Efficiently Cooled Stellar Wind Bubbles in Turbulent Clouds II. Validation of Theory with Hydrodynamic Simulations
arXiv:2104.07722 · doi:10.3847/1538-4357/abf8ac
Abstract
In a companion paper, we develop a theory for the evolution of stellar wind driven bubbles in dense, turbulent clouds. This theory proposes that turbulent mixing at a fractal bubble-shell interface leads to highly efficient cooling, in which the vast majority of the input wind energy is radiated away. This energy loss renders the majority of the bubble evolution momentum-driven rather than energy-driven, with expansion velocities and pressures orders of magnitude lower than in the classical Weaver77 solution. In this paper, we validate our theory with three-dimensional, hydrodynamic simulations. We show that extreme cooling is not only possible, but is generic to star formation in turbulent clouds over more than three orders of magnitude in density. We quantify the few free parameters in our theory, and show that the momentum exceeds the wind input rate by only a factor ~ 1.2-4. We verify that the bubble/cloud interface is a fractal with dimension ~ 2.5-2.7. The measured turbulent amplitude (v_t ~ 200-400 km/s) in the hot gas near the interface is shown to be consistent with theoretical requirements for turbulent diffusion to efficiently mix and radiate away most of the wind energy. The fraction of energy remaining after cooling is only 1-Θ~ 0.1-0.01, decreasing with time, explaining observations that indicate low hot-gas content and weak dynamical effects of stellar winds.
Accepted for publication in ApJ, 36 pages, 25 figures, but short summary and conclusion. Comments welcome
References in corpus (17)
- Theory of Star Formation
- Athena: A New Code for Astrophysical MHD
- Before the first supernova: combined effects of HII regions and winds on molecular clouds
- Superbubbles in the Multiphase ISM and the Loading of Galactic Winds
- A Detailed Study of Feedback from a Massive Star
- Efficiently Cooled Stellar Wind Bubbles in Turbulent Clouds I. Fractal Theory and Application to Star-Forming Clouds
- Numerical Simulations of Turbulent, Molecular Clouds Regulated by Radiation Feedback Forces I: Star Formation Rate and Efficiency
- The effect of stellar winds on the formation of a protocluster
- The Surprisingly Small Impact of Magnetic Fields On The Inner Accretion Flow of Sagittarius A* Fueled By Stellar Winds
- Wind bubbles within H II regions around slowly moving stars
- Two-Dimensional Hydrodynamic Models of Super Star Clusters with a Positive Star Formation Feedback
- Mass loss from inhomogeneous hot star winds III. An effective-opacity formalism for line radiative transfer in accelerating, clumped two-component media, and first results on theory and diagnostics
- Star cluster formation and cloud dispersal by radiative feedback: dependence on metallicity and compactness
- Simulating radiative feedback and star cluster formation in GMCs: II. Mass dependence of cloud destruction and cluster properties
- Dynamics and Energy Loss in Superbubbles
- Numerical Simulations of Turbulent Molecular Clouds Regulated by Radiation Feedback Forces II: Radiation-Gas Interactions and Outflows
- Hydrodynamic simulations of mechanical stellar feedback in a molecular cloud formed by thermal instability
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- Ionization of HeII in star-forming galaxies by X-rays from cluster winds and superbubbles
- Stellar winds and photoionization in a spiral arm
- TODDLERS: A new UV-mm emission library for star-forming regions. 1. Integration with SKIRT and public release
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- Far and extreme UV radiation feedback in molecular clouds and its influence on the mass and size of star clusters
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- A wind-blown bubble in the Central Molecular Zone cloud G0.253+0.016
- ΛCDM is still not broken: empirical constraints on the star formation efficiency at z ~ 12-30
- The Energy and Dynamics of Trapped Radiative Feedback with Stellar Winds
- Thermal emission from bow shocks II: 3D magnetohydrodynamic models of Zeta Ophiuchi
- Mechanical feedback from stellar winds with an application to galaxy formation at high redshift
- Connecting stellar and galactic scales: Energetic feedback from stellar wind bubbles to supernova remnants
- Ionization-Gasdynamic Simulations of Wind-Blown Nebulae around Massive Stars
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- Investigating the ultraviolet and infrared radiation through the turbulent life of molecular clouds
- The formation of globular clusters with top-heavy initial mass functions
- Stellar-wind feedback and magnetic fields around young compact star clusters: 3D MHD simulations
- Dust Grain Growth & Dusty Supernovae in Low-Metallicity Molecular Clouds
- Escaping the maze: a statistical sub-grid model for cloud-scale density structures in the interstellar medium
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