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Converging on the Initial Mass Function of Stars

dc.contributor.authorFederrath, Christoph
dc.contributor.authorKrumholz, Mark
dc.contributor.authorHopkins, Philip F.
dc.contributor.editorPogorelov, Nikolai V.
dc.contributor.editorAudit, Edouard
dc.contributor.editorZank, Gary P.
dc.coverage.spatialMonterey, United States
dc.date.accessioned2020-12-20T20:51:57Z
dc.date.available2020-12-20T20:51:57Z
dc.date.createdJune 6-10 2016
dc.date.issued2017
dc.date.updated2020-11-23T10:22:06Z
dc.description.abstractUnderstanding the origin of stellar masses - the initial mass function (IMF) - remains one of the most challenging problems in astrophysics. The IMF is a key ingredient for simulations of galaxy formation and evolution, and is used to calibrate star formation relations in extra-galactic observations. Modeling the IMF directly in hydrodynamical simulations has been attempted in several previous studies, but the most important processes that control the IMF remain poorly understood. This is because predicting the IMF from direct hydrodynamical simulations involves complex physics such as turbulence, magnetic fields, radiation feedback and mechanical feedback, all of which are difficult to model and the methods used have limitations in terms of accuracy and computational efficiency. Moreover, a physical interpretation of the simulated IMFs requires a numerically converged solution at high resolution, which has so far not been convincingly demonstrated. Here we present a resolution study of star cluster formation aimed at producing a converged IMF. We compare a set of magnetohydrodynamical (MHD) adaptive-mesh-refinement simulations with three different implementations of the thermodynamics of the gas: 1) with an isothermal equation of state (EOS), 2) with a polytropic EOS, and 3) with a simple stellar heating feedback model. We show that in the simulations with an isothermal or polytropic EOS, the number of stars and their mass distributions depend on the numerical resolution. By contrast, the simulations that employ the simple radiative feedback module demonstrate convergence in the number of stars formed and in their IMFs
dc.description.sponsorshipC.F. gratefully acknowledges funding provided by the Australian Research Council’s Discovery Projects (grants DP150104329 and DP170100603).
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.urihttp://hdl.handle.net/1885/217934
dc.language.isoen_AUen_AU
dc.provenanceContent from this work may be used under the terms of the Creative Commons Attribution 3.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
dc.publisherIOP Publishing
dc.relation.ispartofseries11th International Conference on Numerical Modeling of Space Plasma Flows, ASTRONUM 2016
dc.relation.urihttp://purl.org/au-research/grants/arc/DP150104329
dc.relation.urihttp://purl.org/au-research/grants/arc/DP170100603
dc.rights.licenseCreative Commons Attribution 3.0 licence
dc.rights.urihttps://creativecommons.org/licenses/by/3.0/
dc.sourceJournal of Physics: Conference Series
dc.titleConverging on the Initial Mass Function of Stars
dc.typeConference paper
dcterms.accessRightsOpen Access
local.contributor.affiliationFederrath, Christoph, College of Science, ANU
local.contributor.affiliationKrumholz, Mark, College of Science, ANU
local.contributor.affiliationHopkins, Philip F., California Institute of Technology
local.contributor.authoruidFederrath, Christoph, u5575624
local.contributor.authoruidKrumholz, Mark, u1000557
local.description.notesImported from ARIES
local.description.refereedYes
local.identifier.absfor020110 - Stellar Astronomy and Planetary Systems
local.identifier.ariespublicationa383154xPUB6623
local.identifier.doi10.1088/1742-6596/837/1/012007
local.identifier.scopusID2-s2.0-85020475047
local.type.statusPublished Version

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