Modeling the Transport of Nonthermal Particles in Flares Using Fokker-Planck Kinetic Theory
arXiv:2008.10671 · doi:10.3847/1538-4357/abb239
Abstract
We describe a new approach for modeling the transport of high energy particles accelerated during flares from the acceleration region in the solar corona until their eventual thermalization in the flare footpoint. Our technique numerically solves the Fokker-Planck equation and includes forces corresponding to Coulomb collisions in a flux loop with nonuniform ionization, synchrotron emission reaction, magnetic mirroring and a return current electric field. Our solution to the Fokker-Planck equation includes second-order pitch angle and momentum diffusion. It is applicable to particles of arbitrary mass and charge. By tracking the collisions, we predict the bremsstrahlung produced as these particles interact with the ambient stellar atmosphere. This can be compared directly with observations and used to constrain the accelerated particle energy distribution. We have named our numerical code FP and have distributed it for general use. We demonstrate its effectiveness in several test cases.
Accepted for publication in the Astrophysical Journal, 19 pages, 7 figures
References in corpus (5)
- The Radiated Energy Budget of Chromospheric Plasma in a Major Solar Flare Deduced From Multi-Wavelength Observations
- New Insights into White-Light Flare Emission from Radiative-Hydrodynamic Modeling of a Chromospheric Condensation
- Combined Modeling of Acceleration, Transport, and Hydrodynamic Response in Solar Flares: I. The Numerical Model
- The Acceleration and Confinement of Energetic Electrons by a Termination Shock in a Magnetic Trap: An Explanation for Nonthermal Loop-top Sources during Solar Flares
- Understanding breaks in solar flares x-ray spectra: Evaluation of a co-spatial return-current model
Cited by in corpus (17)
- Probing the Physics of the Solar Atmosphere with the Multi-slit Solar Explorer (MUSE): II. Flares and Eruptions
- The Atmospheric Response to High Nonthermal Electron Beam Fluxes in Solar Flares. II. Hydrogen Broadening Predictions for Solar Flare Observations with the Daniel K. Inouye Solar Telescope
- He I 10830 Å Dimming During Solar Flares, I. The Crucial Role of Non-Thermal Collisional Ionisations
- Numerical Modeling of Energetic Electron Acceleration, Transport, and Emission in Solar Flares: Connecting Loop-top and Footpoint Hard X-Ray Sources
- Solar Flare Ribbon Fronts I: Constraining flare energy deposition with IRIS spectroscopy
- Prospects of Detecting Non-thermal Protons in Solar Flares via Lyman Line Spectroscopy: Revisiting the Orrall-Zirker Effect
- Geometric Assumptions in Hydrodynamic Modeling of Coronal and Flaring Loops
- Flare Induced Photospheric Velocity Diagnostics
- Role of Suprathermal Runaway Electrons Returning to the Acceleration Region in Solar Flares
- Bridging High-Density, Electron Beam Coronal Transport and Deep Chromospheric Heating in Stellar Flares
- Spectral Power-law Formation by Sequential Particle Acceleration in Multiple Flare Magnetic Islands
- Radiative losses in the chromosphere during a C-class flare
- Formation Of The Lyman Continuum During Solar Flares
- Solar Flare Energy Partitioning and Transport -- the Impulsive Phase (a Heliophysics 2050 White Paper)
- Next-Generation Comprehensive Data-Driven Models of Solar Eruptive Events
- Separating flare and secondary atmospheric signals with RADYN modeling of near-infrared JWST transmission spectroscopy observations of TRAPPIST-1
- Solar Flare Heating with Turbulent Suppression of Thermal Conduction