The structure of the magnetic reconnection exhaust boundary
arXiv:1111.7039 · doi:10.1063/1.3685755
Abstract
The structure of shocks that form at the exhaust boundaries during collisionless reconnection of anti-parallel fields is studied using particle-in-cell (PIC) simulations and modeling based on the anisotropic magnetohydrodynamic equations. Large-scale PIC simulations of reconnection and companion Riemann simulations of shock development demonstrate that the pressure anisotropy produced by counterstreaming ions within the exhaust prevents the development of classical Petschek switch-off-slow shocks (SSS). The shock structure that does develop is controlled by the firehose stability parameter epsilon=1-mu_0(P_parallel-P_perpendicular)/ B^2 through its influence on the speed order of the intermediate and slow waves. Here P_parallel and P_perpendicular are the pressure parallel and perpendicular to the local magnetic field. The exhaust boundary is made up of a series of two shocks and a rotational wave. The first shock takes epsilon from unity upstream to a plateau of 0.25 downstream. The condition epsilon =0.25 is special because at this value the speeds of nonlinear slow and intermediate waves are degenerate. The second slow shock leaves epsilon=0.25 unchanged but further reduces the amplitude of the reconnecting magnetic field. Finally, in the core of the exhaust epsilon drops further and the transition is completed by a rotation of the reconnecting field into the out-of-plane direction. The acceleration of the exhaust takes place across the two slow shocks but not during the final rotation. The result is that the outflow speed falls below that expected from the Walen condition based on the asymptotic magnetic field. A simple analytic expression is given for the critical value of epsilon within the exhaust below which SSSs no longer bound the reconnection outflow.
13 pages, 5 figures
References in corpus (4)
- Two-scale structure of the electron dissipation region during collisionless magnetic reconnection
- A Model for the Origin of High Density in Loop-top X-ray Sources
- The effects of strong temperature anisotropy on the kinetic structure of collisionless slow shocks and reconnection exhausts. Part I: PIC simulations
- The effects of strong temperature anisotropy on the kinetic structure of collisionless slow shocks and reconnection exhausts. Part II: Theory
Cited by in corpus (21)
- Why does steady-state magnetic reconnection have a maximum local rate of order 0.1?
- A Review of the 0.1 Reconnection Rate Problem
- Reduction of Ion Heating During Magnetic Reconnection by Large-Scale Effective Potentials
- First-Principles Theory of the Rate of Magnetic Reconnection in Magnetospheric and Solar Plasmas
- Relativistic magnetic reconnection in collisionless ion-electron plasmas explored with particle-in-cell simulations
- The energetics of relativistic magnetic reconnection: ion-electron repartition and particle distribution hardness
- On the Role of Separatrix Instabilities in Heating the Reconnection Outflow Region
- The Onset of Ion Heating During Magnetic Reconnection with a Strong Guide Field
- The Reduction of Magnetic Reconnection Outflow Jets to Sub-Alfvénic Speeds
- Kinetic aspects of the ion current layer in a reconnection outflow exhaust
- Intermediate shock substructures within a slow-mode shock occurring in partially ionised plasma
- Strongly localized magnetic reconnection by the super-Alfvenic shear flow
- How gas-dynamic flare models powered by Petschek reconnection differ from those with ad hoc energy sources
- Particle Heating and Energy Partition in Low- Guide Field Reconnection with Kinetic Riemann Simulations
- The Effect of Thermal Pressure on Collisionless Magnetic Reconnection Rate
- Reconnection outflow generated turbulence in the solar wind
- A new framework for magnetohydrodynamic simulations with anisotropic pressure
- Generation of Alfvénic Waves and Turbulence in Reconnection Jets
- Instabilities and Turbulence in Low- Guide Field Reconnection Exhausts with Kinetic Riemann Simulations
- Characterizing Ion Flows Across a Dipolarization Jet
- Transition to Petschek Reconnection in Subrelativistic Pair Plasmas: Implications for Particle Acceleration