Impact of Dynamic State on the Mass Condensation Rate of Solar Prominences
arXiv:1811.00828 · doi:10.3847/1538-4357/aaee6f
Abstract
The interiors of quiescent prominences are filled with turbulent flows. The evolution of upflow plumes, descending pillars, and vortex motions has been clearly detected in high-resolution observations. The Rayleigh-Taylor instability is thought to be a driver of such internal flows. Descending pillars are related to the mass budgets of prominences. There is a hypothesis of dynamic equilibrium where the mass drainage via descending pillars and the mass supply via radiative condensation are balanced to maintain the prominence mass; however, the background physics connecting the two different processes is poorly understood. In this study, we reproduced the dynamic interior of a prominence via radiative condensation and the mechanism similar to the Rayleigh-Taylor instability using a three-dimensional magnetohydrodynamic simulation including optically thin radiative cooling and nonlinear anisotropic thermal conduction. The process to prominence formation in the simulation follows the reconnection-condensation model, where topological change in the magnetic field caused by reconnection leads to radiative condensation. Reconnection is driven by converging motion at the footpoints of the coronal arcade fields. In contrast to the previous model, by randomly changing the speed of the footpoint motion along a polarity inversion line, the dynamic interior of prominence is successfully reproduced. We find that the mass condensation rate of the prominence is enhanced in the case with dynamic state. Our results support the observational hypothesis that the condensation rate is balanced with the mass drainage rate and suggest that a self-induced mass maintenance mechanism exists.
Accepted for publication in ApJ, 26 pages, 12 figures
References in corpus (11)
- Emergence of a Helical Flux Rope Under an Active Region Prominence
- Formation and plasma circulation of solar prominences
- The discovery of geomagnetically trapped cosmic ray antiprotons
- Rayleigh-Taylor instability in prominences from numerical simulations including partial ionization effects
- Reconnection-Condensation Model for Solar Prominence Formation
- The Dynamics of Funnel Prominences
- Quiescent prominence dynamics observed with the Hinode Solar Optical Telescope . II. Prominence Bubble Boundary Layer Characteristics and the Onset of a Coupled Kelvin-Helmholtz Rayleigh-Taylor Instability
- Solar prominences: 'double, double ... boil and bubble'
- Numerical Study on In-Situ Prominence Formation by Radiative Condensation in the Solar Corona
- Analysis of Flows Inside Quiescent Prominences as Captured by Hinode/Solar Optical Telescope
- Investigating prominence turbulence with Hinode SOT Dopplergrams
Cited by in corpus (10)
- Decoding the Pre-Eruptive Magnetic Field Configurations of Coronal Mass Ejections
- Prominence formation by levitation-condensation at extreme resolutions
- Modelling the Effect of Mass-Draining on Prominence Eruptions
- The influence of flux rope heating models on solar prominence formation
- Filament Eruption and Its Reformation Caused by Emerging Magnetic Flux
- 1.5D NLTE spectral synthesis of a 3D filament/prominence simulation
- Dynamics of descending knots in a solar prominence and their possible contributions to the heating of the local corona
- Simulating Rayleigh-Taylor induced magnetohydrodynamic turbulence in prominences
- Velocities of an Erupting Filament
- On the dynamics, thermodynamics and fine structure of virtual erupting filaments