Three-dimensional MHD wave propagation near a coronal null point: a new wave mode decomposition approach
arXiv:2201.09704 · doi:10.1051/0004-6361/202142688
Abstract
We present a new MHD wave decomposition method that overcomes the limitations of existing wave identification methods. Our method allows to investigate the energy fluxes in different MHD modes at different locations of the solar atmosphere as waves generated by vortex flows travel through the solar atmosphere and pass near the magnetic null. We simulate wave dynamics through a coronal null configuration and apply a rotational wave driver at our bottom photospheric boundary. To identify the wave energy fluxes associated with different MHD wave modes, we employ a wave-decomposition method that is able to uniquely distinguish different MHD modes. Our proposed method utilizes the geometry of an individual magnetic field-line in 3D space to separate out velocity perturbations associated with the three fundamental MHD waves. Our method for wave identification is consistent with previous flux-surface-based methods and gives expected results in terms of wave energy fluxes at various locations of the null configuration. We show that ubiquitous vortex flows excite MHD waves that contribute significantly to the Poynting flux in the solar corona. Alfvén wave energy flux accumulates on the fan surface and fast wave energy flux accumulates near the null point. There is a strong current density buildup at the spine and fan surface.The proposed method has advantages over previously utilized wave decomposition methods, since it may be employed in realistic simulations or magnetic extrapolations, as well as in real solar observations, whenever the 3D fieldline shape is known. The enhancement in energy flux associated with magneto-acoustic waves near nulls may have important implications in the formation of jets and impulsive plasma flows.
Accepted for publication in A&A
References in corpus (26)
- Alfven Waves in the Lower Solar Atmosphere
- MPI-AMRVAC for Solar and Astrophysics
- Convectively driven vortex flows in the Sun
- Multiwavelength studies of MHD waves in the solar chromosphere: An overview of recent results
- On the prevalence of small-scale twist in the solar chromosphere and transition region
- Nonlinear Fast Magnetoacoustic Wave Propagation in the Neighbourhood of a 2D magnetic X-point: Oscillatory Reconnection
- Three Dimensional MHD Wave Propagation and Conversion to Alfven Waves near the Solar Surface. I. Direct Numerical Solution
- MHD wave propagation in the neighbourhood of a two-dimensional null point
- Large amplitude oscillation of a polar crown filament in the pre-eruption phase
- Evidence of photospheric vortex flows at supergranular junctions observed by FG/SOT (Hinode)
- The Number Of Magnetic Null Points In The Quiet Sun Corona
- MHD mode coupling in the neighbourhood of a 2D null point
- Transverse oscillations of two coronal loops
- Simulations Show that Vortex Flows could Heat the Chromosphere in Solar Plage
- Vortex Flow Properties in Simulations of Solar Plage Region: Evidence for their role in chromospheric heating
- Alfvén Waves in the Structured Solar Corona
- MHD wave propagation from the sub-photosphere to the corona in an arcade-shaped magnetic field with a null point
- Wave modes excited by photospheric p-modes and mode conversion in a multi-loop system
- Magnetoacoustic Waves in a Stratified Atmosphere with a Magnetic Null Point
- Observational study of chromospheric heating by acoustic waves
- Toward detailed prominence seismology - I. Computing accurate 2.5D magnetohydrodynamic equilibria
- Linear and nonlinear MHD mode coupling of the fast magnetoacoustic wave about a 3D magnetic null point
- Toward detailed prominence seismology - II. Charting the continuous magnetohydrodynamic spectrum
- Discovery of Spatial Periodicities in a Coronal Loop using Automated Edge-Tracking Algorithms
- The formation and dissipation of current sheets and shocks due to compressive waves in a stratified atmosphere containing a magnetic null
- IRIS observations of chromospheric heating by acoustic waves in solar quiet and active regions