Stellar Feedback in Dwarf Galaxy Formation
arXiv:0711.4803 · doi:10.1126/science.1148666
Abstract
Dwarf galaxies pose significant challenges for cosmological models. In particular, current models predict a dark matter density that is divergent at the center, in sharp contrast with observations which indicate an approximately constant central density core. Energy feedback, from supernova explosions and stellar winds, has been proposed as a major factor shaping the evolution of dwarf galaxies. We present detailed cosmological simulations with sufficient resolution both to model the relevant physical processes and to directly assess the impact of stellar feedback on observable properties of dwarf galaxies. We show that feedback drives large-scale, bulk motion of the interstellar gas resulting in significant gravitational potential fluctuations and a consequent reduction in the central matter density, bringing the theoretical predictions in agreement with observations.
Published online in Science (www.scienceexpress.org) on Nov. 29 2007; 20 pages, 9 figures
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Cited by in corpus (7)
- The role of stellar feedback in the formation of galaxies
- The PN.S Elliptical Galaxy Survey: the dark matter in NGC 4494
- Simulations of the formation and evolution of isolated dwarf galaxies
- The impact of baryons on dark matter haloes
- Halo density reduction by baryonic settling?
- Probing feedback in protogalaxies: Multiphase gas in a DLA at z~2.4
- Cusp-core problem and strong gravitational lensing