Highly-resolved large-eddy simulations of combustion stabilization in a scramjet engine model with cavity flameholder

被引:12
|
作者
Eugenio Ribeiro, Fabio Henrique [1 ,2 ,3 ]
Boukharfane, Radouan [1 ,2 ,4 ]
Mura, Arnaud [1 ,2 ]
机构
[1] ENSMA, ISAE, CNRS, Inst Pprime,UPR 3346, Chasseneuil, France
[2] Univ Poitiers, Poitiers, France
[3] Inst Estudos Avancados, Sao Jose Dos Campos, SP, Brazil
[4] KAUST, ECRC, Comp Elect & Math Sci & Engn Div CEMSE, Thuwal, Saudi Arabia
关键词
High-speed flows; Large-eddy simulation (LES); Mesh reliability; Jet in supersonic crossflow (JISCF); Scramjet; Immersed boundary method (IBM); SUPERSONIC COMBUSTION; NUMERICAL-SIMULATION; TURBULENT COMBUSTION; IGNITION; COMPRESSIBILITY; TRANSPORT; FLOWS; JET;
D O I
10.1016/j.compfluid.2019.104344
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Scramjet engines are high-speed airbreathing propulsion systems that do not require rotating elements to compress the air inlet stream. It is compressed dynamically through a supersonic intake system that is integrated in the forebody, thus leading to the required temperature and pressure levels for combustion to proceed within the combustor length, In such engines, the combustion chamber is crossed by a supersonic flow, which limits the time available to inject fuel, to mix it with oxidizer, to ignite the resulting mixture, and to reach complete combustion. Residence times can be increased thanks to cavities, which have the potential to stabilize combustion without excessive total pressure loss and are therefore used as flameholders in supersonic combustors. In the present study, we perform high-fidelity large-eddy simulations (LES) of a hydrogen jet in a supersonic crossflow (JISCF) of vitiated air, which is located upstream of a wall-mounted squared cavity. The performance of such high-fidelity LES does not only require the use of high-precision numerical schemes and reliable subgrid-scale models relevant to the so-called direct numerical simulation (DNS) limit, it is also strongly dependent on the mesh quality. Therefore, the present study places special emphasis on computational grid assessment through the introduction of a detailed numerical procedure, which aims at analysing mesh reliability. The corresponding procedure combines several verification subsets including (i) the inspection of distributions of the dimensions of the computational cells present at the wall location, (ii) the analysis of normalized velocity profiles and viscosity ratio in boundary layers, and (iii) the check of fields of some mesh quality indexes and associated distributions. For the geometry under consideration, it appears that the level of resolution imposed by a correct description of boundary layers leads to a mesh quality that is close to the one associated to DNS requirements. Combustion stabilization is then studied for two distinct values of the inlet vitiated airstream temperature. Two stabilization modes are recovered from the numerical simulations: cavity-stabilized and jet-wake stabilized regimes. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] LARGE-EDDY SIMULATION OF TRANSIENT BEHAVIOR IN A COMBUSTION FIELD FOR GAS-TURBINE ENGINE
    Takahashi, Yusuke
    Oshima, Nobuyuki
    Iwai, Yasunori
    11TH WORLD CONGRESS ON COMPUTATIONAL MECHANICS; 5TH EUROPEAN CONFERENCE ON COMPUTATIONAL MECHANICS; 6TH EUROPEAN CONFERENCE ON COMPUTATIONAL FLUID DYNAMICS, VOLS V - VI, 2014, : 5792 - 5803
  • [32] Large-eddy simulation of pulverized coal combustion using flamelet model
    Watanabe, Junya
    Okazaki, Teruyuki
    Yamamoto, Kenji
    Kuramashi, Koji
    Baba, Akira
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2017, 36 (02) : 2155 - 2163
  • [33] Eulerian transported probability density function sub-filter model for large-eddy simulations of turbulent combustion
    Raman, Venkatramanan
    Pitsch, Heinz
    Fox, Rodney O.
    COMBUSTION THEORY AND MODELLING, 2006, 10 (03) : 439 - 458
  • [34] Predicting diesel combustion characteristics with Large-Eddy Simulations including tabulated chemical kinetics
    Bekdemir, C.
    Somers, L. M. T.
    de Goey, L. P. H.
    Tillou, J.
    Angelberger, C.
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2013, 34 : 3067 - 3074
  • [35] Temporal large-eddy simulations of the lid-driven cavity by finite volume method
    Correa, L.
    Mompean, G.
    Kurokawa, F. A.
    Sousa, F. S.
    JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2018, 40 (09)
  • [36] Assessment of spray combustion models in large-eddy simulations of a polydispersed acetone spray flame
    Wang, Qing
    Jaravel, Thomas
    Ihme, Matthias
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2019, 37 (03) : 3335 - 3344
  • [37] A ghost-fluid method for large-eddy simulations of premixed combustion in complex geometries
    Moureau, V.
    Minot, P.
    Pitsch, H.
    Berat, C.
    JOURNAL OF COMPUTATIONAL PHYSICS, 2007, 221 (02) : 600 - 614
  • [38] Mesh Dependency of Turbulent Reacting Large-Eddy Simulations of a Gas Turbine Combustion Chamber
    Boudier, Guillaume
    Staffelbach, Gabriel
    Gicquel, Laurent Y. M.
    Poinsot, Thierry J.
    QUALITY AND RELIABILITY OF LARGE-EDDY SIMULATIONS, 2008, 12 : 319 - +
  • [39] Examination of diesel spray combustion in supercritical ambient fluid using large-eddy simulations
    Chung, Wai Tong
    Ma, Peter C.
    Ihme, Matthias
    INTERNATIONAL JOURNAL OF ENGINE RESEARCH, 2020, 21 (01) : 122 - 133
  • [40] Temporal large-eddy simulations of the lid-driven cavity by finite volume method
    L. Corrêa
    G. Mompean
    F. A. Kurokawa
    F. S. Sousa
    Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2018, 40