论文标题
新的宇宙射线驱动不稳定
A new cosmic ray-driven instability
论文作者
论文摘要
宇宙射线(CR)驱动的不稳定性在冲击和星系簇中的CR传播时在粒子加速期间起决定性作用。这些不稳定性扩大了磁场并调节CR传输,以使无碰撞的CR种群紧密耦合到热等离子体,并提供动态反馈。在这里,我们表明,只要Crs以小于电子速度的AlfVén速度,CR离子和电子的陀螺仪之间的中间尺度不稳定,具有有限的螺距角驱动电磁波(沿背景磁场)在中间尺度上不稳定的CRS不稳定。通过求解线性分散关系,我们表明这种新的不稳定性通常比在离子陀螺仪上常见的共振不稳定性相比,超过一个数量级的速度更快。我们发现了这种中间尺度不稳定的增长率,并确定与CRS相处的框架中的背景离子 - 循环模式。我们通过模拟粒子(PIC)模拟确认理论生长速率,并研究这种不稳定性的非线性饱和度。我们确定了这种中间尺度不稳定的三个重要的星体物理应用,预计1。调节CR运输并加强星系和星系簇中的CR反馈,2。将电子注入到扩散的冲击加速过程中,3.。3。
Cosmic ray (CR)-driven instabilities play a decisive role during particle acceleration at shocks and CR propagation in galaxies and galaxy clusters. These instabilities amplify magnetic fields and modulate CR transport so that the intrinsically collisionless CR population is tightly coupled to the thermal plasma and provides dynamical feedback. Here, we show that CRs with a finite pitch angle drive electromagnetic waves (along the background magnetic field) unstable on intermediate scales between the gyro-radii of CR ions and electrons as long as CRs are drifting with a velocity less than half of the Alfvén speed of electrons. By solving the linear dispersion relation, we show that this new instability typically grows faster by more than an order of magnitude in comparison to the commonly discussed resonant instability at the ion gyroscale. We find the growth rate for this intermediate-scale instability and identify the growing modes as background ion-cyclotron modes in the frame that is comoving with the CRs. We confirm the theoretical growth rate with a particle-in-cell (PIC) simulation and study the non-linear saturation of this instability. We identify three important astro-physical applications of this intermediate-scale instability, which is expected to 1. modulate CR transport and strengthen CR feedback in galaxies and galaxy clusters, 2. enable electron injection into the diffusive shock acceleration process, and 3. decelerate CR escape from the sites of particle acceleration which would generate gamma-ray halos surrounding CR sources such as supernova remnants.