Self-similar champagne flows in HII regions
arXiv:astro-ph/0209036 · doi:10.1086/343859
Abstract
(Abridged) We consider the expansion of an initially self-gravitating, static, singular, isothermal cloud core. For t>0, the gas is ionized and heated to a higher uniform temperature by the formation of a luminous, but massless, star in its center. The approximation that the mass and gravity of the central star is negligible for the subsequent motion of the HII region holds for distances much greater than about 100 AU and for the massive cloud cores that give rise to high-mass stars. If the initial ionization and heating is approximated to occur instantaneously at t=0, then the subsequent flow (for r >> 100 AU) caused by the resulting imbalance between self-gravity and thermal pressure is self-similar. Because of the steep density profile, pressure gradients produce a shock front that travels into the cloud, accelerating the gas to supersonic velocities in what has been called the ``champagne phase.'' We then study the self-similar solutions of the expansion of HII regions embedded in molecular clouds characterized by more general power-law density distributions with exponent 3/2 < n < 3. In these cases, the shock velocity is an increasing function of the exponent n, and diverges as n tends to 3. We show that this happens because the model includes an origin, where the pressure driving the shock diverges because the enclosed heated mass is infinite. Our results imply that the continued photoevaporation of massive reservoirs of neutral gas (e.g., surrounding disks and/or globules) nearby to the embedded ionizing source is required in order to maintain over a significant timescale the emission measure observed in champagne flows.
29 pages, 5 figures. The Astrophysical Journal, in press
References in corpus (2)
Cited by in corpus (65)
- The Structure and Evolution of Early Cosmological HII Regions
- Building up the Population III initial mass function from cosmological initial conditions
- The First Stars: Mass Growth Under Protostellar Feedback
- The H II Region of the First Star
- The Formation of Massive Stars by Accretion Through Trapped Hypercompact HII Regions
- Early Cosmological HII/HeIII Regions and Their Impact on Second-Generation Star Formation
- Radiation-magnetohydrodynamic simulations of HII regions and their associated PDRs in turbulent molecular clouds
- The First Supernova Explosions: Energetics, Feedback, and Chemical Enrichment
- Dynamical HII Region Evolution in Turbulent Molecular Clouds
- Gamma-ray Burst Cosmology
- The First Galaxies: Assembly with Black Hole Feedback
- Radiative Feedback from high mass X-ray binaries on the formation of the first galaxies and early reionization
- Carbon-Enhanced Metal-Poor Stars: Relics from the Dark Ages
- How Very Massive Metal Free Stars Start Cosmological Reionization
- Preserving chemical signatures of primordial star formation in the first low-mass stars
- Probing Pre-galactic Metal Enrichment with High-Redshift Gamma-Ray Bursts
- Disruption of Molecular Clouds by Expansion of Dusty H II Regions
- The observational signature of the first H II regions
- On the Indeterministic Nature of Star Formation on the Cloud Scale
- On expansion parallax distances for planetary nebulae
- The evolution of planetary nebulae. VIII. True expansion rates and visibility times
- New Self-Similar Solutions of Polytropic Gas Dynamics
- Envelope Expansion with Core Collapse. I. Spherical Isothermal Similarity Solutions
- Trapping of HII regions in Population III star formation
- A hydrodynamical study of multiple-shell planetary nebulae. III. Expansion properties and internal kinematics: Theory versus observation
- Low-mass star formation triggered by early supernova explosions
- When H II Regions are Complicated: Considering Perturbations from Winds, Radiation Pressure, and Other Effects
- The 3-D ionization structure and evolution of NGC 7009 (Saturn Nebula)
- Shocked similarity collapses and flows in star formation processes
- Assembly of supermassive black hole seeds
- Envelope Expansion with Core Collapse. III. Similarity Isothermal Shocks in a Magnetofluid
- Spherical Isothermal Self-Similar Shock Flows
- Stellar winds and metal enrichment from fast-rotating Population III stars
- Dynamic Evolution of a Quasi-Spherical General Polytropic Magnetofluid with Self-Gravity
- Self-Similar Dynamics of a Relativistically Hot Gas
- Self-Similar Shocks in Polytropic Gas Flows around Star-Forming Regions
- Magnetohydrodynamic Rebound Shocks of Supernovae
- Self-Similar Dynamics of a Magnetized Polytropic Gas
- From forced collapse to H ii region expansion in Mon R2: Envelope density structure and age determination with Herschel
- Bow shocks, bow waves, and dust waves. I. Strong coupling limit
- Envelope Expansion with Core Collapse II. Quasi-Spherical Self-Similar Solutions for an Isothermal Magnetofluid
- Magnetic Helicity of Self-Similar Axisymmetric Force-free Fields
- Ambipolar Diffusion in Molecular Cloud Cores and the Gravomagneto Catastrophe
- Self-Similar Polytropic Champagne Flows in H II Regions
- Dust cleansing of star-forming gas I: Did radiation from bright stars affect the chemical composition of the Sun and of M67?
- Impact of Population III homogeneous stellar evolution on early cosmic reionisation
- Bottling the Champagne: Dynamics and Radiation Trapping of Wind-Driven Bubbles around Massive Stars
- From Ultracompact to Extended HII Regions. II: Cloud Gravity and Stellar Motion
- GRBs and fundamental physics
- Dispersal of Gaseous Circumstellar Discs around High-Mass Stars
- True versus apparent shapes of bow shocks
- Diffuse X-ray Emissions from Dynamic Planetary Nebulae
- The Youngest Globular Clusters
- General Polytropic Magnetofluid under Self-Gravity: Voids and Shocks
- Dynamic Evolution Model of Isothermal Voids and Shocks
- Dynamic Voids Surrounded by Shocked Conventional Polytropic Gas Envelopes
- How to move ionized gas: an introduction to the dynamics of HII regions
- Off-center HII regions in power-law density distributions
- Self-similar solutions to isothermal shock problems
- Self-Similar Shocks and Winds in Galaxy Clusters
- Scale-Free Thin Discs with an Isopedic Magnetic Field
- Zero Metallicity with Zero CPU Hours: Masses of the First Stars on the Laptop
- An Expanding HI Photodissociated Region Associated with the Compact HII Region G213.880-11.837 in the GGD 14 Complex
- Outflows and inflows in astrophysical systems
- Critical Accretion Rate for Triggered Star Formation