The signature of chromospheric heating in Ca II H spectra
arXiv:0712.2538 · doi:10.1051/0004-6361:20078410
Abstract
We analyze a 1-hour time series of Ca II H intensity spectra and polarimetric spectra around 630 nm to derive the signature of the chromospheric heating and to investigate its relation to magnetic fields. We derived several characteristic quantities of Ca II H to define the chromospheric atmosphere properties. We study the power of the Fourier transform at different wavelengths and their phase relations. We perform local thermodynamic equilibrium inversions of the data to obtain the magnetic field, once including the Ca spectra. We find that the emission in the Ca II H line core at locations without detectable photospheric polarization signal is due to waves that propagate from low forming continuum layers in the line wing up to the line core. The phase differences of intensity oscillations at different wavelengths indicate standing waves for v < 2 mHz and propagating waves for higher frequencies. The waves steepen into shocks in the chromosphere. On average, shocks are both preceded and followed by intensity reductions. In field-free regions, the profiles show emission about half of the time. The correlation between wavelengths and the decorrelation time is significantly higher in the presence of magnetic fields than for field-free areas. The average Ca II H profile in the presence of magnetic fields contains emission features symmetric to the line core and an asymmetric contribution, where mainly the blue H2V emission peak is increased. We find that acoustic waves steepening into shocks are responsible for the emission in the Ca II H line core for locations without photospheric magnetic fields. We suggest using wavelengths in the line wing of Ca II H, where LTE still applies, to compare theoretical heating models with observations.
19 pages, 28 figures, accepted by A&A
References in corpus (6)
- Solar Atmospheric Oscillations and the Chromospheric Magnetic Topology
- Relation between photospheric magnetic field and chromospheric emission
- Observation of a short-lived pattern in the solar chromosphere
- On the fine structure of the quiet solar \Ca II K atmosphere
- The Effects of Atmospheric Dispersion on High-Resolution Solar Spectroscopy
- Fourier analysis of active-region plage
Cited by in corpus (14)
- 3D Temperature Mapping of Solar Photospheric Fine Structure Using Ca II H Filtergrams
- The solar chromosphere at high resolution with IBIS. II. Acoustic shocks in the quiet internetwork and the role of magnetic fields
- Structure and Dynamics of Isolated Internetwork Ca II H Bright Points Observed by Sunrise
- Waves in the lower solar atmosphere: the dawn of next-generation solar telescopes
- High-frequency Oscillations in Small Magnetic Elements Observed with Sunrise/SuFI
- Reversal-free CaIIH profiles: a challenge for solar chromosphere modeling in quiet inter-network
- The energy of waves in the photosphere and lower chromosphere: III. Inversion setup for Ca II H spectra in local thermal equilibrium
- The energy of waves in the photosphere and lower chromosphere: II. Intensity statistics
- Fast Inversion of Solar Ca II Spectra in Non-Local Thermodynamic Equilibrium
- Properties of shock waves in the quiet Sun chromosphere
- Characterisation of shock wave signatures at millimetre wavelengths from Bifrost simulations
- Structure of sunspot light bridges in the chromosphere and transition region
- Chromospheric impact of an exploding solar granule
- Sustained heating of the chromosphere and transition region over a sunspot light bridge