Parameterizations of Chromospheric Condensations in dG and dMe Model Flare Atmospheres
arXiv:1711.09488 · doi:10.3847/1538-4357/aa9d91
Abstract
The origin of the near-ultraviolet and optical continuum radiation in flares is critical for understanding particle acceleration and impulsive heating in stellar atmospheres. Radiative-hydrodynamic simulations in 1D have shown that high energy deposition rates from electron beams produce two flaring layers at T~10^4 K that develop in the chromosphere: a cooling condensation (downflowing compression) and heated non-moving (stationary) flare layers just below the condensation. These atmospheres reproduce several observed phenomena in flare spectra, such as the red wing asymmetry of the emission lines in solar flares and a small Balmer jump ratio in M dwarf flares. The high beam flux simulations are computationally expensive in 1D, and the (human) timescales for completing NLTE models with adaptive grids in 3D will likely be unwieldy for a time to come. We have developed a prescription for predicting the approximate evolved states, continuum optical depth, and the emergent continuum flux spectra of radiative-hydrodynamic model flare atmospheres. These approximate prescriptions are based on an important atmospheric parameter: the column mass (m_ref) at which hydrogen becomes nearly completely ionized at the depths that are approximately in steady state with the electron beam heating. Using this new modeling approach, we find that high energy flux density (>F11) electron beams are needed to reproduce the brightest observed continuum intensity in IRIS data of the 2014-Mar-29 X1 solar flare and that variation in m_ref from 0.001 to 0.02 g/cm2 reproduces most of the observed range of the optical continuum flux ratios at the peaks of M dwarf flares.
29 pages, 9 figures, accepted for publication in the Astrophysical Journal
References in corpus (19)
- How to Constrain Your M Dwarf: measuring effective temperature, bolometric luminosity, mass, and radius
- ULTRACAM: an ultra-fast, triple-beam CCD camera for high-speed astrophysics
- The spectral evolution of impulsive solar X-ray flares
- Temporal evolution of multiple evaporating ribbon sources in a solar flare
- Radiative Hydrodynamic Models of Optical and Ultraviolet Emission from M Dwarf Flares
- The Radiated Energy Budget of Chromospheric Plasma in a Major Solar Flare Deduced From Multi-Wavelength Observations
- Nonthermal Hard X-ray Emission and Iron Kalpha Emission from a Superflare on II Pegasi
- The Atmospheric Response to High Nonthermal Electron Beam Fluxes in Solar Flares I: Modeling the Brightest NUV Footpoints in the X1 Solar Flare of 2014 March 29
- New Insights into White-Light Flare Emission from Radiative-Hydrodynamic Modeling of a Chromospheric Condensation
- Multiwavelength observations of a giant flare on CN Leonis I. The chromosphere as seen in the optical spectra
- Hydrogen Balmer Continuum in Solar Flares Detected by the Interface Region Imaging Spectrograph (IRIS)
- Hydrogen Balmer Line Broadening in Solar and Stellar Flares
- A Very Bright, Very Hot, and Very Long Flaring Event from the M Dwarf Binary System DG CVn
- GALEX high time-resolution ultraviolet observations of dMe flare events
- Formation of the thermal infrared continuum in solar flares
- Radiative hydrodynamic modelling and observations of the X-class solar flare on 2011 March 9
- Spectroscopic inversions of the Ca ii 8542 Å line in a C-class solar flare
- Observations and simulations of the Na I D1 line profiles in an M-class solar flare
- Dynamics of double layers, ion acceleration and heat flux suppression during solar flares
Cited by in corpus (22)
- Do Kepler superflare stars really include slowly-rotating Sun-like stars ? - Results using APO 3.5m telescope spectroscopic observations and Gaia-DR2 data -
- Statistical Properties of Superflares on Solar-type Stars: Results Using All of the Kepler Primary Mission Data
- EvryFlare III: Temperature Evolution and Habitability Impacts of Dozens of Superflares Observed Simultaneously by Evryscope and TESS
- Search for flares and associated CMEs on late-type main-sequence stars in optical SDSS spectra
- Modeling Mg II h, k and Triplet Lines at Solar Flare Ribbons
- 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
- Extending Optical Flare Models to the UV: Results from Comparing of TESS and GALEX Flare Observations For M Dwarfs
- Stellar coronal mass ejections II. Constraints from spectroscopic observations
- Spectral Evidence for Heating at Large Column Mass in Umbral Solar Flare Kernels I: IRIS NUV Spectra of the X1 Solar Flare of 2014 Oct 25
- Constraints on Stellar Flare Energy Ratios in the NUV and Optical From a Multiwavelength Study of GALEX and Kepler Flare Stars
- Fast optical flares from M dwarfs detected by a one-second-cadence survey with Tomo-e Gozen
- IRIS Si IV Line Profiles at Flare Ribbons as Indications of Chromospheric Condensation
- Flare Induced Photospheric Velocity Diagnostics
- The Response of the Lyman-Alpha Line in Different Flare Heating Models
- Formation Of The Lyman Continuum During Solar Flares
- Characterisation of the NUV and Optical Emission and Temperature of Flares from Ross 733 with Swift and TESS
- Dissecting the Quadruple Binary Hyad vA 351 -- Masses for three M Dwarfs and a White Dwarf
- On the Origin of Optical Radiation during the Impulsive Phase of Flares on dMe Stars. I. Discussion of Gas Dynamic Models
- Predicted white-light solar flare emission from the F-CHROMA grid of models
- On the Origin of Optical Radiation During the Impulsive Phase of Flares on dMe Stars. II. Continuum and Line Radiation
- Specialist Discussion Meeting: 3D structure of the flare chromosphere
- Solar Flare Heating with Turbulent Suppression of Thermal Conduction