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首页> 外文期刊>The Astrophysical journal >MAGNETIC FIELD AMPLIFICATION IN NONLINEAR DIFFUSIVE SHOCK ACCELERATION INCLUDING RESONANT AND NON-RESONANT COSMIC-RAY DRIVEN INSTABILITIES
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MAGNETIC FIELD AMPLIFICATION IN NONLINEAR DIFFUSIVE SHOCK ACCELERATION INCLUDING RESONANT AND NON-RESONANT COSMIC-RAY DRIVEN INSTABILITIES

机译:非线性扩散激波加速中的磁场放大,包括共振和非共振宇宙射线驱动的不稳定性

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We present a nonlinear Monte Carlo model of efficient diffusive shock acceleration where the magnetic turbulence responsible for particle diffusion is calculated self-consistently from the resonant cosmic-ray (CR) streaming instability, together with non-resonant short- and long-wavelength CR-current-driven instabilities. We include the backpressure from CRs interacting with the strongly amplified magnetic turbulence which decelerates and heats the super-Alfvénic flow in the extended shock precursor. Uniquely, in our plane-parallel, steady-state, multi-scale model, the full range of particles, from thermal (~eV) injected at the viscous subshock to the escape of the highest energy CRs (~PeV) from the shock precursor, are calculated consistently with the shock structure, precursor heating, magnetic field amplification, and scattering center drift relative to the background plasma. In addition, we show how the cascade of turbulence to shorter wavelengths influences the total shock compression, the downstream proton temperature, the magnetic fluctuation spectra, and accelerated particle spectra. A parameter survey is included where we vary shock parameters, the mode of magnetic turbulence generation, and turbulence cascading. From our survey results, we obtain scaling relations for the maximum particle momentum and amplified magnetic field as functions of shock speed, ambient density, and shock size.
机译:我们提出了一种有效的扩散冲击加速度的非线性蒙特卡洛模型,该模型根据共振宇宙射线(CR)的流动不稳定性以及非共振短波和长波CR-电流驱动的不稳定性。我们将来自CR的背压与强烈放大的磁湍流相互作用,从而使扩展的激波前体中的超级Alfvénic流减速并加热。独特的是,在我们的平面平行,稳态,多尺度模型中,整个粒子范围,从在粘性次冲击中注入的热(〜eV)到震动前体逃逸的最高能量CR(〜PeV)的计算与冲击结构,前体加热,磁场放大和相对于背景等离子体的散射中心漂移一致。此外,我们展示了湍流到较短波长的级联如何影响总冲击压缩,下游质子温度,磁波动谱和加速粒子谱。包括参数调查,在这里我们可以改变冲击参数,磁湍流的产生方式和湍流级联。从我们的调查结果中,我们获得了最大粒子动量和放大磁场的比例关系,该比例关系是冲击速度,环境密度和冲击大小的函数。

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