Beyond Mixing-length Theory: a step toward 321D
arXiv:1503.00342 · doi:10.1088/0004-637X/809/1/30
Abstract
We examine the physical basis for algorithms to replace mixing-length theory (MLT) in stellar evolutionary computations. Our 321D procedure is based on numerical solutions of the Navier-Stokes equations. These implicit large eddy simulations (ILES) are three-dimensional (3D), time-dependent, and turbulent, including the Kolmogorov cascade. We use the Reynolds-averaged Navier-Stokes (RANS) formulation to make concise the 3D simulation data, and use the 3D simulations to give closure for the RANS equations. We further analyze this data set with a simple analytical model, which is non-local and time-dependent, and which contains both MLT and the Lorenz convective roll as particular subsets of solutions. A characteristic length (the damping length) again emerges in the simulations; it is determined by an observed balance between (1) the large-scale driving, and (2) small-scale damping. The nature of mixing and convective boundaries is analyzed, including dynamic, thermal and compositional effects, and compared to a simple model. We find that (1) braking regions (boundary layers in which mixing occurs) automatically appear {\it beyond} the edges of convection as defined by the Schwarzschild criterion, (2) dynamic (non-local) terms imply a non-zero turbulent kinetic energy flux (unlike MLT), (3) the effects of composition gradients on flow can be comparable to thermal effects, and (4) convective boundaries in neutrino-cooled stages differ in nature from those in photon-cooled stages (different Péclet numbers). The algorithms are based upon ILES solutions to the Navier-Stokes equations, so that, unlike MLT, they do not require any calibration to astronomical systems in order to predict stellar properties. Implications for solar abundances, helioseismology, asteroseismology, nucleosynthesis yields, supernova progenitors and core collapse are indicated.
22 pages, 4 figures, 2 tables; significantly re-written, critique of Pasetto, et al. model added, accepted for publication by ApJ
References in corpus (15)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Pre-Supernova Evolution of Massive Single and Binary Stars
- Structure and Evolution of Giant Cells in Global Models of Solar Convection
- Mixed modes in red giants: a window on stellar evolution
- The Stagger-grid: A grid of 3D stellar atmosphere models - III. The relation to mixing-length convection theory
- On the proper use of the Schwarzschild and Ledoux criteria in stellar evolution computations
- On the Numerical Treatment and Dependence of Thermohaline Mixing in Red Giants
- Code dependencies of pre-supernova evolution and nucleosynthesis in massive stars: Evolution to the end of core helium burning
- A seismic approach to testing different formation channels of subdwarf B stars
- How to define the boundaries of a convective zone and how extended is overshooting?
- A Simple Model for Solar Isorotational Contours
- Theory of stellar convection: Removing the Mixing-Length Parameter
- The blue-edge problem of the V1093 Her instability strip revisited using evolutionary models with atomic diffusion
- Sound-speed inversion of the Sun using a nonlocal statistical convection theory
- The Effect of Metallicity-Dependent T-tau Relations on Calibrated Stellar Models
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