论文标题

紧凑型磁层中的磁化等离子体的耦合引导中心粒子推动器

A coupled guiding center-Boris particle pusher for magnetized plasmas in compact-object magnetospheres

论文作者

Bacchini, Fabio, Ripperda, Bart, Philippov, Alexander A., Parfrey, Kyle

论文摘要

我们提出了一种新颖的数值方案,用于模拟紧凑型物体的磁层中相对论带电颗粒的运动,通常充满了高度磁化的无碰撞等离子体。新算法基于整个运动方程组和引导中心近似之间的动态开关。两种配方之间的切换是基于等离子体颗粒的磁化强度,以便即使在时间步长的陀螺频频率下,指南中心运动也可以准确地捕获动力学。对于具有较大陀螺仪的粒子,由于加速(例如重新连接电流板),算法会自动切换以求解整个运动方程。新方案与标准粒子中的代码直接兼容,并且很容易通过专用的协变量公式适用于弯曲的空间。我们通过从磁化等离子体中重新连接电流板的电磁构型中的带电颗粒来测试耦合算法的性能,并从特殊和一般偏见的粒子中的粒子模拟中获得。新的耦合推动器能够产生高度准确的粒子轨迹,即使时间步长的数量级比陀螺仪大量大,从而大大降低了时间分辨率的限制。

We present a novel numerical scheme for simulating the motion of relativistic charged particles in magnetospheres of compact objects, typically filled with highly magnetized collisionless plasmas. The new algorithm is based on a dynamic switch between the full system of equations of motion and a guiding center approximation. The switch between the two formulations is based on the magnetization of the plasma particles, such that the dynamics are accurately captured by the guiding center motion even when the gyro-frequency is under-resolved by the time step. For particles with a large gyro-radius, due to acceleration in, e.g., reconnecting current sheets, the algorithm adaptively switches to solve the full equations of motion instead. The new scheme is directly compatible with standard Particle-in-Cell codes, and is readily applicable in curved spacetimes via a dedicated covariant formulation. We test the performance of the coupled algorithm by evolving charged particles in electromagnetic configurations of reconnecting current sheets in magnetized plasma, obtained from special- and general-relativistic Particle-in-Cell simulations. The new coupled pusher is capable of producing highly accurate particle trajectories even when the time step is many orders of magnitude larger than the gyro-period, substantially reducing the restrictions of the temporal resolution.

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