论文标题
在磁化电子普罗顿等离子体中无碰撞对射流的结构:流动对准的磁场
Structure of a collisionless pair jet in a magnetized electron-proton plasma: Flow-aligned magnetic field
论文作者
论文摘要
我们介绍了一个粒子中的模拟(PIC)模拟的结果,该模拟模拟了空间局部的电子旋律云与电子离子等离子体之间的相互作用。后者被磁场渗透,该磁场最初是空间均匀的,并与对云的平均速度向量对齐。两对云将磁场排出,并将其堆积到电磁活塞中。它的电磁场足够强,足以将云与环境等离子体沿垂直于云传播方向垂直的方向分开。活塞从注入的对云的脊柱中传播,并将质子加速到高非依赖速度。加速质子形成了外茧,最终将通过快速的磁性冲击与未扰动的环境等离子体分离。在云的前部没有电磁活塞形成,并且在此处通过细丝不稳定性介导了冲击。最终的血浆分布类似于流体动力射流的分布。无碰撞的血浆喷射物可能会在积聚黑洞的冠状血浆中形成,活塞的强磁场与热对云之间的相互作用可能会导致此类物体的无线电排放。
We present the results from a particle-in-cell (PIC) simulation that models the interaction between a spatially localized electron-positron cloud and an electron-ion plasma. The latter is permeated by a magnetic field that is initially spatially uniform and aligned with the mean velocity vector of the pair cloud. The pair cloud expels the magnetic field and piles it up into an electromagnetic piston. Its electromagnetic field is strong enough to separate the pair cloud from the ambient plasma in the direction that is perpendicular to the cloud propagation direction. The piston propagates away from the spine of the injected pair cloud and it accelerates the protons to a high nonrelativistic speed. The accelerated protons form an outer cocoon that will eventually become separated from the unperturbed ambient plasma by a fast magnetosonic shock. No electromagnetic piston forms at the front of the cloud and a shock is mediated here by the filamentation instability. The final plasma distribution resembles that of a hydrodynamic jet. Collisionless plasma jets may form in the coronal plasma of accreting black holes and the interaction between the strong magnetic field of the piston and the hot pair cloud may contribute to radio emissions by such objects.