Cluster and TC-1 observation of magnetic holes in the plasma sheet
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Published:2012-03-26
Issue:3
Volume:30
Page:583-595
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ISSN:1432-0576
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Container-title:Annales Geophysicae
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language:en
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Short-container-title:Ann. Geophys.
Author:
Sun W. J.,Shi Q. Q.,Fu S. Y.,Pu Z. Y.,Dunlop M. W.,Walsh A. P.,Zong Q. G.,Xiao T.,Tang C. L.,Reme H.,Carr C.,Lucek E.,Fazakerley A.
Abstract
Abstract. Magnetic holes with relatively small scale sizes, detected by Cluster and TC-1 in the magnetotail plasma sheet, are studied in this paper. It is found that these magnetic holes are spatial structures and they are not magnetic depressions generated by the flapping movement of the magnetotail current sheet. Most of the magnetic holes (93%) were observed during intervals with Bz larger than Bx, i.e. they are more likely to occur in a dipolarized magnetic field topology. Our results also suggest that the occurrence of these magnetic holes might have a close relationship with the dipolarization process. The magnetic holes typically have a scale size comparable to the local proton Larmor radius and are accompanied by an electron energy flux enhancement at a 90° pitch angle, which is quite different from the previously observed isotropic electron distributions inside magnetic holes in the plasma sheet. It is also shown that most of the magnetic holes occur in marginally mirror-stable environments. Whether the plasma sheet magnetic holes are generated by the mirror instability related to ions or not, however, is unknown. Comparison of ratios, scale sizes and propagation direction of magnetic holes detected by Cluster and TC-1, suggests that magnetic holes observed in the vicinity of the TC-1 orbit (~7–12 RE) are likely to be further developed than those observed by Cluster (~7–18 RE).
Publisher
Copernicus GmbH
Subject
Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geology,Astronomy and Astrophysics
Reference60 articles.
1. Ashour-Abdalla, M., Zhou, M., Schriver, D., El-Alaoui, M., Deng, X., Richard, R. L., Walker, R. J., and Sergeev, V. A.: Electron acceleration during substroms, American Geophysical Union, Fall Meeting, America, available at: http://adsabs.harvard.edu/abs/2009AGUFMSM53B1373A, 14–18 December 2009. 2. Balogh, A., Carr, C. M., Acuña, M. H., Dunlop, M. W., Beek, T. J., Brown, P., Fornacon, K.-H., Georgescu, E., Glassmeier, K.-H., Harris, J., Musmann, G., Oddy, T., and Schwingenschuh, K.: The Cluster Magnetic Field Investigation: overview of in-flight performance and initial results, Ann. Geophys., 19, 1207–1217, https://doi.org/10.5194/angeo-19-1207-2001, 2001. 3. Baumgartel, K.: Soliton approach to magnetic holes, J. Geophys. Res.-Space Phys., 104, 28295–28308, https://doi.org/10.1029/1999JA900393, 1999. 4. Baumgartel, K., Sauer, K., and Dubinin, E.: Towards understanding magnetic holes: Hybrid simulations, Geophys. Res. Lett., 30, 4, https://doi.org/10.1029/2003GL017373, 2003. 5. Bavassano Cattaneo, M. B., Basile, C., Moreno, G., and Richardson, J. D.: Evolution of mirror structures in the magnetosheath of Saturn from the bow shock to the magnetopause, J. Geophys. Res., 103, 11961–11972, https://doi.org/10.1029/97JA03683, 1998.
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