Large eddy simulation of flame and thermal-acoustic characteristics in a strut-based scramjet with dynamic thickened flame model

被引:11
作者
Yuan, Mengcheng [1 ]
Wang, Ping [1 ]
Zhang, Yang [1 ]
Ferrante, Antonio [1 ,2 ]
机构
[1] Jiangsu Univ, Inst Energy Res, Zhenjiang 212013, Jiangsu, Peoples R China
[2] Ctr Combust Ambiente Srl, I-70023 Gioia Del Colle, Bari, Italy
关键词
Supersonic combustion; Thermal-acoustic coupling; Large eddy simulation; Dynamic thickened flame model; Proper orthogonal decomposition; SUPERSONIC COMBUSTION; HYDROGEN-AIR;
D O I
10.1016/j.csite.2022.102560
中图分类号
O414.1 [热力学];
学科分类号
摘要
Supersonic combustion is a complex phenomenon with multi-physical coupling, and the thermal acoustic coupling under supersonic inflow is also a matter of concern. In this work, Large Eddy Simulation of a strut-stabilized model scramjet is performed with dynamic thickened flame combustion model, and an efficiency function accounting for both, wrinkling loss due to flame thickening and turbulence/flame interaction. The finite-rate chemistry model and a skeletal hydrogen reaction mechanism with 9 species and 27 reactions are adopted. The method allows to predict the complex physical in supersonic reactive flow efficiently and the results are in good agreement with experimental. A comprehensive analysis of the Damko center dot hler number, modified flame index and heat release rate is conducted to investigate the flame structure under shock waves condition, and the difference between heat release rate and reaction rate distributions in Mach number space is also observed. The oscillation characteristics in the strut-based scramjet is discussed mode by mode using the Proper Orthogonal Decomposition approach, and the results identify a mode at 4.997 kHz, in which the thermal-acoustic coupling found, while the stronger modes are the results of multiple factors, including auto-ignition, vortexes shedding and the resulting shock-waves oscillation.
引用
收藏
页数:12
相关论文
共 50 条
[31]   Large eddy simulation of the low temperature ignition and combustion processes on spray flame with the linear eddy model [J].
Wei, Haiqiao ;
Zhao, Wanhui ;
Zhou, Lei ;
Chen, Ceyuan ;
Shu, Gequn .
COMBUSTION THEORY AND MODELLING, 2018, 22 (02) :237-263
[32]   Large Eddy Simulation of Premixed Turbulent Combustion using Ξ flame surface wrinkling model [J].
Tabor, G ;
Weller, HG .
FLOW TURBULENCE AND COMBUSTION, 2004, 72 (01) :1-28
[33]   An investigation of a turbulent spray flame using Large Eddy Simulation with a stochastic breakup model [J].
Jones, William P. ;
Marquis, Andrew J. ;
Noh, Dongwon .
COMBUSTION AND FLAME, 2017, 186 :277-298
[34]   A fractal flame-wrinkling large eddy model for premixed turbulent simulation combustion [J].
Fureby, C .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2005, 30 :593-601
[35]   Large Eddy Simulation of Premixed Turbulent Combustion Using Ξ Flame Surface Wrinkling Model [J].
G. Tabor ;
H.G. Weller .
Flow, Turbulence and Combustion, 2004, 72 :1-27
[36]   Large eddy simulation of a lifted ethylene flame using a dynamic nonequilibrium model for subfilter scalar variance and dissipation rate [J].
Kaul, Colleen M. ;
Raman, Venkat ;
Knudsen, Edward ;
Richardson, Edward S. ;
Chen, Jacqueline H. .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2013, 34 :1289-1297
[37]   Large Eddy Simulation and Extended Dynamic Mode Decomposition of Flow-Flame Interaction in a Lean Premixed Low Swirl Stabilized Flame [J].
H. Carlsson ;
C. Carlsson ;
L. Fuchs ;
X. S. Bai .
Flow, Turbulence and Combustion, 2014, 93 :505-519
[38]   LES Investigation of Combustion Instability on GO2/GCH4 Shear Flame Based on Dynamic Thickened Flame Model [J].
Yuan M.-C. ;
Wang P. ;
Yu N.-J. ;
Zhang Y. ;
Cheng K. .
Tuijin Jishu/Journal of Propulsion Technology, 2022, 43 (12)
[39]   Large eddy simulation-based analysis of entropy generation in a turbulent nonpremixed flame [J].
Safari, Mehdi ;
Sheikhi, M. Reza H. .
ENERGY, 2014, 78 :451-457
[40]   Numerical simulation of premixed combustion using the modified dynamic thickened flame model coupled with multi-step reaction mechanism [J].
Guo, Shilong ;
Wang, Jinhua ;
Wei, Xutao ;
Yu, Senbin ;
Zhang, Meng ;
Huang, Zuohua .
FUEL, 2018, 233 :346-353