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Verfasst von:Haydon, Daniel T. [VerfasserIn]   i
 Fujimoto, Yusuke [VerfasserIn]   i
 Chevance, Mélanie [VerfasserIn]   i
 Kruijssen, Diederik [VerfasserIn]   i
 Krumholz, Mark R. [VerfasserIn]   i
 Longmore, Steven N. [VerfasserIn]   i
Titel:An uncertainty principle for star formation
Titelzusatz:V. The influence of dust extinction on star formation rate tracer lifetimes and the inferred molecular cloud lifecycle
Verf.angabe:Daniel T. Haydon, Yusuke Fujimoto, Mélanie Chevance, J.M. Diederik Kruijssen, Mark R. Krumholz and Steven N. Longmore
E-Jahr:2020
Jahr:25 July 2020
Umfang:14 S.
Fussnoten:Gesehen am 13.01.2021
Titel Quelle:Enthalten in: Royal Astronomical SocietyMonthly notices of the Royal Astronomical Society
Ort Quelle:Oxford : Oxford Univ. Press, 1827
Jahr Quelle:2020
Band/Heft Quelle:497(2020), 4, Seite 5076-5089
ISSN Quelle:1365-2966
Abstract:Recent observational studies aiming to quantify the molecular cloud lifecycle require the use of known ‘reference time-scales’ to turn the relative durations of different phases of the star formation process into absolute time-scales. We previously constrained the characteristic emission time-scales of different star formation rate (SFR) tracers, as a function of the SFR surface density and metallicity. However, we omitted the effects of dust extinction. Here, we extend our suite of SFR tracer emission time-scales by accounting for extinction, using synthetic emission maps of a high-resolution hydrodynamical simulation of an isolated, Milky Way-like disc galaxy. The stellar feedback included in the simulation is inefficient compared to observations, implying that it represents a limiting case in which the duration of embedded star formation (and the corresponding effect of extinction) is overestimated. Across our experiments, we find that extinction mostly decreases the SFR tracer emission time-scale, changing the time-scales by factors of 0.04-1.74, depending on the gas column density. UV filters are more strongly affected than H α filters. We provide the limiting correction factors as a function of the gas column density and flux sensitivity limit for a wide variety of SFR tracers. Applying these factors to observational characterizations of the molecular cloud lifecycle produces changes that broadly fall within the quoted uncertainties, except at high kpc-scale gas surface densities ($\Sigma _{\rm g}\gtrsim 20~{\mathrm{M_{\odot }\, pc^{-2}}}$). Under those conditions, correcting for extinction may decrease the measured molecular cloud lifetimes and feedback time-scales, which further strengthens previous conclusions that molecular clouds live for a dynamical time and are dispersed by early, pre-supernova feedback.
DOI:doi:10.1093/mnras/staa2162
URL:Bitte beachten Sie: Dies ist ein Bibliographieeintrag. Ein Volltextzugriff für Mitglieder der Universität besteht hier nur, falls für die entsprechende Zeitschrift/den entsprechenden Sammelband ein Abonnement besteht oder es sich um einen OpenAccess-Titel handelt.

Volltext: https://doi.org/10.1093/mnras/staa2162
 DOI: https://doi.org/10.1093/mnras/staa2162
Datenträger:Online-Ressource
Sprache:eng
K10plus-PPN:1744569851
Verknüpfungen:→ Zeitschrift

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