Radiative Mixing Layers: Insights from Turbulent Combustion
arXiv:2008.12302 · doi:10.1093/mnras/stab053
Abstract
Radiative mixing layers arise wherever multiphase gas, shear, and radiative cooling are present. Simulations show that in steady state, thermal advection from the hot phase balances radiative cooling. However, many features are puzzling. For instance, hot gas entrainment appears to be numerically converged despite the scale-free, fractal structure of such fronts being unresolved. Additionally, the hot gas heat flux has a characteristic velocity whose strength and scaling are not intuitive. We revisit these issues in 1D and 3D hydrodynamic simulations. We find that over-cooling only happens if numerical diffusion dominates thermal transport; convergence is still possible even when the Field length is unresolved. A deeper physical understanding of radiative fronts can be obtained by exploiting parallels between mixing layers and turbulent combustion, which has well-developed theory and abundant experimental data. A key parameter is the Damköhler number , the ratio of the outer eddy turnover time to the cooling time. Once , the front fragments into a multiphase medium. Just as for scalar mixing, the eddy turnover time sets the mixing rate, independent of small scale diffusion. For this reason, thermal conduction often has limited impact. We show that and the effective emissivity can be understood in detail by adapting combustion theory scalings. Mean density and temperature profiles can also be reproduced remarkably well by mixing length theory. These results have implications for the structure and survival of cold gas in many settings, and resolution requirements for large scale galaxy simulations.
Accepted for publication in MNRAS; 21 pages, 18 figures; updated with corrections from 10.1093/mnras/stab1784
References in corpus (13)
- The NumPy array: a structure for efficient numerical computation
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- Time-Dependent Ionization in Radiatively Cooling Gas
- The Launching of Cold Clouds by Galaxy Outflows I: Hydrodynamic Interactions with Radiative Cooling
- Resolving small-scale cold circumgalactic gas in TNG50
- Hydrodynamical Coupling of Mass and Momentum in Multiphase Galactic Winds
- A localised subgrid scale model for fluid dynamical simulations in astrophysics I: Theory and numerical tests
- An Exact Integration Scheme for Radiative Cooling in Hydrodynamical Simulations
- Type Ia Supernova: Calculations of Turbulent Flames Using the Linear Eddy Model
- Numerical Study of Turbulent Mixing Layers with Non-Equilibrium Ionization Calculations
- Structure and Stability of Phase Transition Layers in the Interstellar Medium
- Interaction of Cosmic Rays with Cold Clouds in Galactic Halos
- MHD Turbulent Mixing Layers: Equilibrium Cooling Models
Cited by in corpus (51)
- Ram Pressure Stripping in High-Density Environments
- The Structure of Multiphase Galactic Winds
- Baryon Cycles in the Biggest Galaxies
- Efficiently Cooled Stellar Wind Bubbles in Turbulent Clouds I. Fractal Theory and Application to Star-Forming Clouds
- Survival and mass growth of cold gas in a turbulent, multiphase medium
- Efficiently Cooled Stellar Wind Bubbles in Turbulent Clouds II. Validation of Theory with Hydrodynamic Simulations
- Growth and structure of multiphase gas in the cloud-crushing problem with cooling
- The Survival of Multiphase Dusty Clouds in Hot Winds
- A simple model for mixing and cooling in cloud-wind interactions
- A universal correlation between warm and hot gas in the stripped tails of cluster galaxies
- Cloudy with A Chance of Rain: Accretion Braking of Cold Clouds
- Figuring Out Gas & Galaxies In Enzo (FOGGIE) VI: The Circumgalactic Medium of Galaxies is Supported in an Emergent, Non-Hydrostatic Equilibrium
- Radiative turbulent mixing layers at high Mach numbers
- A Model for Line Absorption and Emission from Turbulent Mixing Layers
- Boosting galactic outflows with enhanced resolution
- CR Driven Multi-phase Gas Formed via Thermal Instability
- Better Together: The Complex Interplay Between Radiative Cooling and Magnetic Draping
- Cooling driven coagulation
- Figuring Out Gas & Galaxies In Enzo (FOGGIE) V: The Virial Temperature Does Not Describe Gas in a Virialized Galaxy Halo
- The Characteristic Momentum of Radiatively Cooling Energy-Driven Galactic Winds
- Cooling flows around cold clouds in the circumgalactic medium: steady-state models & comparison with TNG50
- The Anatomy of a Turbulent Radiative Mixing Layer: Insights from an Analytic Model with Turbulent Conduction and Viscosity
- Ram pressure stripping of the multiphase ISM: a detailed view from TIGRESS simulations
- Characterising the turbulent multiphase halos with periodic box simulations
- TODDLERS: A new UV-mm emission library for star-forming regions. 1. Integration with SKIRT and public release
- Radiative Turbulent Mixing Layers and the Survival of Magellanic Debris
- Entrainment of Hot Gas into Cold Streams: The Origin of Excessive Star-formation Rates at Cosmic Noon
- Bottling the Champagne: Dynamics and Radiation Trapping of Wind-Driven Bubbles around Massive Stars
- Dust Survival in Galactic Winds
- The Energy and Dynamics of Trapped Radiative Feedback with Stellar Winds
- On the Mass Loading of AGN-Driven Outflows in Elliptical Galaxies and Clusters
- Absorption-based Circumgalactic Medium Line Emission Estimates
- Simulations of Weakly Magnetized Turbulent Mixing Layers
- On the Origin of High-velocity Clouds in the Galaxy
- Strength in numbers: A multiphase wind model with multiple cloud populations
- FEASTS Combined with Interferometry. III. The Low Column Density HI Around M51 and Possibility of Turbulent-mixing Gas Accretion
- Zooming in on the Circumgalactic Medium with GIBLE: Tracing the Origin and Evolution of Cold Clouds
- Stability and Ly emission of Cold Stream in the Circumgalactic Medium: impact of magnetic fields and thermal conduction
- Investigating dusty Red Supergiant outflows in Westerlund 1 with 3D Hydrodynamic simulations
- Microphysics of Circumgalactic Turbulence Probed by Fast Radio Bursts and Quasars
- Thermal emission from bow shocks. III. Variable diffuse X-ray emission from stellar-wind bow shocks driven by dynamical instabilities
- Fading in the Flow: Suppression of cold gas growth in expanding galactic outflows
- Neural Infalling Cloud Equations (NICE): Increasing the Efficacy of Subgrid Models and Scientific Equation Discovery using Neural ODEs and Symbolic Regression
- Multi-cloud crushing -- the collective survival of cold clouds in galactic outflows
- ARCHITECTS I: Impact of subgrid physics on the simulated properties of the circumgalactic medium
- How is Cold Gas Loaded into Galactic Nuclear Outflows?
- A Dynamical Test for Cooling-Induced Entrainment in a Runaway Supermassive Black Hole Tail
- Modeling Emission-Line Surface Brightness in a Multiphase Galactic Wind: An O VI Case Study
- Modeling Multiphase Galactic Outflows: A Multifluid Moving Mesh Approach
- Influence of protostellar jets and HII regions on the formation and evolution of stellar clusters
- Simulating High-Velocity Clouds in the Observational Plane: An Initial Study with the Smith Cloud