Making Waves: Mirror Mode Structures Around Mars Observed by the MAVEN Spacecraft

被引:11
作者
Simon Wedlund, Cyril [1 ]
Volwerk, Martin [1 ]
Mazelle, Christian [2 ]
Halekas, Jasper [3 ]
Rojas-Castillo, Diana [4 ]
Espley, Jared [5 ]
Mostl, Christian [1 ]
机构
[1] Austrian Acad Sci, Space Res Inst, Graz, Austria
[2] Univ Toulouse, CNRS, Inst Rech Astrophys & Planetol IRAP, UPS,CNES, Toulouse, France
[3] Univ Iowa, Dept Phys & Astron, Iowa City, IA 52242 USA
[4] Univ Nacl Autonoma Mexico, Inst Geofis, Coyoacan, Mexico
[5] NASA, Goddard Space Flight Ctr, Lab Planetary Magnetospheres, Greenbelt, MD USA
基金
奥地利科学基金会;
关键词
Mars; mirror modes; plasma instability; quasi-perpendicular bow shock; magnetosheath; NASA; MAVEN; ION TEMPERATURE ANISOTROPY; MAGNETIC PILEUP BOUNDARY; SOLAR-WIND; BOW SHOCK; CLUSTER OBSERVATIONS; MAGNETOSHEATH; PLASMA; INSTABILITY; FLUCTUATIONS; TURBULENCE;
D O I
10.1029/2021JA029811
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We present an in-depth analysis of a time interval when quasi-linear mirror mode structures were detected by magnetic field and plasma measurements as observed by the NASA/Mars Atmosphere and Volatile EvolutioN spacecraft. We employ ion and electron spectrometers in tandem to support the magnetic field measurements and confirm that the signatures are indeed mirror modes. Wedged against the magnetic pile-up boundary, the low-frequency signatures last on average similar to 10 $\sim 10$ s with corresponding sizes of the order of 15-30 upstream solar wind proton thermal gyroradii, or 10-20 proton gyroradii in the immediate wake of the quasi-perpendicular bow shock. Their peak-to-peak amplitudes are of the order of 30-35 nT with respect to the background field, and appear as a mixture of dips and peaks, suggesting that they may have been at different stages in their evolution. Situated in a marginally stable plasma with beta(||) similar to 1, we hypothesize that these so-called magnetic bottles, containing a relatively higher energy and denser ion population with respect to the background plasma, are formed upstream of the spacecraft behind the quasi-perpendicular shock. These signatures are very reminiscent of magnetic bottles found at other unmagnetized objects such as Venus and comets, also interpreted as mirror modes. Our case study constitutes the first unmistakable identification and characterization of mirror modes at Mars from the joint points of view of magnetic field, electron and ion measurements. Up until now, the lack of high-temporal resolution plasma measurements has prevented such an in-depth study.
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页数:28
相关论文
共 82 条
[1]   Simulation of magnetic holes formation in the magnetosheath [J].
Ahmadi, Narges ;
Germaschewski, Kai ;
Raeder, Joachim .
PHYSICS OF PLASMAS, 2017, 24 (12)
[2]   Statistical analysis of mirror mode waves in sheath regions driven by interplanetary coronal mass ejection [J].
Ala-Lahti, Matti M. ;
Kilpua, Emilia K. J. ;
Dimmock, Andrew P. ;
Osmane, Adnane ;
Pulkkinen, Tuija ;
Soucek, Jan .
ANNALES GEOPHYSICAE, 2018, 36 (03) :793-808
[3]   MAGNETIC SPECTRAL SIGNATURES IN THE EARTHS MAGNETOSHEATH AND PLASMA DEPLETION LAYER [J].
ANDERSON, BJ ;
FUSELIER, SA ;
GARY, SP ;
DENTON, RE .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1994, 99 (A4) :5877-5891
[4]   Proton Temperature Anisotropies in the Plasma Environment of Venus [J].
Bader, A. ;
Wieser, G. Stenberg ;
Andre, M. ;
Wieser, M. ;
Futaana, Y. ;
Persson, M. ;
Nilsson, H. ;
Zhang, T. L. .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2019, 124 (05) :3312-3330
[5]   Magnetic Fluctuation Power Near Proton Temperature Anisotropy Instability Thresholds in the Solar Wind [J].
Bale, S. D. ;
Kasper, J. C. ;
Howes, G. G. ;
Quataert, E. ;
Salem, C. ;
Sundkvist, D. .
PHYSICAL REVIEW LETTERS, 2009, 103 (21)
[6]   Quasi-perpendicular shock structure and processes [J].
Bale, SD ;
Balikhin, MA ;
Horbury, TS ;
Krasnoselskikh, VV ;
Kucharek, H ;
Möbius, E ;
Walker, SN ;
Balogh, A ;
Burgess, D ;
Lembège, B ;
Lucek, EA ;
Scholer, M ;
Schwartz, SJ ;
Thomsen, MF .
SPACE SCIENCE REVIEWS, 2005, 118 (1-4) :161-203
[7]   Mirror mode peaks: THEMIS observations versus theories [J].
Balikhin, M. A. ;
Pokhotelov, O. A. ;
Walker, S. N. ;
Boynton, R. J. ;
Beloff, N. .
GEOPHYSICAL RESEARCH LETTERS, 2010, 37
[8]   The analyser of space plasmas and energetic atoms (ASPERA-4) for the Venus express mission [J].
Barabash, S. ;
Sauvaud, J.-A. ;
Gunell, H. ;
Andersson, H. ;
Grigoriev, A. ;
Brinkfeldt, K. ;
Holinstroem, M. ;
Lundin, R. ;
Yamauchi, M. ;
Asamura, K. ;
Baumjohann, W. ;
Zhang, T. L. ;
Coates, A. J. ;
Linder, D. R. ;
Kataria, D. O. ;
Curtis, C. C. ;
Hsieh, K. C. ;
Sandel, B. R. ;
Fedorov, A. ;
Mazelle, C. ;
Thocaven, J. J. ;
Grande, M. ;
Koskinen, Hannu E. J. ;
Kallio, E. ;
Saeles, T. ;
Riihela, P. ;
Kozyra, J. ;
Krupp, N. ;
Woch, J. ;
Luhmann, J. ;
McKenna-Lawlor, S. ;
Orsini, S. ;
Cerulli-Irelli, R. ;
Mura, M. ;
Milillo, M. ;
Maggi, M. ;
Roelof, E. ;
Brandt, P. ;
Russell, C. T. ;
Szego, K. ;
Winningham, J. D. ;
Frahm, R. A. ;
Scherrer, J. ;
Sharber, J. R. ;
Wurz, P. ;
Bochsler, P. .
PLANETARY AND SPACE SCIENCE, 2007, 55 (12) :1772-1792
[9]   MGS MAG/ER observations at the magnetic pileup boundary of Mars:: draping enhancement and low frequency waves [J].
Bertucci, C ;
Mazelle, C ;
Crider, DH ;
Mitchell, DL ;
Sauer, K ;
Acuña, MH ;
Connerney, JEP ;
Lin, RP ;
Ness, NF ;
Winterhalter, D .
COMPARATIVE MAGNETOSPHERES, 2004, 33 (11) :1938-1944
[10]   The Structure of the Martian Quasi-Perpendicular Supercritical Shock as Seen by MAVEN [J].
Burne, S. ;
Bertucci, C. ;
Mazelle, C. ;
Morales, L. F. ;
Meziane, K. ;
Halekas, J. ;
Fowler, C. M. ;
Espley, J. ;
Mitchell, D. ;
Penou, E. .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2021, 126 (09)