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Three-dimensional simulations of gravitationally confined detonations compared to observations of SN 1991T

dc.contributor.authorSeitenzahl, Ivo R.
dc.contributor.authorKromer, Markus
dc.contributor.authorOhlmann, Sebastian
dc.contributor.authorCiaraldi-Schoolmann, Franco
dc.contributor.authorMarquardt, Kai
dc.contributor.authorFink, Michael
dc.contributor.authorHillebrandt, Wolfgang
dc.contributor.authorPakmor, R.
dc.contributor.authorRoepke, Friedrich K.
dc.contributor.authorRuiter, Ashley J.
dc.contributor.authorSim, Stuart A.
dc.contributor.authorTaubenberger, Stefan
dc.date.accessioned2016-08-23T01:51:22Z
dc.date.issued2016-08
dc.description.abstractThe gravitationally confined detonation (GCD) model has been proposed as a possible explosion mechanism for Type Ia supernovae in the single-degenerate evolution channel. It starts with ignition of a deflagration in a single off-centre bubble in a near-Chandrasekharmass white dwarf. Driven by buoyancy, the deflagration flame rises in a narrow cone towards the surface. For the most part, the main component of the flow of the expanding ashes remains radial, but upon reaching the outer, low-pressure layers of the white dwarf, an additional lateral component develops. This causes the deflagration ashes to converge again at the opposite side, where the compression heats fuel and a detonation may be launched. We first performed five three-dimensional hydrodynamic simulations of the deflagration phase in 1:4 M carbon/oxygen white dwarfs at intermediate-resolution (256³ computational zones). We confirm that the closer the initial deflagration is ignited to the centre, the slower the buoyant rise and the longer the deflagration ashes takes to break out and close in on the opposite pole to collide. To test the GCD explosion model, we then performed a high-resolution (512³ computational zones) simulation for a model with an ignition spot offset near the upper limit of what is still justifiable, 200 km. This high-resolution simulation met our deliberately optimistic detonation criteria, and we initiated a detonation. The detonation burned through the white dwarf and led to its complete disruption. For this model, we determined detailed nucleosynthetic yields by post-processing 10⁶ tracer particles with a 384 nuclide reaction network, and we present multi-band light curves and time-dependent optical spectra. We find that our synthetic observables show a prominent viewing-angle sensitivity in ultraviolet and blue wavelength bands, which contradicts observed SNe Ia. The strong dependence on the viewing angle is caused by the asymmetric distribution of the deflagration ashes in the outer ejecta layers. Finally, we compared our model to SN 1991T. The overall flux level of the model is slightly too low, and the model predicts pre-maximum light spectral features due to Ca, S, and Si that are too strong. Furthermore, the model chemical abundance stratification qualitatively disagrees with recent abundance tomography results in two key areas: our model lacks low-velocity stable Fe and instead has copious amounts of high-velocity ⁵⁶Ni and stable Fe. We therefore do not find good agreement of the model with SN 1991T.en_AU
dc.description.sponsorshipThis work was supported by Australian Research Council Laureate Grant FL0992131, the Deutsche Forschungsgemeinschaft via the Transregional Collaborative Research Center TRR 33 "The Dark Universe", the Emmy Noether Program (RO 3676/1-1), the ARCHES prize of the German Ministry of Education and Research (BMBF), the graduate school "Theoretical Astrophysics and Particle Physics" at the University of Würzburg (GRK 1147) and the Excellence Cluster EXC 153 "Origin and Structure of the Universe". S.A.S. acknowledges support from STFC grant ST/L000709/1. A.J.R. is thankful for funding provided by the Australian Research Council Centre of Excellence for All-sky Astrophysics (CAASTRO) through project number CE110001020. RP acknowledges support by the European Research Council under ERC-StG grant EXAGAL-308037. We also thank the DAAD/Go8 German-Australian exchange programme for travel support. S.T.O. acknowledges support from Studienstiftung des deutschen Volkes. The work of S.T.O., R.P., and F.K.R. is supported by the Klaus Tschira Foundation. This research was supported by the Partner Time Allocation (Australian National University), the National ComputationalMerit Allocation and the Flagship Allocation Schemes of the NCI National Facility at the Australian National University.en_AU
dc.format11 pagesen_AU
dc.identifier.issn0004-6361en_AU
dc.identifier.urihttp://hdl.handle.net/1885/107278
dc.provenancehttp://www.aanda.org/news/963-all-aaa-articles-are-in-open-access-one-year-after-their-publication-date-august-2013 (Journal website publisher version open access one year after publication date 23/8/2016).
dc.publisherEDP Sciencesen_AU
dc.relationhttp://purl.org/au-research/grants/arc/FL0992131en_AU
dc.relationhttp://purl.org/au-research/grants/arc/CE1101020en_AU
dc.rights© 2016 ESO.en_AU
dc.sourceAstronomy and Astrophysicsen_AU
dc.subjecthydrodynamicsen_AU
dc.subjectradiative transferen_AU
dc.subjectmethodsen_AU
dc.subjectnumericalen_AU
dc.subjectnuclear reactionsen_AU
dc.subjectnucleosynthesisen_AU
dc.subjectabundancesen_AU
dc.subjectsupernovaeen_AU
dc.subjectgeneralen_AU
dc.subjectindividualen_AU
dc.subjectSN 1991Ten_AU
dc.titleThree-dimensional simulations of gravitationally confined detonations compared to observations of SN 1991Ten_AU
dc.typeJournal articleen_AU
dcterms.accessRightsOpen Accessen_AU
dcterms.dateAccepted2016-05-31
local.bibliographicCitation.startpageA57en_AU
local.contributor.affiliationSeitenzahl, Ivo R., RSAA General, CPMS Research School of Astronomy and Astrophysics, The Australian National Universityen_AU
local.contributor.authoruidu5472295en_AU
local.identifier.ariespublicationu4571891xPUB19
local.identifier.citationvolume592en_AU
local.identifier.doi10.1051/0004-6361/201527251en_AU
local.identifier.essn1432-0746en_AU
local.publisher.urlhttp://publications.edpsciences.org/en_AU
local.type.statusPublished Versionen_AU

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