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Title: Analysis of turbulent transport and mixing in transitional Rayleigh–Taylor unstable flow using direct numerical simulation data

Journal Article · · Physics of Fluids
DOI:https://doi.org/10.1063/1.3484247· OSTI ID:1124837

Data from a 1152X760X1280 direct numerical simulation (DNS) of a transitional Rayleigh-Taylor mixing layer modeled after a small Atwood number water channel experiment is used to comprehensively investigate the structure of mean and turbulent transport and mixing. The simulation had physical parameters and initial conditions approximating those in the experiment. The budgets of the mean vertical momentum, heavy-fluid mass fraction, turbulent kinetic energy, turbulent kinetic energy dissipation rate, heavy-fluid mass fraction variance, and heavy-fluid mass fraction variance dissipation rate equations are constructed using Reynolds averaging applied to the DNS data. The relative importance of mean and turbulent production, turbulent dissipation and destruction, and turbulent transport are investigated as a function of Reynolds number and across the mixing layer to provide insight into the flow dynamics not presently available from experiments. The analysis of the budgets supports the assumption for small Atwood number, Rayleigh/Taylor driven flows that the principal transport mechanisms are buoyancy production, turbulent production, turbulent dissipation, and turbulent diffusion (shear and mean field production are negligible). As the Reynolds number increases, the turbulent production in the turbulent kinetic energy dissipation rate equation becomes the dominant production term, while the buoyancy production plateaus. Distinctions between momentum and scalar transport are also noted, where the turbulent kinetic energy and its dissipation rate both grow in time and are peaked near the center plane of the mixing layer, while the heavy-fluid mass fraction variance and its dissipation rate initially grow and then begin to decrease as mixing progresses and reduces density fluctuations. All terms in the transport equations generally grow or decay, with no qualitative change in their profile, except for the pressure flux contribution to the total turbulent kinetic energy flux, which changes sign early in time (a countergradient effect). The production-to-dissipation ratios corresponding to the turbulent kinetic energy and heavy-fluid mass fraction variance are large and vary strongly at small evolution times, decrease with time, and nearly asymptote as the flow enters a self-similar regime. The late-time turbulent kinetic energy production-to-dissipation ratio is larger than observed in shear-driven turbulent flows. The order of magnitude estimates of the terms in the transport equations are shown to be consistent with the DNS at late-time, and also confirms both the dominant terms and their evolutionary behavior. Thus, these results are useful for identifying the dynamically important terms requiring closure, and assessing the accuracy of the predictions of Reynolds-averaged Navier-Stokes and large-eddy simulation models of turbulent transport and mixing in transitional Rayleigh-Taylor instability-generated flow.

Research Organization:
Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)
Sponsoring Organization:
USDOE Office of Science (SC)
DOE Contract Number:
W-7405-ENG-48; AC52-07NA27344
OSTI ID:
1124837
Report Number(s):
LLNL-JRNL-439512
Journal Information:
Physics of Fluids, Vol. 22, Issue 10; ISSN 1070-6631
Publisher:
American Institute of Physics (AIP)
Country of Publication:
United States
Language:
English

References (28)

Influence of subgrid scales on resolvable turbulence and mixing in Rayleigh–Taylor flow journal March 2004
A First Course in Turbulence January 1972
Direct simulation of a self‐similar turbulent mixing layer journal February 1994
Statistically steady measurements of Rayleigh-Taylor mixing in a gas channel journal March 2006
Reynolds-stress and dissipation-rate budgets in a turbulent channel flow journal September 1988
Spectral measurements of Rayleigh–Taylor mixing at small Atwood number journal March 2002
Turbulence: the chief outstanding difficulty of our subject journal February 1994
A new model of premixed wrinkled flame propagation based on a scalar dissipation equation journal March 1994
Numerical simulation of mixing by Rayleigh–Taylor and Richtmyer–Meshkov instabilities journal December 1994
The structure of the vorticity field in homogeneous turbulent flows journal March 1987
Measurements of molecular mixing in a high-Schmidt-number Rayleigh–Taylor mixing layer journal July 2009
Locally Weighted Regression: An Approach to Regression Analysis by Local Fitting journal September 1988
Turbulent combustion modeling journal March 2002
Rayleigh–Taylor and shear driven mixing with an unstable thermal stratification journal October 1994
Investigation of Rayleigh–Taylor turbulence and mixing using direct numerical simulation with experimentally measured initial conditions. I. Comparison to experimental data journal January 2009
Simultaneous measurements of velocity and density in buoyancy-driven mixing journal January 2003
Investigation of Rayleigh–Taylor turbulence and mixing using direct numerical simulation with experimentally measured initial conditions. II. Dynamics of transitional flow and mixing statistics journal January 2009
Experiments in nearly homogenous turbulent shear flow with a uniform mean temperature gradient. Part 1 journal March 1981
Rayleigh–Taylor turbulence: self-similar analysis and direct numerical simulations journal May 2004
Modeling of scalar dissipation in partially premixed turbulent flames journal April 2007
A new approach to modelling near-wall turbulence energy and stress dissipation journal May 2002
Experimental investigation of RayleighTaylor mixing at small Atwood numbers journal January 1999
Turbulent Flows book July 2012
Reynolds number effects on Rayleigh–Taylor instability with possible implications for type Ia supernovae journal July 2006
Experimental characterization of initial conditions and spatio-temporal evolution of a small-Atwood-number Rayleigh–Taylor mixing layer journal October 2006
Transition stages of Rayleigh–Taylor instability between miscible fluids journal April 2002
Towards an extended scalar dissipation equation for turbulent premixed combustion journal April 2003
Large-eddy simulation of Rayleigh-Taylor turbulence with compressible miscible fluids journal July 2005

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