论文标题

由于流型不稳定性而导致的脉冲星无线电排放:线性理论和PIC模拟在广泛的参数范围内

Refining pulsar radio emission due to streaming instabilities: Linear theory and PIC simulations in a wide parameter range

论文作者

Manthei, Alina C., Benáček, Jan, Muñoz, Patricio A., Büchner, Jörg

论文摘要

解释连贯的脉冲星无线电发射的几种重要机制依赖于脉冲星磁层中相对论对等离子体的流(或束)不稳定性。但是,尚不清楚流媒体不稳定本身是否足以解释观察到的相干无线电发射。由于脉冲星磁层中存在的相对论条件,可以消除动力学不稳定性。此外,关于特定模型依赖性参数的不确定性阻碍了有关此问题的结论。我们的目的是限制流式不稳定性可能导致脉冲星无线电发射的可能参数范围,重点是强和弱梁模型之间的过渡,光束漂移速度以及光束和背景等离子体成分的温度依赖性。我们以比以前的研究更通用的方式解决了适合脉冲星条件的线性相对论动力学分散关系,考虑到更广泛的参数范围。分析结果通过与相对论动力学粒子中的数值模拟进行了比较来验证。我们获得了生长速率,这是背景和光束密度,温度和流速度的函数,同时发现线性分散预测和数值模拟的显着一致性导致广泛的参数范围。在增加梁与背景密度比时发现单调生长。随着梁速度的增长,生长速率首先增加,达到最大值并再次降低较高的光束速度。发现对血浆温度的单调依赖性,在达到较冷的温度时以渐近行为表现出来。我们表明,生成的波是通过计算分数带宽的相相结合的。我们为有效的PULSAR无线电发射提供了等离子体条件的明确参数范围。

Several important mechanisms that explain the coherent pulsar radio emission rely on streaming (or beam) instabilities of the relativistic pair plasma in a pulsar magnetosphere. However, it is still not clear whether a streaming instability by itself is sufficient to explain the observed coherent radio emission. Due to the relativistic conditions that are present in the pulsar magnetosphere, kinetic instabilities could be quenched. Moreover, uncertainties regarding specific model-dependent parameters impede conclusions concerning this question. We aim to constrain the possible parameter range for which a streaming instability could lead to pulsar radio emission, focusing on the transition between strong and weak beam models, beam drift speed, and temperature dependence of the beam and background plasma components. We solve a linear relativistic kinetic dispersion relation appropriate for pulsar conditions in a more general way than in previous studies, considering a wider parameter range. The analytical results are validated by comparison with relativistic kinetic particle-in-cell (PIC) numerical simulations. We obtain growth rates as a function of background and beam densities, temperatures, and streaming velocities while finding a remarkable agreement of the linear dispersion predictions and numerical simulation results in a wide parameter range. Monotonous growth is found when increasing the beam-to-background density ratio. With growing beam velocity, the growth rates firstly increase, reach a maximum and decrease again for higher beam velocities. A monotonous dependence on the plasma temperatures is found, manifesting in an asymptotic behaviour when reaching colder temperatures. We show that the generated waves are phase-coherent by calculating the fractional bandwidth. We provide an explicit parameter range of plasma conditions for efficient pulsar radio emission.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源