A Model for Gradual Phase Heating Driven by MHD Turbulence in Solar Flares
arXiv:2301.04592 · doi:10.3847/1538-4357/acb1b2
Abstract
Coronal flare emission is commonly observed to decay on timescales longer than those predicted by impulsively-driven, one-dimensional flare loop models. This discrepancy is most apparent during the gradual phase, where emission from these models decays over minutes, in contrast to the hour or more often observed. Magnetic reconnection is invoked as the energy source of a flare, but should deposit energy into a given loop within a matter of seconds. Models which supplement this impulsive energization with a long, persistent ad hoc heating have successfully reproduced long-duration emission, but without providing a clear physical justification. Here we propose a model for extended flare heating by the slow dissipation of turbulent Alfvén waves initiated during the retraction of newly-reconnected flux tubes through a current sheet. Using one-dimensional simulations, we track the production and evolution of MHD wave turbulence trapped by reflection from high-density gradients in the transition region. Turbulent energy dissipates through non-linear interaction between counter-propagating waves, modeled here using a phenomenological one-point closure model. AIA EUV light curves synthesized from the simulation were able to reproduce emission decay on the order of tens of minutes. We find this simple model offers a possible mechanism for generating the extended heating demanded by observed coronal flare emissions self-consistently from reconnection-powered flare energy release.
References in corpus (9)
- Imaging and spectroscopic observations of magnetic reconnection and chromospheric evaporation in a solar flare
- 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
- Spectral signatures of chromospheric condensation in a major solar flare
- Closed-Field Coronal Heating Driven by Wave Turbulence
- Gas-dynamic shock heating of post-flare loops due to retraction following localized, impulsive reconnection
- An exploration of heating mechanisms in a supra-arcade plasma sheet formed after a coronal mass ejection
- Solar Flare Arcade Modelling: Bridging the gap from 1D to 3D Simulations of Optically Thin Radiation
- Heating and cooling of coronal loops with turbulent suppression of parallel heat conduction
- Connecting Chromospheric Condensation Signatures to Reconnection Driven Heating Rates in an Observed Flare