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      Electron-scale reduced fluid models with gyroviscous effects

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      Journal of Plasma Physics
      Cambridge University Press (CUP)

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          Abstract

          Reduced fluid models for collisionless plasmas including electron inertia and finite Larmor radius corrections are derived for scales ranging from the ion to the electron gyroradii. Based either on pressure balance or on the incompressibility of the electron fluid, they respectively capture kinetic Alfvén waves (KAWs) or whistler waves (WWs), and can provide suitable tools for reconnection and turbulence studies. Both isothermal regimes and Landau fluid closures permitting anisotropic pressure fluctuations are considered. For small values of the electron beta parameter $\unicode[STIX]{x1D6FD}_{e}$ , a perturbative computation of the gyroviscous force valid at scales comparable to the electron inertial length is performed at order $O(\unicode[STIX]{x1D6FD}_{e})$ , which requires second-order contributions in a scale expansion. Comparisons with kinetic theory are performed in the linear regime. The spectrum of transverse magnetic fluctuations for strong and weak turbulence energy cascades is also phenomenologically predicted for both types of waves. In the case of moderate ion to electron temperature ratio, a new regime of KAW turbulence at scales smaller than the electron inertial length is obtained, where the magnetic energy spectrum decays like $k_{\bot }^{-13/3}$ , thus faster than the $k_{\bot }^{-11/3}$ spectrum of WW turbulence.

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          Role of electron physics in the development of turbulent magnetic reconnection in collisionless plasmas

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            Fluid moment models for Landau damping with application to the ion-temperature-gradient instability

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              Role of Dispersive Waves in Collisionless Magnetic Reconnection

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                Author and article information

                Journal
                Journal of Plasma Physics
                J. Plasma Phys.
                Cambridge University Press (CUP)
                0022-3778
                1469-7807
                August 2017
                July 24 2017
                August 2017
                : 83
                : 4
                Article
                10.1017/S0022377817000514
                0cf9fa1d-80f5-47da-80c3-df18dbcd21e0
                © 2017

                https://www.cambridge.org/core/terms

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