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Radiative transfer with scattering for domain-decomposed 3D MHD simulations of cool stellar atmospheres: Numerical methods and application to the quiet, non-magnetic, surface of a solar-type star

dc.contributor.authorHayek, Wolfgang
dc.contributor.authorAsplund, Martin
dc.contributor.authorCarlsson, M.
dc.contributor.authorTrampedach, Regner
dc.contributor.authorCollet, R
dc.contributor.authorGudiksen, B
dc.contributor.authorHansteen, V H
dc.contributor.authorLeenaarts, J
dc.date.accessioned2015-12-13T22:43:52Z
dc.date.issued2010
dc.date.updated2016-02-24T09:37:45Z
dc.description.abstractAims. We present the implementation of a radiative transfer solver with coherent scattering in the new BIFROST code for radiative magneto-hydrodynamical (MHD) simulations of stellar surface convection. The code is fully parallelized using MPI domain decomposition, which allows for large grid sizes and improved resolution of hydrodynamical structures. We apply the code to simulate the surface granulation in a solar-type star, ignoring magnetic fields, and investigate the importance of coherent scattering for the atmospheric structure. Methods. A scattering term is added to the radiative transfer equation, requiring an iterative computation of the radiation field. We use a short-characteristics-based Gauss-Seidel acceleration scheme to compute radiative flux divergences for the energy equation. The effects of coherent scattering are tested by comparing the temperature stratification of three 3D time-dependent hydrodynamical atmosphere models of a solar-type star: without scattering, with continuum scattering only, and with both continuum and line scattering. Results.We show that continuum scattering does not have a significant impact on the photospheric temperature structure for a star like the Sun. Including scattering in line-blanketing, however, leads to a decrease of temperatures by about 350 K below log10 τ5000 ≤.4. The effect is opposite to that of 1D hydrostatic models in radiative equilibrium, where scattering reduces the cooling effect of strong LTE lines in the higher layers of the photosphere. Coherent line scattering also changes the temperature distribution in the high atmosphere, where we observe stronger fluctuations compared to a treatment of lines as true absorbers.
dc.identifier.issn0004-6361
dc.identifier.urihttp://hdl.handle.net/1885/79390
dc.publisherSpringer
dc.sourceAstronomy and Astrophysics
dc.subjectKeywords: Atmosphere models; Continuum scattering; Cooling effects; Domain decompositions; Energy equation; Gauss-Seidel; Grid size; Hydrostatic model; In-line; Iterative computation; MHD simulation; Nonmagnetics; Radiation field; Radiative equilibrium; Radiative f radiative transfer; stars: atmospheres; Sun: atmosphere
dc.titleRadiative transfer with scattering for domain-decomposed 3D MHD simulations of cool stellar atmospheres: Numerical methods and application to the quiet, non-magnetic, surface of a solar-type star
dc.typeJournal article
local.bibliographicCitation.issue6
local.bibliographicCitation.startpageA49
local.contributor.affiliationHayek, Wolfgang, College of Physical and Mathematical Sciences, ANU
local.contributor.affiliationAsplund, Martin, Max Planck Institute for Astrophysics
local.contributor.affiliationCarlsson, M., University of Oslo
local.contributor.affiliationTrampedach, Regner, College of Physical and Mathematical Sciences, ANU
local.contributor.affiliationCollet, R, Max Planck Institute for Astrophysics
local.contributor.affiliationGudiksen, B, Institute for Theoretical Astrophysics
local.contributor.affiliationHansteen, V H, University of Oslo
local.contributor.affiliationLeenaarts, J, Utrecht University
local.contributor.authoruidHayek, Wolfgang, u4265068
local.contributor.authoruidTrampedach, Regner, u4089367
local.description.embargo2037-12-31
local.description.notesImported from ARIES
local.identifier.absfor020110 - Stellar Astronomy and Planetary Systems
local.identifier.absseo970102 - Expanding Knowledge in the Physical Sciences
local.identifier.ariespublicationf5625xPUB7840
local.identifier.ariespublicationu4630950xPUB52
local.identifier.citationvolume517
local.identifier.doi10.1051/0004-6361/201014210
local.identifier.scopusID2-s2.0-77955196466
local.type.statusPublished Version

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