Formation of the helium EUV resonance lines
arXiv:1610.00352 · doi:10.1051/0004-6361/201629462
Abstract
Context: While classical models successfully reproduce intensities of many transition region lines, they predict helium EUV line intensities roughly an order of magnitude lower than the observed value. Aims: To determine the relevant formation mechanism(s) of the helium EUV resonance lines, capable of explaining the high intensities under quiet sun conditions. Methods: We synthesise and study the emergent spectra from a 3D radiation-magnetohydrodynamics simulation model. The effects of coronal illumination and non-equilibrium ionisation of hydrogen and helium are included self-consistently in the numerical simulation. Results: Radiative transfer calculations result in helium EUV line intensities that are an order of magnitude larger than the intensities calculated under the classical assumptions. The enhanced intensity of He I 584 is primarily caused by He II recombination cascades. The enhanced intensity of He II 304 and He II 256 is caused primarily by non-equilibrium helium ionisation. Conclusion: The analysis shows that the long standing problem of the high helium EUV line intensities disappears when taking into account optically thick radiative transfer and non-equilibrium ionisation effects.
Accepted for publication in Astronomy and Astrophysics
References in corpus (4)
- Thermal Diagnostics with the Atmospheric Imaging Assembly onboard the Solar Dynamics Observatory: A Validated Method for Differential Emission Measure Inversions
- Non-equilibrium hydrogen ionization in 2D simulations of the solar atmosphere
- The influence of coronal EUV irradiance on the emission in the He I 10830 A and D3 multiplets
- The cause of spatial structure in solar He I 1083 nm multiplet images
Cited by in corpus (15)
- Ion-neutral interactions and non-equilibrium ionization in the solar chromosphere
- The EUV spectrum of the Sun: quiet and active Sun irradiances and chemical composition
- Helium line emissivities in the solar corona
- Properties of Flare-Imminent versus Flare-Quiet Active Regions from the Chromosphere through the Corona II: NonParametric Discriminant Analysis Results from the NWRA Classification Infrastructure (NCI)
- Reconstructing the XUV Spectra of Active Sun-like Stars Using Solar Scaling Relations with Magnetic Flux
- The Formation of IRIS Diagnostics. IX. The Formation of the C I 135.58 Line in the Solar Atmosphere
- Multi-Fluid Simulations of Upper Chromospheric Magnetic Reconnection with Helium-Hydrogen mixture
- Properties of Flare-Imminent versus Flare-Quiet Active Regions from the Chromosphere through the Corona I: Introduction of the AIA Active Region Patches (AARPs)
- From Chromospheric Evaporation to Coronal Rain: An Investigation of the Mass and Energy Cycle of a Flare
- Assessing the capability of a model-based stellar XUV estimation
- Comparison of Solar Fine Structure Observed Simultaneously in Ly-α and Mg II h
- Proxy-Based Prediction of Solar Extreme Ultraviolet Emission using Deep Learning
- Evaluation of different recipes for chromospheric radiative losses in solar flares
- On the formation of Lyman and the O I 1027 and 1028 Å spectral lines
- The chromospheric component of coronal bright points. Coronal and chromospheric responses to magnetic-flux emergence