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dc.date.accessioned2020-08-17T17:57:33Z
dc.date.available2020-08-17T17:57:33Z
dc.date.created2020-08-05T21:02:05Z
dc.date.issued2020
dc.identifier.citationNóbrega Siverio, Daniel Elias Martinez-Sykora, Juan Moreno-Insertis, Fernando Carlsson, Mats . Ambipolar diffusion in the Bifrost code. Astronomy and Astrophysics. 2020, 638
dc.identifier.urihttp://hdl.handle.net/10852/78423
dc.description.abstractContext. Ambipolar diffusion is a physical mechanism related to the drift between charged and neutral particles in a partially ionized plasma that is key to many different astrophysical systems. However, understanding its effects is challenging due to basic uncertainties concerning relevant microphysical aspects and the strong constraints it imposes on the numerical modeling. Aims. Our aim is to introduce a numerical tool that allows us to address complex problems involving ambipolar diffusion in which, additionally, departures from ionization equilibrium are important or high resolution is needed. The primary application of this tool is for solar atmosphere calculations, but the methods and results presented here may also have a potential impact on other astrophysical systems. Methods. We have developed a new module for the stellar atmosphere Bifrost code that improves its computational capabilities of the ambipolar diffusion term in the generalized Ohm’s law. This module includes, among other things, collision terms adequate to processes in the coolest regions in the solar chromosphere. As the main feature of the module, we have implemented the super time stepping (STS) technique, which allows an important acceleration of the calculations. We have also introduced hyperdiffusion terms to guarantee the stability of the code. Results. We show that to have an accurate value for the ambipolar diffusion coefficient in the solar atmosphere it is necessary to include as atomic elements in the equation of state not only hydrogen and helium, but also the main electron donors like sodium, silicon, and potassium. In addition, we establish a range of criteria to set up an automatic selection of the free parameters of the STS method that guarantees the best performance, optimizing the stability and speed for the ambipolar diffusion calculations. We validate the STS implementation by comparison with a self-similar analytical solution.
dc.languageEN
dc.titleAmbipolar diffusion in the Bifrost code
dc.typeJournal article
dc.creator.authorNóbrega Siverio, Daniel Elias
dc.creator.authorMartinez-Sykora, Juan
dc.creator.authorMoreno-Insertis, Fernando
dc.creator.authorCarlsson, Mats
cristin.unitcode185,15,3,40
cristin.unitnameRosseland senter for solfysikk
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode2
dc.identifier.cristin1821927
dc.identifier.bibliographiccitationinfo:ofi/fmt:kev:mtx:ctx&ctx_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.jtitle=Astronomy and Astrophysics&rft.volume=638&rft.spage=&rft.date=2020
dc.identifier.jtitleAstronomy and Astrophysics
dc.identifier.volume638
dc.identifier.pagecount10
dc.identifier.doihttps://doi.org/10.1051/0004-6361/202037809
dc.identifier.urnURN:NBN:no-81582
dc.type.documentTidsskriftartikkel
dc.type.peerreviewedPeer reviewed
dc.source.issn0004-6361
dc.identifier.fulltextFulltext https://www.duo.uio.no/bitstream/handle/10852/78423/2/aa37809-20.pdf
dc.type.versionPublishedVersion
cristin.articleidA79
dc.relation.projectNFR/262622


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