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3D LTE spectral line formation with scattering in red giant stars

dc.contributor.authorHayek, Wolfgang
dc.contributor.authorAsplund, Martin
dc.contributor.authorCollet, R
dc.contributor.authorNordlund, A
dc.date.accessioned2015-12-10T21:54:45Z
dc.date.issued2011
dc.date.updated2016-02-24T09:54:03Z
dc.description.abstractAims. We investigate the effects of coherent isotropic continuum scattering on the formation of spectral lines in local thermodynamic equilibrium (LTE) using 3D hydrodynamical and 1D hydrostatic model atmospheres of red giant stars. Methods. Detailed radiative transfer with coherent and isotropic continuum scattering is computed for 3D hydrodynamical and 1D hydrostatic models of late-type stellar atmospheres using the SCATE code. Opacities are computed in LTE, while a coherent and isotropic scattering term is added to the continuum source function. We investigate the effects of scattering by comparing continuum flux levels, spectral line profiles and curves of growth for different species with calculations that treat scattering as absorption. Results. Rayleigh scattering is the dominant source of scattering opacity in the continuum of red giant stars. Photons may escape from deeper, hotter layers through scattering, resulting in significantly higher continuum flux levels beneath a wavelength of λ ≲ 5000 Å. The magnitude of the effect is determined by the importance of scattering opacity with respect to absorption opacity; we observe the largest changes in continuum flux at the shortest wavelengths and lowest metallicities; intergranular lanes of 3D models are more strongly affected than granules. Continuum scattering acts to increase the profile depth of LTE lines: continua gain more brightness than line cores due to their larger thermalization depth in hotter layers. We thus observe the strongest changes in line depth for high-excitation species and ionized species, which contribute significantly to photon thermalization through their absorption opacity near the continuum optical surface. Scattering desaturates the line profiles, leading to larger abundance corrections for stronger lines, which reach -0.5 dex at 3000 Å for Fe ii lines in 3D with excitation potential χ = 2 eV at [Fe/H] = -3.0. The corrections are less severe for low-excitation lines, longer wavelengths, and higher metallicity. Velocity fields increase the effects of scattering by separating emission from granules and intergranular lanes in wavelength. 1D calculations exhibit similar scattering abundance corrections for weak lines, but those for strong lines are generally smaller compared to 3D models and depend on the choice of microturbulence. Conclusions. Continuum scattering should be taken into account for computing realistic spectral line profiles at wavelengths λ ≲ 4000 Å in metal-poor giant stars. Profile shapes are strongly affected by velocity fields and horizontal inhomogeneities, requiring a treatment based on 3D hydrodynamical rather than classical 1D hydrostatic model atmospheres.
dc.identifier.issn0004-6361
dc.identifier.urihttp://hdl.handle.net/1885/39070
dc.publisherSpringer
dc.rightsAuthor/s retain copyrighten_AU
dc.sourceAstronomy and Astrophysics
dc.subjectKeywords: 3D models; At-wavelength; Continuum flux; Continuum scattering; Continuum source; Excitation lines; Giant stars; Hydrostatic model; In-line; Inhomogeneities; Intergranular; Ionized species; Isotropic scattering; Late-type; Line profiles; Line: formation; Line: formation; Radiative transfer; Stars: atmospheres
dc.title3D LTE spectral line formation with scattering in red giant stars
dc.typeJournal article
dcterms.accessRightsOpen Accessen_AU
local.bibliographicCitation.lastpage18
local.bibliographicCitation.startpageA158
local.contributor.affiliationHayek, Wolfgang, College of Physical and Mathematical Sciences, ANU
local.contributor.affiliationAsplund, Martin, Max Planck Institute for Astrophysics
local.contributor.affiliationCollet, R, Max Planck Institute for Astrophysics
local.contributor.affiliationNordlund, A, Niels Bohr Institute
local.contributor.authoruidHayek, Wolfgang, u4265068
local.description.notesImported from ARIES
local.identifier.absfor020110 - Stellar Astronomy and Planetary Systems
local.identifier.absseo970102 - Expanding Knowledge in the Physical Sciences
local.identifier.ariespublicationu3356449xPUB171
local.identifier.ariespublicationu4630950xPUB59
local.identifier.citationvolume529
local.identifier.doi10.1051/0004-6361/201015782
local.identifier.scopusID2-s2.0-79955385083
local.type.statusPublished Version

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