Gyrofluid simulations of turbulence and reconnection in space plasmas

T. Passot , S.S. Cerri , C. Granier , D. Laveder , P.L. Sulem , E. Tassi
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Abstract

A Hamiltonian two-field gyrofluid model is used to investigate the dynamics of an electron-ion collisionless plasma subject to a strong ambient magnetic field, within a spectral range extending from the magnetohydrodynamic (MHD) scales to the electron skin depth. This model isolates Alfvén, Kinetic Alfvén and Inertial Kinetic Alfvén waves that play a central role in space plasmas, and extends standard reduced fluid models to broader ranges of the plasma parameters. Recent numerical results are reviewed, including (i) the reconnection-mediated MHD turbulence developing from the collision of counter-propagating Alfvén wave packets, (ii) the specific features of the cascade dynamics in strongly imbalanced turbulence, including a possible link between the existence of a spectral transition range and the presence of co-propagating wave interactions at sub-ion scales, for which new simulations are reported, (iii) the influence of the ion-to-electron temperature ratio in two-dimensional collisionless magnetic reconnection. The role of electron finite Larmor radius corrections is pointed out and the extension of the present model to a four-field gyrofluid model is discussed. Such an extended model accurately describes electron finite Larmor radius effects at small or moderate values of the electron beta parameter, and also retains the coupling to slow magnetosonic waves.

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空间等离子体中的湍流和重联的陀螺流体模拟
利用哈密顿双场陀螺流体模型研究了电子-离子无碰撞等离子体在强环境磁场作用下的动力学,其频谱范围从磁流体动力学(MHD)尺度扩展到电子表皮深度。该模型分离出了在空间等离子体中起核心作用的阿尔弗韦恩波、动能阿尔弗韦恩波和惯性动能阿尔弗韦恩波,并将标准还原流体模型扩展到更宽的等离子体参数范围。对最近的数值结果进行了回顾,包括:(i) 由反向传播的阿尔弗韦恩波包碰撞产生的再连接介导的 MHD 湍流;(ii) 强不平衡湍流中级联动力学的具体特征,包括光谱过渡范围的存在与亚离子尺度上共传播波相互作用的存在之间的可能联系,对此进行了新的模拟;(iii) 二维无碰撞磁再连接中离子-电子温度比的影响。指出了电子有限拉莫尔半径修正的作用,并讨论了将本模型扩展到四场陀螺流体模型的问题。这种扩展模型准确地描述了电子有限拉莫尔半径效应在电子β参数的小值或中等值时的影响,同时也保留了与慢磁声波的耦合。
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