论文标题

强湍流中的非共振粒子加速度:与动力学和MHD模拟进行比较

Non-resonant particle acceleration in strong turbulence: comparison to kinetic and MHD simulations

论文作者

Bresci, Virginia, Lemoine, Martin, Gremillet, Laurent, Comisso, Luca, Sironi, Lorenzo, Demidem, Camilia

论文摘要

无碰撞,磁化的湍流为在各种天体物理部位生成非热高能量颗粒提供了有希望的框架。然而,控制粒子加速的详细机制仍然存在争议。 By means of 2D and 3D PIC, as well as 3D (incompressible) magnetohydrodynamic (MHD) simulations, we test here a recent model of non-resonant particle acceleration in strongly magnetized turbulence~\cite{2021PhRvD.104f3020L}, which ascribes the energization of particles to their continuous interaction with the random velocity flow of the turbulence, in原始费米模型的精神。为此,我们比较了在模拟中跟踪的大量粒子,预测和观察到的粒子矩史的历史。预测的历史记录是从模型中得出的,从模拟中提取,每个点沿粒子轨迹,即控制加速度的三个力项:沿场线方向投射的场速度速度的加速度,其剪切沿相同的方向投射,横向压缩部分。总体而言,我们发现模型预测与数值实验之间存在明显的相关性,表明该非共鸣模型可以通过强磁性湍流中的Fermi-Type过程成功地说明大量粒子能量。我们还观察到,平行的剪切贡献倾向于在PIC模拟中主导能量的物理,而在MHD不可压缩的模拟中,平行剪切和横向压缩项都提供了相等的贡献。

Collisionless, magnetized turbulence offers a promising framework for the generation of non-thermal high-energy particles in various astrophysical sites. Yet, the detailed mechanism that governs particle acceleration has remained subject to debate. By means of 2D and 3D PIC, as well as 3D (incompressible) magnetohydrodynamic (MHD) simulations, we test here a recent model of non-resonant particle acceleration in strongly magnetized turbulence~\cite{2021PhRvD.104f3020L}, which ascribes the energization of particles to their continuous interaction with the random velocity flow of the turbulence, in the spirit of the original Fermi model. To do so, we compare, for a large number of particles that were tracked in the simulations, the predicted and the observed histories of particles momenta. The predicted history is that derived from the model, after extracting from the simulations, at each point along the particle trajectory, the three force terms that control acceleration: the acceleration of the field line velocity projected along the field line direction, its shear projected along the same direction, and its transverse compressive part. Overall, we find a clear correlation between the model predictions and the numerical experiments, indicating that this non-resonant model can successfully account for the bulk of particle energization through Fermi-type processes in strongly magnetized turbulence. We also observe that the parallel shear contribution tends to dominate the physics of energization in the PIC simulations, while in the MHD incompressible simulation, both the parallel shear and the transverse compressive term provide about equal contributions.

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