Nonlinear evolution of Alfven waves via mode conversion

  • Kim, Kyung-Im (School of Space Research, Kyunghee University) ;
  • Lee, Dong-Hun (School of Space Research, Kyunghee University) ;
  • Ryu, Dongsu (Department of Astronomy and Space science, Chungnam National University) ;
  • Kim, Khan-Hyuk (School of Space Research, Kyunghee University) ;
  • Lee, Ensang (School of Space Research, Kyunghee University)
  • Published : 2012.10.17

Abstract

It is well known that the FLRs are excited by compressional waves via mode conversion, but there has been no apparent criterion on the maximum amplitude in the regime of linear approximations. Such limited range of amplitude should be understood by including nonlinear saturation of FLRs, which has not been examined until now. In this study, using a three-dimensional magnetohydrodynamic (MHD) simulation code, we examine the evolution of nonlinear field line resonances (FLRs) in the cold plasmas. The MHD code used in this study allows a full nonlinear description and enables us to study the maximum amplitude of FLRs. When the disturbance is sufficiently small, it is shown that linear properties of MHD wave coupling are well reproduced. In order to examine a nonlinear excitation of FLRs, it is shown how these FLRs become saturated as the initial magnitude of disturbances is assumed to increase. Our results suggest that the maximum amplitude of FLRs become saturated at the level of the same order of dB/B as in observations roughly satisfies the order of ~0.01. In addition, we extended this study for the plasma sheet boundary layer (PSBL) region. We can discuss the maximum disturbances of the Alfven via mode conversion becomes differently saturated through each region.

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