首页> 外文期刊>International journal of modern physics, D. Gravitation, astrophysics, cosmology >3D RESISTIVE MHD SIMULATIONS OF MAGNETIC RECONNECTION AND THE TEARING MODE INSTABILITY IN CURRENT SHEETS
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3D RESISTIVE MHD SIMULATIONS OF MAGNETIC RECONNECTION AND THE TEARING MODE INSTABILITY IN CURRENT SHEETS

机译:电流板中磁连接的3D电阻MHD模拟和撕裂模式不稳定性

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摘要

Magnetic reconnection plays a critical role in many astrophysical processes where high energy emission is observed, e. g. particle acceleration, relativistic accretion powered outflows, pulsar winds and probably in dissipation of Poynting flux in GRBs. The magnetic field acts as a reservoir of energy and can dissipate its energy to thermal and kinetic energy via the tearing mode instability. We have performed 3D nonlinear MHD simulations of the tearing mode instability in a current sheet. Results from a temporal stability analysis in both the linear regime and weakly nonlinear (Rutherford) regime are compared to the numerical simulations. We observe magnetic island formation, island merging and oscillation once the instability has saturated. The growth in the linear regime is exponential in agreement with linear theory. In the second, Rutherford regime the island width grows linearly with time. We find that thermal energy produced in the current sheet strongly dominates the kinetic energy. Finally preliminary analysis indicates a P(k) 4.8 power law for the power spectral density which suggests that the tearing mode vortices play a role in setting up an energy cascade.
机译:在许多观测到高能量发射的天体物理过程中,磁重连起着至关重要的作用。 G。粒子加速度,相对论性积聚驱动的流出,脉冲星风以及可能是GRB中Poynting通量的消散。磁场充当能量的储存器,并可以通过撕裂模式的不稳定性将其能量耗散为热能和动能。我们已经对当前图纸中的撕裂模式不稳定性进行了3D非线性MHD仿真。将线性状态和弱非线性(卢瑟福)状态下的时间稳定性分析结果与数值模拟进行了比较。一旦不稳定性饱和,我们将观察到磁岛形成,岛合并和振荡。与线性理论一致,线性状态的增长是指数级的。第二,卢瑟福政权的岛屿宽度随时间线性增长。我们发现,当前工作表中产生的热能在很大程度上主导了动能。最后,初步分析表明,功率谱密度为P(k)4.8幂定律,表明撕裂模式涡旋在建立能量级联中发挥作用。

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