Numerical Benchmark for High-Reynolds-Number Supercritical Flows with Large Density Gradients
Author(s) -
Anthony Ruiz,
Guilhem Lacaze,
Joseph Oefelein,
Romain Mari,
Bénédicte Cuenot,
Laurent Selle,
Thierry Poinsot
Publication year - 2015
Publication title -
aiaa journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.828
H-Index - 158
eISSN - 1081-0102
pISSN - 0001-1452
DOI - 10.2514/1.j053931
Subject(s) - reynolds number , benchmark (surveying) , liquid propellant rocket , solver , aerospace engineering , direct numerical simulation , computer science , computational fluid dynamics , rocket (weapon) , mechanics , reynolds averaged navier–stokes equations , turbulence , physics , mathematics , mathematical optimization , engineering , propellant , geodesy , geography
International audienceBecause of the extreme complexity of physical phenomena at high pressure, only limited data are available for solver validation at device-relevant conditions such as liquid rocket engines, gas turbines, or diesel engines. In the present study, a two-dimensional direct numerical simulation is used to establish a benchmark for supercritical flow at a high Reynolds number and high-density ratio at conditions typically encountered in liquid rocket engines. Emphasis has been placed on maintaining the flow characteristics of actual systems with simple boundary conditions, grid spacing, and geometry. Results from two different state-of-the-art codes, with markedly different numerical formalisms, are compared using this benchmark. The strong similarity between the two numerical predictions lends confidence to the physical accuracy of the results. The established database can be used for solver benchmarking and model development at conditions relevant to many propulsion and power systems
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