Understanding breaks in solar flares x-ray spectra: Evaluation of a co-spatial return-current model
arXiv:1706.03897 · doi:10.3847/1538-4357/aa98de 10.3847/1538-4357/aa98de 10.3847/1538-4357/aa98de
Abstract
Hard x-ray spectral breaks are explained in terms of a 1D model with a co-spatial return current. We study 19 flares observed by RHESSI (Ramaty High Energy Solar Spectroscopic Imager) with strong spectral breaks at energies around a few deka-keV, that cannot be explained by isotropic albedo or non-uniform ionization alone. We identify these breaks at the HXR peak time, but we obtain 8 s-cadence spectra of the entire impulsive phase. Electrons with an initially power-law distribution and a sharp low-energy cutoff lose energy through return-current losses until they reach the thick target, where they lose their remaining energy through collisions. Our main results are: (1) The return-current collisional thick-target model (RCCTTM) provides acceptable fits for spectra with strong breaks. (2) Limits on the plasma resistivity are derived from the fitted potential drop and deduced electron-beam flux density, assuming the return-current is a drift current in the ambient plasma. These resistivities are typically 2-3 orders of magnitude higher than the Spitzer resistivity at the fitted temperature, and provide a test for the adequacy of classical resistivity and the stability of the return current. (3) Using the upper limit of the low-energy cutoff, the return current is always stable to the generation of ion acoustic and electrostatic ion cyclotron instabilities when the electron temperature is lower than 9 times the ion temperature. (4) In most cases the return current is most likely primarily carried by runaway electrons from the tail of the thermal distribution rather than the bulk drifting thermal electrons. For these cases, anomalous resistivity is not required.
47 pages, 14 figures
References in corpus (8)
- The spectral evolution of impulsive solar X-ray flares
- RHESSI Line and Continuum Observations of Super-hot Flare Plasma
- Stereoscopic electron spectroscopy of solar hard X-ray flares with a single spacecraft
- Hard X-ray Spectra and Positions of Solar Flares observed by RHESSI: photospheric albedo, directivity and electron spectra
- Spectral Hardening of Large Solar Flares
- Electron-Electron Bremsstrahlung Emission and the Inference of Electron Flux Spectra in Solar Flares
- Measurements of electron anisotropy in solar flares using albedo with RHESSI X-ray data
- Estimates of Densities and Filling Factors from a Cooling Time Analysis of Solar Microflares Observed with RHESSI
Cited by in corpus (13)
- Critical Science Plan for the Daniel K. Inouye Solar Telescope (DKIST)
- Modeling the Transport of Nonthermal Particles in Flares Using Fokker-Planck Kinetic Theory
- 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
- Determination of the total accelerated electron rate and power using solar flare hard X-ray spectra
- Numerical Modeling of Energetic Electron Acceleration, Transport, and Emission in Solar Flares: Connecting Loop-top and Footpoint Hard X-Ray Sources
- Possible Detection of Subsecond-period Propagating Magnetohydrodynamics Waves in Post-reconnection Magnetic Loops during a Two-ribbon Solar Flare
- Probing solar flare accelerated electron distributions with prospective X-ray polarimetry missions
- 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
- The efficiency of electron acceleration during the impulsive phase of a solar flare
- Spectral Power-law Formation by Sequential Particle Acceleration in Multiple Flare Magnetic Islands
- Flare-accelerated Electrons in the Kappa Distribution from X-Ray Spectra with the Warm-Target Model
- Time-dependent Turbulent Electron Acceleration and Transport in Solar Flares