Scaling Law of Relativistic Sweet-Parker Type Magnetic Reconnection
arXiv:1108.3891 · doi:10.1088/2041-8205/739/2/L53
Abstract
Relativistic Sweet-Parker type magnetic reconnection is investigated by relativistic resistive magnetohydrodynamic (RRMHD) simulations. As an initial setting, we assume anti-parallel magnetic fields and a spatially uniform resistivity. A perturbation imposed on the magnetic fields triggers magnetic reconnection around a current sheet, and the plasma inflows into the reconnection region. The inflows are then heated due to ohmic dissipation in the diffusion region, and finally become relativistically hot outflows. The outflows are not accelerated to ultra-relativistic speeds (i.e., Lorentz factor ~ 1), even when the magnetic energy dominates the thermal and rest mass energies in the inflow region. Most of the magnetic energy in the inflow region is converted into the thermal energy of the outflow during the reconnection process. The energy conversion from magnetic to thermal energy in the diffusion region results in an increase in the plasma inertia. This prevents the outflows from being accelerated to ultra-relativistic speeds. We find that the reconnection rate R obeys the scaling relation R S^{-0.5}, where S is the Lundquist number. This feature is the same as that of non-relativistic reconnection. Our results are consistent with the theoretical predictions of Lyubarsky (2005) for Sweet-Parker type magnetic reconnection.
accepted for publication in ApJL, 6 pages, 4 figures
References in corpus (8)
- The Internal-Collision-Induced Magnetic Reconnection and Turbulence (ICMART) Model of Gamma-Ray Bursts
- Fast magnetic reconnection in the plasmoid-dominated regime
- The Generation of Nonthermal Particles in the Relativistic Magnetic Reconnection of Pair Plasmas
- Multi-dimensional Numerical Scheme for Resistive Relativistic MHD
- Two-dimensional MHD simulations of relativistic magnetic reconnection
- Resistive Magnetohydrodynamic Simulations of Relativistic Magnetic Reconnection
- The role of the Weibel instability at the reconnection jet front in relativistic pair plasma reconnection
- Self-regulation of the reconnecting current layer in relativistic pair plasma reconnection
Cited by in corpus (23)
- The Physics of Gamma-Ray Bursts and Relativistic Jets
- Three-Dimensional Relativistic Magnetohydrodynamic Simulations of Current-Driven Instability. III. Rotating Relativistic Jets
- Relativistic magnetic reconnection in collisionless ion-electron plasmas explored with particle-in-cell simulations
- Thermal-inertial effects on magnetic reconnection in relativistic pair plasmas
- Spatial Growth of the Current-Driven Instability in Relativistic Jets
- A Flux Rope Network and Particle Acceleration in Three Dimensional Relativistic Magnetic Reconnection
- PIC methods in astrophysics: Simulations of relativistic jets and kinetic physics in astrophysical systems
- Turbulent Reconnection in Relativistic Plasmas And Effects of Compressibility
- Evolution of the Relativistic Plasmoid-Chain in the Poynting-Dominated Plasma
- Numerical Treatment of Anisotropic Radiation Field Coupling with the Relativistic Resistive Magnetofluids
- Relativistic Magnetic Reconnection in Kerr Spacetime
- Explosive reconnection of double tearing modes in relativistic plasmas: application to the Crab flares
- The Role of the Equation of State in Resistive Relativistic Magnetohydrodynamics
- Relativistic Asymmetric Reconnection
- Collisionless Magnetic Reconnection in Curved Spacetime and the Effect of Black Hole Rotation
- Evolution of 3-dimensional Relativistic Current Sheets and Development of Self-Generated Turbulence
- Relativistic resistive magneto-hydrodynamics code for high-energy heavy-ion collisions
- Directed flow in relativistic resistive magneto-hydrodynamic expansion for symmetric and asymmetric collision systems
- A Second-order Divergence-constrained Multidimensional Numerical Scheme for Relativistic Two-Fluid Electrodynamics
- Magnetic reconnection under centrifugal and gravitational electromotive forces
- Lattice Boltzmann model for resistive relativistic magnetohydrodynamics
- Thermal synchrotron radiation from RRMHD simulations of the double tearing mode reconnection - Application to the Crab flares
- Conditions for Relativistic Magnetic Reconnection under the Presence of Shear Flow and Guide Field