LES Investigation of Combustion Instability on GO2/GCH4 Shear Flame Based on Dynamic Thickened Flame Model

被引:0
作者
Yuan M.-C. [1 ]
Wang P. [1 ]
Yu N.-J. [2 ]
Zhang Y. [1 ]
Cheng K. [1 ]
机构
[1] Institute for Energy Research, Jiangsu University, Zhenjiang
[2] School of Astronautics, Beihang University, Beijing
来源
Tuijin Jishu/Journal of Propulsion Technology | 2022年 / 43卷 / 12期
关键词
Combustion instabili⁃ ty; DTF combustion model; Large eddy simulation; Liquid rocket engine; POD decomposition;
D O I
10.13675/j.cnki.tjjs.210808
中图分类号
学科分类号
摘要
In order to improve the understanding of flow-induced combustion instability mechanism in liq⁃ uid rocket engines,Large Eddy Simulation(LES)was carried out for gas-oxygen/gas-methane coaxial shear in⁃ jection combustion test using the Dynamic Thickened Flame(DTF)model. Two cases with different fuel-oxy⁃ gen velocity ratio under the same oxygen-fuel mixing ratio were simulated. The predicted OH distribution is in good agreement with the PLIF results. When the fuel-oxygen velocity ratio is 0.5,the flame transits from lami⁃ nar to turbulent along the flow direction,while the thickness of shear layer and the level of wrinkle increase sig⁃ nificantly. When the velocity ratio is 1.5,the flame becomes unstable with periodic quenching and reignition. The large-scale coherent structure that plays a dominant role in quenching was obtained by Proper Orthogonal Decomposition(POD)associating OH with velocity distribution sequences,which further linked the recon⁃ structed flow with the dynamic evolution of flame and revealed the influence process of flow factors on flame in⁃ stability. © 2022 Journal of Propulsion Technology. All rights reserved.
引用
收藏
相关论文
共 21 条
[11]  
Scotti A, Meneveau C, Lilly D K., Generalized Smagorin⁃ sky Model for Anisotropic Grids[J], Physics of Fluids A:Fluid Dynamics, 5, 9, pp. 2306-2308, (1993)
[12]  
Scotti A, Meneveau C,, Fatica M., Dynamic Smagorinsky Model on Anisotropic Grids[J], Physics of Fluids, 9, 6, pp. 1856-1858, (1997)
[13]  
Legier J P, Poinsot T, Veynante D., Dynamically Thick⁃ ened Flame LES Model for Premixed and Non-Premixed Turbulent Combustion[C], (2000)
[14]  
Colin O,, Ducros F,, Veynante D,, Et al., A Thickened Flame Model for Large Eddy Simulations of Turbulent Premixed Combustion[J], Physics of Fluids, 12, 7, pp. 1843-1863, (2000)
[15]  
33, 10, pp. 1823-1826, (2012)
[16]  
Wang P, Shrotriya P,, Et al., Numerical Analysis of Equivalence Ratio Fluctuations in a Partially Premixed Gas Turbine Combustor Using Large Eddy Simulations [J], Journal of Engineering for Gas Turbines and Power, 141, 4, (2019)
[17]  
25, 1, pp. 66-72, (2019)
[18]  
WANG Ping, HOU Tian-zeng, YU Qian, A Sensitivity Analysis of Parameters in Premixed Swirling Flames Simulation with Thickened-Flame Model [J], Journal of Propulsion Technology, 39, 2, pp. 358-365, (2018)
[19]  
Toshimitsu K,, Matsuo A, Kamel M R,, Et al., Numerical Simulations and Planar Laser-Induced Fluorescence Im⁃ aging Results of Hypersonic Reactive Flows[J], Journal of Propulsion and Power, 16, 1, pp. 16-21, (2000)
[20]  
Sirovich L., Turbulence and the Dynamics of Coherent Structures. I. Coherent Structures[J], Quarterly of Ap⁃ plied Mathematics, 45, 3, pp. 561-571, (1987)