Determination of Stochastic Acceleration Model Characteristics in Solar Flares
arXiv:1307.1837 · doi:10.1088/0004-637X/777/1/33
Abstract
Following our recent paper (Petrosian & Chen 2010), we have developed an inversion method to determine the basic characteristics of the particle acceleration mechanism directly and non-parametrically from observations under the leaky box framework. In the above paper, we demonstrated this method for obtaining the energy dependence of the escape time. Here, by converting the Fokker-Planck equation to its integral form, we derive the energy dependences of the energy diffusion coefficient and direct acceleration rate for stochastic acceleration in terms of the accelerated and escaping particle spectra. Combining the regularized inversion method of Piana et al. 2007 and our procedure, we relate the acceleration characteristics in solar flares directly to the count visibility data from RHESSI. We determine the timescales for electron escape, pitch angle scattering, energy diffusion, and direct acceleration at the loop top acceleration region for two intense solar flares based on the regularized electron flux spectral images. The X3.9 class event shows dramatically different energy dependences for the acceleration and scattering timescales, while the M2.1 class event shows a milder difference. The M2.1 class event could be consistent with the stochastic acceleration model with a very steep turbulence spectrum. A likely explanation of the X3.9 class event could be that the escape of electrons from the acceleration region is not governed by a random walk process, but instead is affected by magnetic mirroring, in which the scattering time is proportional to the escape time and has an energy dependence similar to the energy diffusion time.
11 pages, 5 figures, accepted for publication in ApJ
References in corpus (13)
- Plasmoid Ejections and Loop Contractions in an Eruptive M7.7 Solar Flare: Evidence of Particle Acceleration and Heating in Magnetic Reconnection Outflows
- Double Coronal Hard and Soft X-ray Source Observed by RHESSI: Evidence for Magnetic Reconnection and Particle Acceleration in Solar Flares
- Relations between concurrent hard X-ray sources in solar flares
- Particle acceleration mechanisms
- Implications for electron acceleration and transport from non-thermal electron rates at looptop and footpoint sources in solar flares
- Combined Modeling of Acceleration, Transport, and Hydrodynamic Response in Solar Flares: I. The Numerical Model
- Electron Acceleration in Solar Flares: Theory of Spectral Evolution
- Particle acceleration by strong turbulence in solar flares: theory of spectrum evolution
- On the spectral hardening at ~> 300 keV in solar flares
- A Systematic Examination of Particle Motion in a Collapsing Magnetic Trap Model for Solar Flares
- The Specific Acceleration Rate in Loop-structured Solar Flares -- Implications for Electron Acceleration Models
- Stochastic Particle Acceleration by Helical Turbulence in Solar Flares
- Return currents and energy transport in the solar flaring atmosphere
Cited by in corpus (26)
- Electron Power-Law Spectra in Solar and Space Plasmas
- Fermi-LAT Observations of High-energy Behind-the-limb Solar Flares
- Magnetic Reconnection During the Post-Impulsive Phase of a Long-Duration Solar Flare: Bi-Directional Outflows as a Cause of Microwave and X-ray Bursts
- The X-ray and Mid-Infrared luminosities in Luminous Type 1 Quasars
- On the variation of solar flare coronal x-ray source sizes with energy
- Hard X-Ray Emission from Partially Occulted Solar Flares: RHESSI Observations in Two Solar Cycles
- Combined Modeling of Acceleration, Transport, and Hydrodynamic Response in Solar Flares. II. Inclusion of Radiative Transfer with RADYN
- Particle Acceleration in Solar Flares and Associated CME Shocks
- Numerical Modeling of Energetic Electron Acceleration, Transport, and Emission in Solar Flares: Connecting Loop-top and Footpoint Hard X-Ray Sources
- Evolution of young protoclusters embedded in dense massive clumps. A new grid of population synthesis SED models and a new set of L/M evolutionary tracks
- Subsecond Spikes in Fermi GBM X-ray Flux as a Probe for Solar Flare Particle Acceleration
- The Relation Between Escape and Scattering Times of Energetic Particles in a Turbulent Magnetized Plasma: Application to Solar Flares
- Measuring X-ray anisotropy in solar flares. Prospective stereoscopic capabilities of STIX and MiSolFA
- Spatially inhomogeneous acceleration of electrons in solar flares
- Harmonic ECME Excited by Energetic Electrons Travelling Inside A Coronal Loop
- Spectral and Imaging Diagnostics of Spatially-Extended Turbulent Electron Acceleration and Transport in Solar Flares
- Galactic star formation with NIKA2 (GASTON): Filament convergence and its link to star formation
- Harmonic Electron Cyclotron Maser Emission along the Coronal Loop
- Determination of Acceleration Mechanism Characteristics Directly and Non-Parametrically from Observations: Application to Supernova Remnants
- Implications of loop-top origin for microwave, hard X-ray, and low-energy gamma-ray emissions from behind the limb flares
- Hard X-ray morphology of the X1.3 April 25, 2014 partially occulted limb solar flare
- Onset of Electron Acceleration in a Flare Loop
- The Efficiency of Harmonic Emissions Excited by Energetic Electrons in Coronal Loops
- The Drag Instability in a 2D Isothermal C-shock
- Energy-Containing Electrons in Solar Flares: Improving Hard X-Ray and EUV Diagnostics
- Time-dependent Turbulent Electron Acceleration and Transport in Solar Flares