We present hydrodynamic simulations of the evolution of self-gravitating dense gas on scales of 1 kpc down to ≲ parsec in a galactic disk, designed to study dense clump formation from giant molecular clouds (GMCs). These structures are expected to be the precursors to star clusters and this process may be the rate limiting step controlling star formation rates in galactic systems as described by the Kennicutt-Schmidt relation. We follow the thermal evolution of the gas down to 5 K using extinction-dependent heating and cooling functions. We do not yet include magnetic fields or localized stellar feedback, so the evolution of the GMCs and clumps is determined solely by self-gravity balanced by thermal and turbulent pressure support and the l...
We use hydrodynamic simulations with detailed, explicit models for stellar feedback to study galaxy ...
We use numerical simulations of isolated galaxies to study the effects of stellar feedback on the fo...
We present here the first of a series of papers aimed at better understanding the evolution and prop...
We present hydrodynamic simulations of the evolution of self-gravitating dense gas on scales of 1 kp...
We present hydrodynamic simulations of the evolution of self-gravitating dense gas on scales of 1 kp...
We present simulations of the evolution of self-gravitating dense gas on kiloparsec-size scales in a...
We present hydrodynamic simulations of self-gravitating dense gas in a galactic disk, exploring scal...
We present a suite of 3D multiphysics MHD simulations following star formation in isolated turbulent...
We present a suite of 3D multiphysics MHD simulations following star formation in isolated turbulent...
Energetic feedback from star clusters plays a pivotal role in shaping the dynamical evolution of gia...
Energetic feedback from star clusters plays a pivotal role in shaping the dynamical evolution of gia...
We present an analysis of the global and spatially resolved Kennicutt–Schmidt (KS) star formation re...
We present an analysis of the global and spatially resolved Kennicutt–Schmidt (KS) star formation re...
We present hydrodynamic simulations of self-gravitating dense gas in a galactic disk, exploring scal...
We consider the effects of different criteria for determining where stars will form in gas on galact...
We use hydrodynamic simulations with detailed, explicit models for stellar feedback to study galaxy ...
We use numerical simulations of isolated galaxies to study the effects of stellar feedback on the fo...
We present here the first of a series of papers aimed at better understanding the evolution and prop...
We present hydrodynamic simulations of the evolution of self-gravitating dense gas on scales of 1 kp...
We present hydrodynamic simulations of the evolution of self-gravitating dense gas on scales of 1 kp...
We present simulations of the evolution of self-gravitating dense gas on kiloparsec-size scales in a...
We present hydrodynamic simulations of self-gravitating dense gas in a galactic disk, exploring scal...
We present a suite of 3D multiphysics MHD simulations following star formation in isolated turbulent...
We present a suite of 3D multiphysics MHD simulations following star formation in isolated turbulent...
Energetic feedback from star clusters plays a pivotal role in shaping the dynamical evolution of gia...
Energetic feedback from star clusters plays a pivotal role in shaping the dynamical evolution of gia...
We present an analysis of the global and spatially resolved Kennicutt–Schmidt (KS) star formation re...
We present an analysis of the global and spatially resolved Kennicutt–Schmidt (KS) star formation re...
We present hydrodynamic simulations of self-gravitating dense gas in a galactic disk, exploring scal...
We consider the effects of different criteria for determining where stars will form in gas on galact...
We use hydrodynamic simulations with detailed, explicit models for stellar feedback to study galaxy ...
We use numerical simulations of isolated galaxies to study the effects of stellar feedback on the fo...
We present here the first of a series of papers aimed at better understanding the evolution and prop...