Numerical Study on In-Situ Prominence Formation by Radiative Condensation in the Solar Corona
arXiv:1504.08091 · doi:10.1088/0004-637X/806/1/115
Abstract
We propose an in-situ formation model for inverse-polarity solar prominence and demonstrate it using self-consistent 2.5-dimensional magnetohydrodynamics simulations, including thermal conduction along magnetic fields and optically thin radiative cooling. The model enables us to form cool dense plasma clouds inside a flux rope by radiative condensation, which is regarded as an inverse-polarity prominence. Radiative condensation is triggered by changes in the magnetic topology, i.e., formation of the flux rope from the sheared arcade field, and by thermal imbalance due to the dense plasma trapped inside the flux rope. The flux rope is created by imposing converging and shearing motion on the arcade field. Either when the footpoint motion is in the anti-shearing direction or when heating is proportional to local density, the thermal state inside the flux rope becomes cooling-dominant, leading to radiative condensation. By controlling the temperature of condensation, we investigate the relationship between the temperature and density of prominence and derive a scaling formula for this relationship. This formula suggests that the proposed model reproduce the observed density of prominence, which is 10-100 times larger than the coronal density. Moreover, the time evolution of the extreme ultraviolet emission synthesized by combining our simulation results with the response function of the Solar Dynamics Observatory Atmospheric Imaging Assembly filters agrees with the observed temporal and spatial intensity shift among multi-wavelength during in-situ condensation.
31 pages, 12 figures; accepted for publicaion in The Astrophysical Journal
References in corpus (6)
- Torus instability
- Formation of current sheets and sigmoidal structure by the kink instability of a magnetic loop
- Preserving Monotonicity in Anisotropic Diffusion
- Simulating the in situ condensation process of solar prominences
- The Dynamics of Funnel Prominences
- Simulation Study of Solar Plasma Eruptions Caused by Interactions between Emerging Flux and Coronal Arcade Fields
Cited by in corpus (14)
- Reconnection-Condensation Model for Solar Prominence Formation
- Prominence formation by levitation-condensation at extreme resolutions
- The influence of flux rope heating models on solar prominence formation
- Filament Eruption and Its Reformation Caused by Emerging Magnetic Flux
- Relation of coronal rain originating from coronal condensations to interchange magnetic reconnection
- On-disk solar coronal condensations facilitated by magnetic reconnection between open and closed magnetic structures
- Observations of apparent superslow wave propagation in solar prominences
- Formation of a solar filament by magnetic reconnection and coronal condensation
- Numerical simulations of prominence oscillations triggered by external perturbations
- Winking filaments due to cyclic evaporation-condensation
- 3D coupled tearing-thermal evolution in solar current sheets
- Formation of Galactic Prominence in Galactic Central Region
- Effect of optically thin cooling curves on condensation formation: Case study using thermal instability
- Self-consistent numerical simulations for the formation and dynamics of solar prominences