Alfvén Wave Heating of the Solar Chromosphere: 1.5D models
arXiv:1512.05816 · doi:10.3847/0004-637X/817/2/94
Abstract
Physical processes which may lead to solar chromospheric heating are analyzed using high-resolution 1.5D non-ideal MHD modelling. We demonstrate that it is possible to heat the chromospheric plasma by direct resistive dissipation of high-frequency Alfvén waves through Pedersen resistivity. However this is unlikely to be sufficient to balance radiative and conductive losses unless unrealistic field strengths or photospheric velocities are used. The precise heating profile is determined by the input driving spectrum since in 1.5D there is no possibility of Alfvén wave turbulence. The inclusion of the Hall term does not affect the heating rates. If plasma compressibility is taken into account, shocks are produced through the ponderomotive coupling of Alfvén waves to slow modes and shock heating dominates the resistive dissipation. In 1.5D shock coalescence amplifies the effects of shocks and for compressible simulations with realistic driver spectra the heating rate exceeds that required to match radiative and conductive losses. Thus while the heating rates for these 1.5D simulations are an overestimate they do show that ponderomotive coupling of Alfvén waves to sound waves is more important in chromospheric heating than Pedersen dissipation through ion-neutral collisions.
Accepted for publication in ApJ. 9 pages, 12 figures
References in corpus (1)
Cited by in corpus (50)
- Coronal heating by MHD waves
- Partially Ionized Plasmas in Astrophysics
- Alfvén Wave Dissipation in the Solar Chromosphere
- Element Abundances: A New Diagnostic for the Solar Wind
- A basal contribution from p-modes to the Alfvénic wave flux in the Sun's corona
- The European Solar Telescope
- Three-dimensional oscillatory magnetic reconnection
- Three-dimensional simulations of solar magneto-convection including effects of partial ionization
- Waves in the lower solar atmosphere: the dawn of next-generation solar telescopes
- Damping of Alfven waves by Turbulence and its Consequences: from Cosmic-Rays Streaming to Launching Winds
- Heating of the partially ionized solar chromosphere by waves in magnetic structures
- The First Ionization Potential Effect from the Ponderomotive Force: On the Polarization and Coronal Origin of the Alfven Waves
- Energy transport and heating by torsional Alfvén waves propagating from the photosphere to the corona in the quiet Sun
- An Inside Look at Sunspot Oscillations with Higher Azimuthal Wavenumbers
- A Hydrodynamic Model of Alfvénic Wave Heating in a Coronal Loop and its Chromospheric Footpoints
- Two-fluid simulations of waves in the solar chromosphere II. Propagation and damping of fast magneto-acoustic waves and shocks
- On the effects of ion-neutral interactions in solar plasmas
- Multi-fluid approach to high-frequency waves in plasmas. III. Nonlinear regime and plasma heating
- Multi-fluid Approach to High-frequency Waves in Plasmas. II. Small-amplitude Regime in Partially Ionized Media
- Magnetohydrodynamic Non-linearities in Sunspot Atmospheres: Chromospheric Detections of Intermediate Shocks
- The role of Alfvén wave heating in solar prominences
- Stirring the Base of the Solar Wind: On Heat Transfer and Vortex Formation
- On the periodicity of linear and nonlinear oscillatory reconnection
- Simulations of Alfven wave driving of the solar chromosphere - efficient heating and spicule launching
- Heating of a Quiet Region of the Solar Chromosphere by Ion and Neutral Acoustic Waves
- Two-fluid numerical simulations of the origin of the fast solar wind
- Implosive collapse about magnetic null points: A quantitative comparison between 2D and 3D nulls
- Solar chromosphere heating and generation of plasma outflows by impulsively generated two fluid Alfven waves
- Chromospheric heating and generation of plasma outflows by impulsively generated two-fluid magnetoacoustic waves
- Role of Longitudinal Waves in Alfvén-wave-driven Solar Wind
- Simulation of Alfven wave propagation in magnetic chromosphere with radiative loss: effects of non-linear mode coupling on chromospheric heating
- On excited frequencies for Alfvén waves in a coronal arcade
- The dynamic chromosphere: pushing the boundaries of observations and models
- 3D numerical simulations of propagating two-fluid, torsional Alfvén waves and heating of a partially-ionized solar chromosphere
- Alfven wave heating in partially ionized thin threads of solar prominences
- Explaining Inverted Temperature Loops in the Quiet Solar Corona with Magnetohydrodynamic Wave Mode Conversion
- Fast magnetic wave could heat the solar low-beta chromosphere
- Coronal Loops with Different Metallicities and Generalized RTV Scaling Laws
- Enhanced Phase Mixing of Torsional Alfvén Waves in Stratified and Divergent Solar Coronal Structures, Paper II: Nonlinear Simulations
- Resistively-limited current sheet implosions in planar anti-parallel (1D) and null-point containing (2D) magnetic field geometries
- Self-consistent equilibrium models of prominence thin threads heated by Alfvén waves propagating from the photosphere
- Coronal Properties of Low-mass Population III Stars and the Radiative Feedback in the Early Universe
- Generation of solar chromosphere heating and coronal outflows by two-fluid waves
- Fast magneto-acoustic waves in the solar chromosphere: Comparison of single-fluid and two-fluid approximations
- Convergence study of ambipolar diffusion in realistic simulations of magneto-convection
- A persistent quiet-Sun small-scale tornado. II. Oscillations
- Alfvén wave propagation in the partially ionized lower solar atmosphere: a test of the single-fluid approximation
- MHD waves in the partially ionized plasma: from single to multi-fluid approach
- Alfven wave propagation from the photosphere to the corona: temporal evolution against stationary results
- Enhanced Phase Mixing of Torsional Alfvén Waves in Stratified and Divergent Solar Coronal Structures, Paper I: Linear Solutions