4.2 Article

Reconnection and interchange instability in the near magnetotail

期刊

EARTH PLANETS AND SPACE
卷 67, 期 -, 页码 -

出版社

SPRINGEROPEN
DOI: 10.1186/s40623-015-0282-3

关键词

Reconnection; Interchange; Magnetotail dynamics; Substorms

资金

  1. NSF's GEM program
  2. NASA's MMS/SMART Theory and Modeling program
  3. Heliophysics Theory Program
  4. NSF [OCI 07-25070]
  5. state of Illinois.
  6. SRT Program
  7. Div Atmospheric & Geospace Sciences
  8. Directorate For Geosciences [1203711] Funding Source: National Science Foundation

向作者/读者索取更多资源

This paper provides insights into the possible coupling between reconnection and interchange/ballooning in the magnetotail related to substorms and flow bursts. The results presented are largely based on recent simulations of magnetotail dynamics, exploring onset and progression of reconnection. 2.5-dimensional particle-in-cell (PIC) simulations with different tail deformation demonstrate a clear boundary between stable and unstable cases depending on the amount of deformation, explored up to the real proton/electron mass ratio. The evolution prior to onset, as well as the evolution of stable cases, are governed by the conservation of integral flux tube entropy S as imposed in ideal MHD, maintaining a monotonic increase with distance downtail. This suggests that ballooning instability in the tail should not be expected prior to the onset of tearing and reconnection. 3-D MHD simulations confirm this conclusion, showing no indication of ballooning prior to reconnection, if the initial state is ballooning stable. The simulation also shows that, after imposing resistivity necessary to initiate reconnection, the reconnection rate and energy release initially remain slow. However, when S becomes reduced from plasmoid ejection and lobe reconnection, forming a negative slope in S as a function of distance from Earth, the reconnection rate and energy release increase drastically. The latter condition has been shown to be necessary for ballooning/interchange instability, and the cross-tail structures that develop subsequently in the MHD simulation are consistent with such modes. The simulations support a concept in which tail activity is initiated by tearing instability but significantly enhanced by the interaction with ballooning/interchange enabled by plasmoid loss and lobe reconnection.

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