Evolution of Kelvin-Helmholtz Instability in the Fan-Spine Topology
arXiv:2109.11416 · doi:10.3847/1538-4357/ac2a43
Abstract
We use multiwavelength imaging observations from the Atmospheric Imaging Assembly (AIA) onboard the Solar Dynamics Observatory (SDO) to study the evolution of Kelvin-Helmholtz (K-H) instability in a fan-spine magnetic field configuration. This magnetic topology exists near an active region AR12297 and is rooted in a nearby sunspot. In this magnetic configuration, two layers of cool plasma flow in parallel and interact with each other inside an elongated spine. The slower plasma flow (5 ) is the reflected stream along the spine field lines from the top, which interacts with the impulsive plasma upflows (114-144 km s) from below. This process generates a shear motion and subsequent evolution of the K--H instability. The amplitude and characteristic wavelength of the K-H unstable vortices increase, satisfying the criterion of the fastest growing mode of this instability. We also describe that the velocity difference between two layers and velocity of K-H unstable vortices are greater than the Alfven speed in the second denser layer, which also satisfies the criterion of the growth of K-H instability. In the presence of the magnetic field and sheared counter streaming plasma as observed in the fan-spine topology, we estimate the parametric constant, 1, that confirms the dominance of velocity shear and the evolution of the linear phase of the K-H instability. This observation indicates that in the presence of complex magnetic field structuring and flows, the fan-spine configuration may evolve into rapid heating, while the connectivity changes due to the fragmentation via the K-H instability.
14 pages, 8 figures, accepted for publication in ApJ
References in corpus (22)
- Small-scale filament eruptions as the driver of solar coronal hole X-ray jets
- Thermal Diagnostics with the Atmospheric Imaging Assembly onboard the Solar Dynamics Observatory: A Validated Method for Differential Emission Measure Inversions
- Key Aspects of Coronal Heating
- The Kelvin-Helmholtz Instability at CME-Boundaries in the Solar Corona: Observations and 2.5D MHD Simulations
- Waves on the surface of the Orion molecular cloud
- Extreme Ultraviolet Imaging of Three-dimensional Magnetic Reconnection in a Solar Eruption
- Observations of Solar Coronal Rain in Null Point Topologies
- Round-trip Slipping Motion of the Circular Flare Ribbon Evidenced in a Fan-spine Jet
- The passband integrationproperties of Birefringent filter
- 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
- Chromospheric Heating by MHD Waves and Instabilities
- Generation mechanisms of quasi-parallel and quasi-circular flare ribbons in a confined flare
- Multi-layered Kelvin-Helmholtz Instability in the Solar Corona
- Imaging and spectral study on the null point of a fan-spine structure during a solar flare
- Kelvin-Helmholtz instability on coronal mass ejecta in the lower corona
- Twin CME Launched by a Blowout Jet Originated from the Eruption of a Quiet-Sun Mini-filament
- The Evolution of Magnetic Rayleigh-Taylor Unstable Plumes and Hybrid KH-RT Instability into A Loop-like Eruptive Prominence
- Kelvin-Helmholtz instability in a current-vortex sheet at a 3D magnetic null
- Fast degradation of the circular flare ribbon on 2014 August 24
- Large-Scale Vortex Motion and Multiple Plasmoid Ejection Due to Twisting Prominence Threads and Associated Reconnection
- Dynamic kink instability and transverse motions of solar spicules
- How Rotating Solar Atmospheric Jets Become Kelvin--Helmholtz Unstable