Dynamics of coronal rain and descending plasma blobs in solar prominences: I. Fully ionised case
arXiv:1311.0781 · doi:10.1088/0004-637X/784/1/21
Abstract
Observations of active regions and limb prominences often show cold, dense blobs descending with an acceleration smaller than that of free fall. The dynamics of these condensations falling in the solar corona is investigated in this paper using a simple fully ionised plasma model. We find that the presence of a heavy condensation gives rise to a dynamical rearrangement of the coronal pressure that results in the formation of a large pressure gradient that opposes gravity. Eventually this pressure gradient becomes so large that the blob acceleration vanishes or even points upwards. Then, the blob descent is characterised by an initial acceleration phase followed by an essentially constant velocity phase. These two stages can be identified in published time-distance diagrams of coronal rain events. Both the duration of the first stage and the velocity attained by the blob increase for larger values of the ratio of blob to coronal density, for larger blob mass, and for smaller coronal temperature. Dense blobs are characterised by a detectable density growth (up to 60% in our calculations) and by a steepening of the density in their lower part, that could lead to the formation of a shock. They also emit sound waves that could be detected as small intensity changes with periods of the order of 100 s and lasting between a few and about ten periods. Finally, the curvature of the falling path is only relevant when a very dense blob falls along inclined magnetic field lines.
References in corpus (2)
Cited by in corpus (26)
- Partially Ionized Plasmas in Astrophysics
- Dynamics of coronal rain and descending plasma blobs in solar prominences: II. partially ionized case
- The Coronal Monsoon: Thermal Nonequilibrium Revealed by Periodic Coronal Rain
- The effects of numerical resolution, heating timescales and background heating on thermal non-equilibrium in coronal loops
- Coronal rain in randomly heated arcades
- Cloudy with A Chance of Rain: Accretion Braking of Cold Clouds
- Simulating coronal condensation dynamics in 3D
- Multi-instrument observations of a failed flare eruption associated with MHD waves in a loop bundle
- Electron Beams Cannot Directly Produce Coronal Rain
- Formation and evolution of coronal rain observed by SDO/AIA on February 22, 2012
- Spatial and Temporal Analysis of Quiescent Coronal Rain over an Active Region
- The role of asymmetries in coronal rain formation during thermal non-equilibrium cycles
- Two-dimensional simulations of coronal rain dynamics. I. Model with vertical magnetic field and an unbounded atmosphere
- Prevalence of Thermal Non-Equilibrium over an Active Region
- Relation of coronal rain originating from coronal condensations to interchange magnetic reconnection
- From Chromospheric Evaporation to Coronal Rain: An Investigation of the Mass and Energy Cycle of a Flare
- Large ion-neutral drift velocities and plasma heating in partially ionized coronal rain blobs
- Dynamics of descending knots in a solar prominence and their possible contributions to the heating of the local corona
- Revisiting the formation mechanism for coronal rain from previous studies
- Gravitational instability of solar prominence threads I. Curved magnetic fields without dips
- H and EUV observations of a partial CME
- On the Effect of Coronal Rain on Decayless Kink Oscillations of Coronal Loops
- Understanding coronal rain dynamics through a point-mass model
- Imaging and Spectroscopic Observations of the Dynamic Processes in Limb Solar Flares
- A new view of the solar interface region from the Interface Region Imaging Spectrograph (IRIS)
- Falling Threads During Solar Filament Eruptions