A Kinetic Alfven wave cascade subject to collisionless damping cannot reach electron scales in the solar wind at 1 AU
arXiv:0912.4026 · doi:10.1088/0004-637X/712/1/685
Abstract
(Abridged) Turbulence in the solar wind is believed to generate an energy cascade that is supported primarily by Alfvén waves or Alfvénic fluctuations at MHD scales and by kinetic Alfvén waves (KAWs) at kinetic scales . Linear Landau damping of KAWs increases with increasing wavenumber and at some point the damping becomes so strong that the energy cascade is completely dissipated. A model of the energy cascade process that includes the effects of linear collisionless damping of KAWs and the associated compounding of this damping throughout the cascade process is used to determine the wavenumber where the energy cascade terminates. It is found that this wavenumber occurs approximately when , where and are, respectively, the real frequency and damping rate of KAWs and the ratio is evaluated in the limit as the propagation angle approaches 90 degrees relative to the direction of the mean magnetic field.
Submitted to ApJ
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