Published December 1, 2015 | Version v1
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Star formation across cosmic time and its influence on galactic dynamics

Description

Observations show that ten billion years ago, galaxies formed their stars at rates up to twenty times higher than now. As stars are formed from cold molecular gas, a high star formation rate means a significant gas supply, and galaxies near the peak epoch of star formation are indeed much more gas-rich than nearby galaxies. Is the decline of the star formation rate mostly driven by the diminishing cold gas reservoir, or are the star formation processes also qualitatively different earlier in the history of the Universe? Ten billion years ago, young galaxies were clumpy and prone to violent gravitational instabilities, which may have contributed to their high star formation rate. Stars indeed form within giant, gravitationally-bound molecular clouds. But the earliest phases of star formation are still poorly understood. Some scenarios suggest the importance of interstellar filamentary structures as a first step towards core and star formation. How would their filamentary geometry affect pre-stellar cores? Feedback mechanisms related to stellar evolution also play an important role in regulating star formation, for example through powerful stellar winds and supernovae explosions which expel some of the gas and can even disturb the dark matter distribution in which each galaxy is assumed to be embedded. This PhD work focuses on three perspectives: -1) star formation near the peak epoch of star formation as seen from observations at sub-galactic scales; -2) the formation of pre-stellar cores within the filamentary structures of the interstellar medium; and -3) the effect of feedback processes resulting from star formation and evolution on the dark matter distribution. (author)

Abstract (French)

Les observations montrent qu'il y a dix milliards d'annees, les galaxies formaient bien plus d'etoiles qu'aujourd'hui. Comme les etoiles se forment a partir de gaz moleculaire froid, cela signifie que les galaxies disposaient alors d'importants reservoirs de gaz, et c'est ce qui est observe. Mais les processus de formation d'etoiles pourraient aussi avoir ete plus efficaces: qu'en est-il? Les etoiles se forment dans des nuages moleculaires geants lies par leur propre gravite, mais les toutes premieres etapes de leur formation demeurent relativement mal connues. Les nuages moleculaires sont eux-memes fragmentes en differentes structures, et certains scenarios suggerent que les filaments interstellaires qui y sont observes aient pu constituer la premiere etape de la formation des coeurs denses dans lesquels se forment les etoiles. En quelle mesure leur geometrie filamentaire affecte-t-elle les coeurs pre-stellaires? Des phenomenes de retroaction lies a l'evolution des etoiles, comme les vents stellaires et les explosions de supernovae, participent a la regulation de la formation d'etoiles et peuvent aussi perturber la distribution de matiere noire supposee entourer les galaxies. Cette these aborde l'evolution des galaxies et la formation des etoiles suivant trois perspectives: (i) la caracterisation des processus de formation d'etoiles a des echelles sous-galactiques au moment de leur pic de formation; (ii) la formation des coeurs pre-stellaires dans les structures filamentaires du milieu interstellaire; et (iii) les effets retroactifs de la formation et de l'evolution des etoiles sur la distribution de matiere noire des galaxies. (auteur)

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Additional details

Additional titles

Original title (English)
La formation des etoiles au cours de l'histoire de l'univers et son influence sur la dynamique des galaxies

Publishing Information

Imprint Pagination
297 p.
Report number
FRNC-TH--11483

INIS

Country of Publication
France
Country of Input or Organization
France
INIS RN
52024800
Subject category
S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY;
Resource subtype / Literary indicator
Thesis
Descriptors DEI
COMPUTERIZED SIMULATION; COSMOLOGICAL MODELS; GALACTIC EVOLUTION; GALAXIES; HYDRODYNAMICS; NONLUMINOUS MATTER; STAR EVOLUTION; UNIVERSE; VALIDATION
Descriptors DEC
EVOLUTION; FLUID MECHANICS; MATHEMATICAL MODELS; MATTER; MECHANICS; SIMULATION; TESTING

Optional Information

Notes
683 refs.; Available from the INIS Liaison Officer for France, see the INIS website for current contact and E-mail addresses