Using Realistic MHD Simulations for Modeling and Interpretation of Quiet-Sun Observations with the Solar Dynamics Observatory Helioseismic and Magnetic Imager
arXiv:1407.2663 · doi:10.1088/0004-637X/808/1/59
Abstract
The solar atmosphere is extremely dynamic, and many important phenomena develop on small scales that are unresolved in observations with the Helioseismic and Magnetic Imager (HMI) instrument on the Solar Dynamics Observatory (SDO). For correct calibration and interpretation of the observations, it is very important to investigate the effects of small-scale structures and dynamics on the HMI observables, such as Doppler shift, continuum intensity, spectral line depth, and width. We use 3D radiative hydrodynamics simulations of the upper turbulent convective layer and the atmosphere of the Sun, and a spectro-polarimetric radiative transfer code to study observational characteristics of the Fe I 6173A line observed by HMI in quiet-Sun regions. We use the modeling results to investigate the sensitivity of the line Doppler shift to plasma velocity, and also sensitivities of the line parameters to plasma temperature and density, and determine effective line formation heights for observations of solar regions located at different distances from the disc center. These estimates are important for the interpretation of helioseismology measurements. In addition, we consider various center-to-limb effects, such as convective blue-shift, variations of helioseismic travel-times, and the 'concave' Sun effect, and show that the simulations can qualitatively reproduce the observed phenomena, indicating that these effects are related to a complex interaction of the solar dynamics and radiative transfer.
21 pages, 10 figures, accepted for publication in ApJ
References in corpus (5)
- Spatially coupled inversion of spectro-polarimetric image data I: Method and first results
- Spectral Line Selection for HMI: A Comparison of Fe I 6173 and Ni I 6768
- Effects of Asymmetric Flows in Solar Convection on Oscillation Modes
- Ubiquitous Solar Eruptions Driven by Magnetized Vortex Tubes
- Detection of supersonic horizontal flows in the solar granulation
Cited by in corpus (11)
- Solar meridional circulation from twenty-one years of SOHO/MDI and SDO/HMI observations: Helioseismic travel times and forward modeling in the ray approximation
- The IAG spectral atlas of the spatially resolved Sun: Centre-to-limb observations
- Leptocline as a Shallow Substructure of Near-Surface Shear Layer in 3D Radiative Hydrodynamic Simulations
- Response of SDO/HMI observables to heating of the solar atmosphere by precipitating high-energy electrons
- Consistent transport properties in multicomponent two-temperature magnetized plasmas:
- Calibrating GONG Magnetograms with End-to-end Instrument Simulation II: Theory of Calibration
- Non-zero phase-shifts of acoustic waves in the lower solar atmosphere measured from realistic simulations and their role in local helioseismology
- Connecting Atmospheric Properties and Synthetic Emission of Shock Waves Using 3D RMHD Simulations of Quiet Sun
- A general formulation for computing spherical helioseismic sensitivity kernels while incorporating systematical effects
- Helioseismic finite-frequency sensitivity kernels for flows in spherical geometry including systematic effects
- Cluster-Weighted Training of Deep Surrogate Models for Subgrid Turbulent Transport