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Nonlinear gyrokinetic theory for steady-state mirror mode magnetic structures

机译:稳态镜像模式磁性结构的非线性陀螺动力学理论

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The analytic study of the saturated state of the mirror instability is presented. The perpendicular ion momentum is described by the hydrodynamic equations, with the finite Larmor radius corrections found from the collisionless stress tensor, while the ion density, the parallel flow, and the pressure are calculated using the gyrokinetic description, accounting for the nonlinear convection by the grad-B drift. Within such a model and using a generalized Schamel's distribution function for the trapped ions, it is possible to study fully nonlinear wave-particle interactions, including the contributions of the finite ion Larmor radius correction and of the trapped ions. The numerical solution reveals the bistability in the stationary regime. Two different nonlinear solutions are found under the same physical conditions, in the form of magnetic humps and magnetic holes, resulting from the wave-wave and wave-particle couplings, respectively. The trapped particles are found to be heated in the parallel direction and their temperature is almost isotropic. The solution is in a good agreement with the magnetic structures observed in the magnetosheath within the solar system and in computer simulations. It provides an explanation for the transformation of humps into holes, as observed in recent computer simulations.
机译:提出了镜面失稳饱和状态的解析研究。垂直离子动量由流体动力学方程式描述,从无碰撞应力张量中获得有限的拉莫尔半径校正,而离子密度,平行流和压力则通过陀螺动力学描述来计算,并考虑了非线性对流的影响。 grad-B漂移。在这样的模型中,对捕获的离子使用广义的Schamel分布函数,可以研究完全非线性的波粒相互作用,包括有限离子拉莫尔半径校正和捕获离子的贡献。数值解揭示了稳态下的双稳态。在相同的物理条件下,发现两种不同的非线性解,分别是波峰和波粒耦合产生的磁峰和磁孔。发现被捕获的颗粒在平行方向上被加热,并且它们的温度几乎是各向同性的。该解决方案与在太阳系内的磁石表面和计算机模拟中观察到的磁性结构非常吻合。正如最近的计算机模拟中所观察到的,它为将驼峰转变为孔提供了解释。

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