Multiscale dynamics of solar magnetic structures
arXiv:1111.5053 · doi:10.1088/0004-637X/748/1/60
Abstract
Multiscale topological complexity of solar magnetic field is among the primary factors controlling energy release in the corona, including associated processes in the photospheric and chromospheric boundaries. We present a new approach for analyzing multiscale behavior of the photospheric magnetic flux underlying this dynamics as depicted by a sequence of high-resolution solar magnetograms. The approach involves two basic processing steps: (1) identification of timing and location of magnetic flux origin and demise events (as defined by DeForest et al., 2007) by tracking spatiotemporal evolution of unipolar and bipolar photospheric regions, and (2) analysis of collective behavior of the detected magnetic events using a generalized version of Grassberger - Procaccia correlation integral algorithm. The scale-free nature of the developed algorithms makes it possible to characterize the dynamics of the photospheric network across a wide range of distances and relaxation times. Three types of photospheric conditions are considered to test the method: a quiet photosphere, a solar active region (NOAA 10365) in a quiescent non-flaring state, and the same active region during a period of M-class flares. The results obtained show (1) the presence of a topologically complex asymmetrically fragmented magnetic network in the quiet photosphere driven by meso- and supergranulation, (2) the formation of non-potential magnetic structures with complex polarity separation lines inside the active region, and (3) statistical signatures of canceling bipolar magnetic structures coinciding with flaring activity in the active region. Each of these effects can represent an unstable magnetic configuration acting as an energy source for coronal dissipation and heating.
18 pages, 7 figures, 1 table
References in corpus (6)
- The solar magnetic field
- A model for magnetically coupled sympathetic eruptions
- Solar Magnetic Tracking. I. Software Comparison and Recommended Practices
- Structure and Dynamics of the Sun's Open Magnetic Field
- Coexistence of Self-Organized Criticality and Intermittent Turbulence in the Solar Corona
- Intermittency Spectra of the Magnetic Field in Solar Active Regions
Cited by in corpus (17)
- 25 Years of Self-Organized Criticality: Solar and Astrophysics
- Plumelets: Dynamic Filamentary Structures in Solar Coronal Plumes
- Stochastic coupling of solar photosphere and corona
- Self-Organized Criticality in Solar and Stellar Flares: Are Extreme Events Scale-Free ?
- Multiscale magnetic underdense regions on the solar surface: Granular and Mesogranular scales
- Spatiotemporal organization of energy release events in the quiet solar corona
- Statistical Evidence for Small-Scale Interchange Reconnection at a Coronal Hole Boundary
- Formation and Evolution of Coherent Structures in 3D Strongly Turbulent Magnetized Plasmas
- Correlation of the sunspot number and the waiting time distribution of solar flares, coronal mass ejections, and solar wind switchback events observed with the Parker Solar Probe
- Spatio-temporal scaling of turbulent photospheric line-of-sight magnetic field in active region NOAA 11158
- Fractal dimensions of umbral and penumbral regions of sunspots
- Solar Wind Structures from the Gaussianity of Magnetic Magnitude
- Complexity Methods Applied to Turbulence in Plasma Astrophysics
- Observations of an Energetically Isolated Quiet Sun Transient: Evidence of Quasi-Steady Coronal Heating
- Solar Atmospheric Magnetic Energy Coupling: Broad Plasma Conditions and Spectrum Regimes
- Remote Sensing of Coronal Forces During a Solar Prominence Eruption
- Effect of rewiring for a sandpile model on a directed network