Shear Photospheric Forcing and the Origin of Turbulence in Coronal Loops
arXiv:1003.3872 · doi:10.1088/0004-637X/722/1/65
Abstract
We present a series of numerical simulations aimed at understanding the nature and origin of turbulence in coronal loops in the framework of the Parker model for coronal heating. A coronal loop is studied via reduced magnetohydrodynamics simulations in Cartesian geometry. A uniform and strong magnetic field threads the volume between the two photospheric planes, where a velocity field in the form of a 1D shear flow pattern is present. Initially the magnetic field which developes in the coronal loop is a simple map of the photospheric velocity field. This initial configuration is unstable to a multiple tearing instability which develops islands with X and O points in the plane orthogonal to the axial field. Once the nonlinear stage sets in the system evolution is characterized by a regime of MHD turbulence dominated by magnetic energy. A well developed power law in energy spectra is observed and the magnetic field never returns to the simple initial state mapping the photospheric flow. The formation of X and O points in the planes orthogonal to the axial field allows the continued and repeated formation and dissipation of small scale current sheets where the plasma is heated. We conclude that the observed turbulent dynamics are not induced by the complexity of the pattern that the magnetic field-lines footpoints follow but they rather stem from the inherent nonlinear nature of the system.
14 pages, 10 figures, online animations at http://www.df.unipi.it/~rappazzo/shear/ (non permanent link)
References in corpus (11)
- Instability of current sheets and formation of plasmoid chains
- Fast Reconnection in High-Lundquist-Number Plasmas Due to Secondary Tearing Instabilities
- Scaling laws of resistive magnetohydrodynamic reconnection in the high-Lundquist-number, plasmoid-unstable regime
- Self-Feeding Turbulent Magnetic Reconnection on Macroscopic Scales
- Coronal Heating, Weak MHD Turbulence and Scaling Laws
- Turbulent Magnetic Reconnection in Two Dimensions
- Self-Regulation of Solar Coronal Heating Process via Collisionless Reconnection Condition
- Magnetohydrodynamic Turbulent Cascade of Coronal Loop Magnetic Fields
- Anisotropic turbulent model for solar coronal heating
- Effects of Line-tying on Magnetohydrodynamic Instabilities and Current Sheet Formation
- Nonlinear Processes in Coronal Heating and Slow Solar Wind Acceleration
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- Large-Eddy Simulations of Magnetohydrodynamic Turbulence in Heliophysics and Astrophysics
- Critical Balance and the Physics of MHD Turbulence
- Observational Signatures of Coronal Loop Heating and Cooling Driven by Footpoint Shuffling
- Energy Dissipation in Magnetohydrodynamic Turbulence: Coherent Structures or "Nanoflares"?
- Turbulent Coronal Heating Mechanisms: Coupling of Dynamics and Thermodynamics
- An overview of flux braiding experiments
- Field lines twisting in a noisy corona: implications for energy storage and release, and initiation of solar eruptions
- Stochastic coupling of solar photosphere and corona
- A solar coronal loop in a box: Energy generation and heating
- High-Lundquist Number Scaling in Three-Dimensional Simulations of Parker's Model of Coronal Heating
- Residual Energy in Magnetohydrodynamic Turbulence
- Particle Acceleration and Heating in a Turbulent Solar Corona
- Structures in the outer solar atmosphere
- Magnetohydrodynamic Turbulent Cascade of Coronal Loop Magnetic Fields
- Oblique tearing mode instability: guide field and Hall effect
- Energetics and 3-D Structure of Elementary Events in Solar Coronal Heating
- Synergy of stochastic and systematic energization of plasmas during turbulent reconnection
- Dependence of Coronal Loop Heating on the Characteristics of Slow Photospheric Motions
- Formation and Evolution of Coherent Structures in 3D Strongly Turbulent Magnetized Plasmas
- How Turbulent is the Magnetically Closed Corona?
- Particle heating and acceleration by reconnecting and non-reconnecting Current Sheets
- Magnetic field line twisting by photospheric vortices: energy storage and release
- Subresolution Activity in Solar and Stellar Coronae from Magnetic Field Line Tangling
- An observationally-driven kinetic approach to coronal heating
- A Global Survey of EUV Corona Power Spectra
- Comparison of Methods for modelling Coronal Magnetic Fields
- Current sheets, plasmoids and flux ropes in the heliosphere. Part II: Theoretical aspects