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dc.contributor.authorBaraffe, I
dc.contributor.authorPratt, J
dc.contributor.authorVlaykov, DG
dc.contributor.authorGuillet, T
dc.contributor.authorGoffrey, T
dc.contributor.authorSaux, AL
dc.contributor.authorConstantino, T
dc.date.accessioned2021-10-11T07:15:53Z
dc.date.issued2021-10-22
dc.description.abstractWe performed two-dimensional, fully compressible, time-implicit simulations of convection in a solar-like model with the MUSIC code. Our main motivation is to explore the impact of a common tactic adopted in numerical simulations of convection that use realistic stellar conditions. This tactic is to artificially increase the luminosity and to modify the thermal diffusivity of the reference stellar model. This work focuses on the impact of these modifications on convective penetration (or overshooting) at the base of the convective envelope of a solar-like model. We explore a range of enhancement factors for the energy input (or stellar luminosity) and confirm the increase in the characteristic overshooting depth with the increase in the energy input, as suggested by analytical models and by previous numerical simulations. We performed high-order moments analysis of the temperature fluctuations for moderate enhancement factors and find similar flow structure in the convective envelope and the penetration region, independently of the enhancement factor. As a major finding, our results highlight the importance of the impact of penetrative downflows on the thermal background below the convective boundary. This is a result of compression and shear which induce local heating and thermal mixing. The artificial increase in the energy flux intensifies the heating process by increasing the velocities in the convective zone and at the convective boundary, revealing a subtle connection between the local heating of the thermal background and the plume dynamics. This heating also increases the efficiency of heat transport by radiation which may counterbalance further heating and helps to establish a steady state. We suggest that the modification of the thermal background by penetrative plumes impacts the width of the overshooting layer. Additionally, our results suggest that an artificial modification of the radiative diffusivity in the overshooting layer, rather than only accelerating the thermal relaxation, could also alter the dynamics of the penetrating plumes and thus the width of the overshooting layer. Results from simulations with an artificial modification of the energy flux and of the thermal diffusivity should thus be regarded with caution if used to determine an overshooting distance.en_GB
dc.description.sponsorshipEuropean Research Council (ERC)en_GB
dc.description.sponsorshipScience and Technology Facilities Council (STFC)en_GB
dc.identifier.citationVol. 654, article A126en_GB
dc.identifier.doi10.1051/0004-6361/202140441
dc.identifier.grantnumberST/R000395/1en_GB
dc.identifier.grantnumber787361en_GB
dc.identifier.grantnumberST/R000395/1en_GB
dc.identifier.urihttp://hdl.handle.net/10871/127408
dc.language.isoenen_GB
dc.publisherEuropean Southern Observatory (ESO) / EDP Sciencesen_GB
dc.rights© ESO 2021
dc.subjectConvectionen_GB
dc.subjectHydrodynamicsen_GB
dc.subjectInstabilitiesen_GB
dc.subjectStars: evolutionen_GB
dc.titleTwo-dimensional simulations of solar-like models with artificially enhanced luminosity. I. Impact on convective penetrationen_GB
dc.typeArticleen_GB
dc.date.available2021-10-11T07:15:53Z
dc.descriptionThis is the final version. Available from EDP Sciences via the DOI in this recorden_GB
dc.identifier.eissn1432-0746
dc.identifier.journalAstronomy and Astrophysicsen_GB
dc.rights.urihttp://www.rioxx.net/licenses/all-rights-reserveden_GB
dcterms.dateAccepted2021-08-20
exeter.funder::Science and Technology Facilities Councilen_GB
exeter.funder::European Commissionen_GB
rioxxterms.versionVoRen_GB
rioxxterms.licenseref.startdate2021-08-20
rioxxterms.typeJournal Article/Reviewen_GB
refterms.dateFCD2021-10-11T07:13:38Z
refterms.versionFCDAM
refterms.dateFOA2021-10-22T13:07:11Z
refterms.panelBen_GB


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