4.5 Article

Global MHD modeling of resonant ULF waves: Simulations with and without a plasmasphere

期刊

出版社

AMER GEOPHYSICAL UNION
DOI: 10.1002/2015JA022048

关键词

resonant ULF wave coupling; plasmasphere; radiation belts; global MHD simulation; field line resonance; waveguide

资金

  1. National Aeronautics and Space Administration New Hampshire Space grant [NNG05GG76H]
  2. NASA [NNX08AM34G, NNX08AI36G, NNX10AK93G]
  3. Center for Integrated Space Weather Modeling
  4. Science and Technology Centers program of the National Science Foundation [ATM-0120950]
  5. RBSP-ECT by JHU/APL under NASA [967399, NAS5-01072]
  6. National Science Foundation
  7. NASA grant LWS [TR TNNX13AF92G]
  8. NASA [NNX08AM34G, 98142] Funding Source: Federal RePORTER

向作者/读者索取更多资源

We investigate the plasmaspheric influence on the resonant mode coupling of magnetospheric ultralow frequency (ULF) waves using the Lyon-Fedder-Mobarry (LFM) global magnetohydrodynamic (MHD) model. We present results from two different versions of the model, both driven by the same solar wind conditions: one version that contains a plasmasphere (the LFM coupled to the Rice Convection Model, where the Gallagher plasmasphere model is also included) and another that does not (the stand-alone LFM). We find that the inclusion of a cold, dense plasmasphere has a significant impact on the nature of the simulated ULF waves. For example, the inclusion of a plasmasphere leads to a deeper (more earthward) penetration of the compressional (azimuthal) electric field fluctuations, due to a shift in the location of the wave turning points. Consequently, the locations where the compressional electric field oscillations resonantly couple their energy into local toroidal mode field line resonances also shift earthward. We also find, in both simulations, that higher-frequency compressional (azimuthal) electric field oscillations penetrate deeper than lower frequency oscillations. In addition, the compressional wave mode structure in the simulations is consistent with a radial standing wave oscillation pattern, characteristic of a resonant waveguide. The incorporation of a plasmasphere into the LFM global MHD model represents an advance in the state of the art in regard to ULF wave modeling with such simulations. We offer a brief discussion of the implications for radiation belt modeling techniques that use the electric and magnetic field outputs from global MHD simulations to drive particle dynamics.

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