Turbulent Convection in Stellar Interiors. II. The Velocity Field
arXiv:0809.1625 · doi:10.1088/0004-637X/690/2/1715
Abstract
We analyze stellar convection with the aid of 3D hydrodynamic simulations, introducing the turbulent cascade into our theoretical analysis. We devise closures of the Reynolds-decomposed mean field equations by simple physical modeling of the simulations (we relate temperature and density fluctuations via coefficients); the procedure (CABS, Convection Algorithms Based on Simulations) is terrestrially testable and is amenable to systematic improvement. We develop a turbulent kinetic energy equation which contains both nonlocal and time dependent terms, and is appropriate if the convective transit time is shorter than the evolutionary time scale. The interpretation of mixing-length theory (MLT) as generally used in astrophysics is incorrect; MLT forces the mixing length to be an imposed constant. Direct tests show that the damping associated with the flow is that suggested by Kolmogorov. The eddy size is approximately the depth of the convection zone, and this dissipation length corresponds to the "mixing length". New terms involving local heating by turbulent dissipation should appear in the stellar evolution equations. The enthalpy flux ("convective luminosity") is directly connected to the buoyant acceleration, and hence the velocity scale. MLT tends to systematically underestimate this velocity scale. Quantitative comparison with a variety of 3D simulations reveals a previously recognized consistency. Examples of application to stellar evolution will be presented in subsequent papers in this series.
47 pages, 7 figures, accepted by ApJ
References in corpus (8)
- The Statistics of Supersonic Isothermal Turbulence
- Turbulent Convection in Stellar Interiors. I. Hydrodynamic Simulation
- Simulations of dynamo action in fully convective stars
- The Magnetic Rayleigh-Taylor Instability in Three Dimensions
- The intensity contrast of solar granulation: comparing Hinode SP results with MHD simulations
- Anelastic and Compressible Simulations of Stellar Oxygen Burning
- A Local Model for Angular Momentum Transport in Accretion Disks Driven by the Magnetorotational Instability
- Effect of the radiative background flux in convection
Cited by in corpus (76)
- The Dawes Review 2: Nucleosynthesis and stellar yields of low and intermediate-mass single stars
- Preparing for an Explosion: Hydrodynamic Instabilities and Turbulence in Presupernovae
- A Model for Gravitational Wave Emission from Neutrino-Driven Core-Collapse Supernovae
- Non-Radial Instabilities and Progenitor Asphericities in Core-Collapse Supernovae
- Pre-Supernova Outbursts via Wave Heating in Massive Stars I: Red Supergiants
- Setting the Stage for Circumstellar Interaction in Core-Collapse Supernovae II: Wave-Driven Mass Loss in Supernova Progenitors
- Towards Realistic Progenitors of Core-Collapse Supernovae
- The Status of Multi-Dimensional Core-Collapse Supernova Models
- Hydrodynamics of core-collapse supernovae and their progenitors
- The Dominance of Neutrino-Driven Convection in Core-Collapse Supernovae
- The Three Dimensional Evolution to Core Collapse of a Massive Star
- Final Moments I: Precursor Emission, Envelope Inflation, and Enhanced Mass loss Preceding the Luminous Type II Supernova 2020tlf
- The Last Minutes of Oxygen Shell Burning in a Massive Star
- Beyond Mixing-length Theory: a step toward 321D
- Turbulent convection in stellar interiors. III. Mean-field analysis and stratification effects
- A Diversity of Wave-driven Pre-supernova Outbursts
- A Global Turbulence Model for Neutrino-Driven Convection in Core-Collapse Supernovae
- Turbulent Cells in Stars: I. Fluctuations in Kinetic Energy and Luminosity
- Not All Stars Are the Sun: Empirical Calibration of the Mixing Length for Metal-Poor Stars Using One-dimensional Stellar Evolution Models
- The spin rate of pre-collapse stellar cores: wave-driven angular momentum transport in massive stars
- Angular Momentum Transport in Protoplanetary and Black-Hole Accretion Disks: The Role of Parasitic Modes in the Saturation of MHD Turbulence
- Pair Instability Supernovae of Very Massive Population III Stars
- Turbulence in Core-Collapse Supernovae
- Towards a new generation of multi-dimensional stellar evolution models: development of an implicit hydrodynamic code
- Matter Mixing in Aspherical Core-collapse Supernovae: Three-dimensional Simulations with Single Star and Binary Merger Progenitor Models for SN 1987A
- Convection Theory and Sub-photospheric Stratification
- Modeling the early evolution of massive OB stars with an experimental wind routine
- Dependence of Convective Boundary Mixing on Boundary Properties and Turbulence Strength
- Binary orbit, physical properties, and evolutionary state of Capella (alpha Aurigae)
- A Case Study of Small Scale Structure Formation in 3D Supernova Simulations
- A model of rotating convection in stellar and planetary interiors: I - convective penetration
- Shock-Turbulence Interaction in Core-Collapse Supernovae
- Multidimensional Modeling of Type I X-ray Bursts. I. Two-Dimensional Convection Prior to the Outburst of a Pure Helium Accretor
- Convective Properties of Rotating Two-Dimensional Core-Collapse Supernova Progenitors
- Angular momentum fluctuations in the convective helium shell of massive stars
- Properties of Convective Oxygen and Silicon Burning Shells in Supernova Progenitors
- Multi-dimensional models of circumstellar shells around evolved massive stars
- Implicit large eddy simulations of anisotropic weakly compressible turbulence with application to core-collapse supernovae
- The Chemical Composition of τ Ceti and Possible Effects on Terrestrial Planets
- Convective boundary mixing in main-sequence stars: theory and empirical constraints
- The Age and Stellar Parameters of the Procyon Binary System
- The core helium flash revisited III. From Pop I to Pop III stars
- On The Development of Multidimensional Progenitor Models For Core-collapse Supernovae
- 3D Simulations of Oxygen Shell Burning with and without Magnetic Fields
- Turbulent Mixing and Nuclear Burning in Stellar Interiors
- Multidimensional Modeling of Type I X-ray Bursts. II. Two-Dimensional Convection in a Mixed H/He Accretor
- Can Stellar Mixing Explain the Lack of Type Ib Supernovae in Long-Duration GRBs?
- The synthesis of Ti44 and Ni56 in massive stars
- 3D Simulations and MLT: I. Renzini's Critique
- 3D stellar evolution: hydrodynamic simulations of a complete burning phase in a massive star
- Dynamics in a stellar convective layer and at its boundary: Comparison of five 3D hydrodynamics codes
- Multidimensional low-Mach number time-implicit hydrodynamic simulations of convective helium shell burning in a massive star
- A Catalog of Stellar Evolution Profiles and the Effects of Variable Composition on Habitable Systems
- Some Properties of the Kinetic Energy Flux and Dissipation in Turbulent Stellar Convection Zones
- The Effects on Supernova Shock Breakout and Swift Light Curves Due to the Mass of the Hydrogen-Rich Envelope
- Key Issues Review: Numerical studies of turbulence in stars
- Differential Rotation in a 3D Simulation of Oxygen Shell Burning
- Synergies between Asteroseismology and Three-dimensional Simulations of Stellar Turbulence
- Titanium and Iron in the Cassiopeia A Supernova Remnant
- Gas Dynamics of the Nickel-56 Decay Heating in Pair-Instability Supernovae
- Stability and flow fields structure for interfacial dynamics with interfacial mass flux
- Linking 1D Evolutionary to 3D Hydrodynamical Simulations of Massive Stars
- Stochastic Core Spin-Up in Massive Stars -- Implications of 3D Simulations of Oxygen Shell Burning
- The Impact of Stellar Abundance Variations on Stellar Habitable Zone Evolution
- Turbulent Mixing in Stars: Theoretical Hurdles
- Convection physics and tidal synchronization of the subdwarf binary NY Virginis
- A non-local mixing-length theory able to compute core overshooting
- Stochastic microhertz gravitational radiation from stellar convection
- The Antesonic Condition for the Explosion of Core-Collapse Supernovae II: Rotation and Turbulence
- Recent Advances in Modeling Stellar Interiors
- The Supernovae Analysis Application (SNAP)
- 3D and Some Other Things Missing from the Theory of Massive Star Evolution
- A new framework of multidimensional pulsating stellar envelopes I.: Properties of turbulent convection in static RR Lyrae envelope models with SPHERLS
- Continuous Habitable Zones: Using Bayesian Methods to Prioritize Characterization of Potentially Habitable Worlds
- Asteroseismic Constraints on the Models of Hot B Subdwarfs: Convective Helium-Burning Cores
- Time-dependent Turbulence in Stars