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Finite-rate chemistry effects in turbulent hypersonic boundary layers: A direct numerical simulation study

Article dans une revue avec comité de lecture
Auteur
PASSIATORE, Donatella
CINELLA, Paola
541882 Institut Jean Le Rond d'Alembert [DALEMBERT]
GIUSEPPE, Pascazio
ccSCIACOVELLI, Luca
134975 Laboratoire de Dynamique des Fluides [DynFluid]

URI
http://hdl.handle.net/10985/21899
DOI
10.1103/PhysRevFluids.6.054604
Date
2021-05
Journal
Physical Review Fluids

Résumé

The influence of high-enthalpy effects on hypersonic turbulent boundary layers is investigated by means of direct numerical simulations (DNS). A quasiadiabatic flat-plate air flow at free-stream Mach number equal to 10 is simulated up to fully developed turbulent conditions using a five-species, chemically reacting model. A companion DNS based on a frozen-chemistry assumption is also carried out, in order to isolate the effect of finite-rate chemical reactions and assess their influence on turbulent quantities. In order to reduce uncertainties associated with turbulence generation at the inlet of the computational domain, both simulations are initiated in the laminar flow region and the flow is let to evolve up to the fully turbulent regime. Modal forcing by means of localized suction and blowing is used to trigger laminar-to-turbulent transition. The high temperatures reached in the near-wall region including the viscous and buffer sublayers activate significant dissociation of both oxygen and nitrogen. This modifies in turn the thermodynamic and transport properties of the reacting mixture, affecting the first-order statistics of thermodynamic quantities. Due to the endothermic nature of the chemical reactions in the forward direction, temperature and density fluctuations in the reacting layer are smaller than in the frozen-chemistry flow. However, the first- and second-order statistics of the velocity field are found to be little affected by the chemical reactions under a scaling that accounts for the modified fluid properties. We also observed that the Strong Reynolds Analogy remains well respected despite the severe hypersonic conditions and that the computed skin friction coefficient distributions match well the results of the Renard-Deck decomposition extended to compressible flows.

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  • Dynamique des Fluides (DynFluid)

Documents liés

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  • A high-order scheme for the numerical simulation of high-enthalpy hypersonic flows 
    Communication avec acte
    ccPASSIATORE, Donatella; ccSCIACOVELLI, Luca; ccCINNELLA, Paola; ccPASCAZIO, Giuseppe (ICCFD, 2022-07)
    A high-order shock-capturing finite-difference scheme for scale-resolving numerical simulations of hypersonic high-enthalpy flows, involving thermal non-equilibrium effects, is presented. The suitability of the numerical ...
  • Assessment of a high-order shock-capturing central-difference scheme for hypersonic turbulent flow simulations 
    Article dans une revue avec comité de lecture
    PASSIATORE, Donatella; CINELLA, Paola; GIUSEPPE, Pascazio; ccSCIACOVELLI, Luca (Elsevier, 2021-11)
    High-speed turbulent flows are encountered in most space-related applications (including exploration, tourism and defense fields) and represent a subject of growing interest in the last decades. A major challenge in ...
  • Thermochemical non-equilibrium effects in turbulent hypersonic boundary layers 
    Article dans une revue avec comité de lecture
    PASSIATORE, Donatella; CINNELLA, Paola; GIUSEPPE, Pascazio; ccSCIACOVELLI, Luca (2022-04-28)
    A hypersonic, spatially evolving turbulent boundary layer at Mach 12.48 with a cooled wall is analysed by means of direct numerical simulations. At the selected conditions, massive kinetic-to-internal energy conversion ...
  • Direct Numerical Simulation of a hypersonic boundary layer in chemical non-equilibrium 
    Communication avec acte
    ccPASSIATORE, Donatella; ccSCIACOVELLI, Luca; ccCINNELLA, Paola; ccPASCAZIO, Giuseppe (3AF, Association Aéronautique et Astronautique de France, 2021-04)
    The influence of high-enthalpy effects in hypersonic, spatially developing boundary layers is investigated by means of direct numerical simulations. The flow of a reacting mixture of nitrogen and oxygen over a flat plate ...
  • Direct Numerical Simulation of hypersonic boundary layers in chemical non-equilibrium 
    Communication sans acte
    ccPASSIATORE, Donatella; ccSCIACOVELLI, Luca; ccPASCAZIO, Giuseppe; ccCINNELLA, Paola (IUTAM, International Union of Theoretical and Applied Mechanics, 2021-08)
    The influence of high-temperature effects on compressible wall-bounded turbulence is investigated by means of a direct numerical simulation of a hypersonic, chemically out-of-equilibrium, turbulent boundary layer. The ...

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