Coronal rain in magnetic arcades: Rebound shocks, Limit cycles, and Shear flows
arXiv:1507.00882 · doi:10.1088/0004-637X/807/2/142
Abstract
We extend our earlier multidimensional, magnetohydrodynamic simulations of coronal rain occurring in magnetic arcades with higher resolution, grid-adaptive computations covering a much longer ( hour) timespan. We quantify how in-situ forming blob-like condensations grow along and across field lines and show that rain showers can occur in limit cycles, here demonstrated for the first time in 2.5D setups. We discuss dynamical, multi-dimensional aspects of the rebound shocks generated by the siphon inflows and quantify the thermodynamics of a prominence-corona-transition-region like structure surrounding the blobs. We point out the correlation between condensation rates and the cross-sectional size of loop systems where catastrophic cooling takes place. We also study the variations of the typical number density, kinetic energy and temperature while blobs descend, impact and sink into the transition region. In addition, we explain the mechanisms leading to concurrent upflows while the blobs descend. As a result, there are plenty of shear flows generated with relative velocity difference around 80 km s in our simulations. These shear flows are siphon flows set up by multiple blob dynamics and they in turn affect the deformation of the falling blobs. In particular, we show how shear flows can break apart blobs into smaller fragments, within minutes.
References in corpus (7)
- MPI-AMRVAC for Solar and Astrophysics
- An Exact Integration Scheme for Radiative Cooling in Hydrodynamical Simulations
- Computing the dust distribution in the bowshock of a fast moving, evolved star
- Detection of supersonic downflows and associated heating events in the transition region above sunspots
- Unresolved fine-scale structure in solar coronal loop-tops
- The Dynamics of Funnel Prominences
- Continuous upflows and sporadic downflows observed in active regions
Cited by in corpus (18)
- Long-Period Intensity Pulsations in Coronal Loops Explained by Thermal Non-Equilibrium Cycles
- The Distinction Between Thermal Nonequilibrium and Thermal Instability
- Coronal rain in magnetic bipolar weak fields
- The effects of numerical resolution, heating timescales and background heating on thermal non-equilibrium in coronal loops
- Coronal rain in randomly heated arcades
- Multi-scale observations of thermal non-equilibrium cycles in coronal loops
- Transition region adaptive conduction (TRAC) in multidimensional magnetohydrodynamic simulations
- Self-consistent 3D radiative MHD simulations of coronal rain formation and evolution
- Coronal Condensation as the Source of Transition Region Supersonic Downflows above a Sunspot
- When hot meets cold: post-flare coronal rain
- Bright hot impacts by erupted fragments falling back on the Sun: magnetic channelling
- Two-dimensional simulations of coronal rain dynamics. I. Model with vertical magnetic field and an unbounded atmosphere
- Formation of coronal rain triggered by impulsive heating associated with magnetic reconnection
- Multi-thermal jet formation triggered by flux emergence
- On the spectroscopic detection of periodic plasma flows in loops undergoing thermal non-equilibrium
- 3D coupled tearing-thermal evolution in solar current sheets
- Magnetic shuffling of coronal downdrafts
- Effect of optically thin cooling curves on condensation formation: Case study using thermal instability