dx.doi.org/10.5140/JASS.2011.28.1.017

Martian Bow Shock and Magnetic Pile-Up Barrier Formation Due to the Exosphere Ion Mass-Loading  

Kim, Eo-Jin (Department of Astronomy and Space Science, Chungnam National University)
Sohn, Jong-Dae (Department of Astronomy and Space Science, Chungnam National University)
Yi, Yu (Department of Astronomy and Space Science, Chungnam National University)
Ogino, Tatsuki (Solar-Terrestrial Environment Laboratory, Nagoya University)
Lee, Joo-Hee (Space Science Department, Space Application & Future Technology Center, Korea Aerospace Research Institute)
Park, Jae-Woo (Space Science Department, Space Application & Future Technology Center, Korea Aerospace Research Institute)
Song, Young-Joo (Space Science Department, Space Application & Future Technology Center, Korea Aerospace Research Institute)
Publication Information
Journal of Astronomy and Space Sciences / v.28, no.1, 2011 , pp. 17-26 More about this Journal
Abstract
Bow shock, formed by the interaction between the solar wind and a planet, is generated in different patterns depending on the conditions of the planet. In the case of the earth, its own strong magnetic field plays a critical role in determining the position of the bow shock. However, in the case of Mars of which has very a small intrinsic magnetic field, the bow shock is formed by the direct interaction between the solar wind and the Martian ionosphere. It is known that the position of the Martian bow shock is affected by the mass loading-effect by which the supersonic solar wind velocity becomes subsonic as the heavy ions originating from the planet are loaded on the solar wind. We simulated the Martian magnetosphere depending on the changes of the density and velocity of the solar wind by using the three-dimensional magnetohydrodynamic model built by modifying the comet code that includes the mass loading effect. The Martian exosphere model of was employed as the Martian atmosphere model, and only the photoionization by the solar radiation was considered in the ionization process of the neutral atmosphere. In the simulation result under the normal solar wind conditions, the Martian bow shock position in the subsolar point direction was consistent with the result of the previous studies. The three-dimensional simulation results produced by varying the solar wind density and velocity were all included in the range of the Martian bow shock position observed by Mariner 4, Mars 2, 3, 5, and Phobos 2. Additionally, the simulation result also showed that the change of the solar wind density had a greater effect on the Martian bow shock position than the change of the solar wind velocity. Our result may be useful in analyzing the future observation data by Martian probes.
Keywords
solar wind; Mars; bow shock; magnetosphere; plasma;
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  • Reference
1 Breus TK, Bauer SJ, Krymskii AM, Mitnitskii VYA, Mass loading in the solar wind interaction with Venus and Mars, JGR, 94, 2375-2382 (1989). doi: 10.1029/JA094iA03p02375   DOI
2 Kim E, Interaction between solar wind and Mars magnetosphere, Master’s Thesis, Chungnam National University (1999).
3 Liu Y, Nagy AF, Groth CPT, DeZeeuw DL, Gombosi TI, et al., 3D multi-fluid MHD studies of the solar wind interaction with Mars, GeoRL, 26, 2689-2692 (1999). doi: 10.1029/1999GL900584   DOI
4 Lundin R, Zakharov A, Pellinen R, Borg H, Hultqvist B, et al., Plasma composition measurements of the Martian magnetosphere morphology, GeoRL, 17, 877-880 (1990). doi: 10.1029/GL017i006p00877   DOI
5 Nagy AF, Kim J, Cravens TE, Hot hydrogen and oxygen atoms in the upper atmospheres of Venus and Mars, AnGeo, 8, 251-256 (1990).
6 Sauer K, Roatsch T, Motschmann U, Schwingenschuh K, Lundin R, et al., Observations of plasma boundaries and phenomena around Mars with PHOBOS 2, JGR, 97, 6227-6233 (1992). doi: 10.1029/91JA02972   DOI
7 Slavin J, Schwingenschuh K, Riedler W, Yeroshenko Y, The solar wind interaction with Mars: Mariner 4, Mars 2, Mars 3, Mars 5, and Phobos 2 observations of bow shock position and shape, JGR, 96, 11235-11241 (1991). doi: 10.1029/91JA00439   DOI
8 Yi Y, Kim E, Kim YH, Kim J, Variability of bow shock location at Mars, JASS, 16, 139-148 (1999).
9 Yi Y, Walker R, Ogino T, Brandt J, Global magnetohydrodynamic simulation of a comet crossing the heliospheric current sheet, JGR, 101, 27585-27601 (1996). doi: 10.1029/96JA02235   DOI