Atomization of a liquid jet in supersonic crossflow in a combustion chamber with an expanded section

被引:38
作者
Zhao, Jiafeng [1 ]
Ren, YongJie [1 ]
Tong, Yiheng [1 ]
Lin, Wei [1 ]
Nie, Wansheng [1 ]
机构
[1] Space Engn Univ, Dept Aerosp Sci & Technol, Beijing 100048, Peoples R China
基金
中国国家自然科学基金;
关键词
Supersonic crossflow; Expanded section; Liquid jet; Delayed detached eddy simulation; Eulerian-Lagrangian method; LARGE-EDDY SIMULATION; DIFFUSION COMBUSTION; ROTATING DETONATION; KEROSENE INJECTION; SPRAY COMBUSTION; PRIMARY BREAKUP; AIR; IGNITION; DROPLETS; MODEL;
D O I
10.1016/j.actaastro.2020.11.051
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The diffusion process and spatial distribution of a liquid jet in supersonic crossflow (Mach number of 2) in a model combustor with an expanded section were investigated on the basis of experiments and simulations. Experiments were performed using high-speed photography, high-speed shadowgraph and laser-based particle size analyzer to investigate the spray structures, flow fields and droplet diameter, respectively. The Eulerian-Lagrangian method coupled with the Kelvin-Helmholtz/Rayleigh-Taylor breakup model were used in the simulations. Moreover, delayed detached eddy simulation numerical method based on the two-equation shear stress transport turbulence model was applied. The spray distributions and flow fields predicted in the simulation, including the spray penetration, cross-sectional distribution, droplet size in the far-field, the bow shock, large-scale vortices and recirculation zones were in good agreement with experiments. The evolution of spray in supersonic crossflow could be divided into three stages, aerodynamic induced liquid column fracturing, expansion wave promoted spray accelerating, and compression wave disturbed spray blending. Overall, the channel configuration (with expended section) changed the direction and strength of the supersonic airflow. The force of the crossflow determined the spray diffusion.
引用
收藏
页码:35 / 45
页数:11
相关论文
共 68 条
[1]   Modeling of an efficient airblast atomizer for liquid jet into a supersonic crossflow [J].
Almanzalawy, Mohamed S. ;
Rabie, Lotfy H. ;
Mansour, Mohamed H. .
ACTA ASTRONAUTICA, 2020, 177 :142-157
[2]  
[Anonymous], 2017, GEOPHYS PROSPECT, DOI DOI 10.1111/1365-2478.12471
[3]   Stochastic modeling of atomizing spray in a complex swirl injector using large eddy simulation [J].
Apte, Sourabh V. ;
Mahesh, Krishnan ;
Gorokhovski, Michael ;
Moin, Parviz .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2009, 32 :2257-2266
[4]  
Beale JC, 1999, ATOMIZATION SPRAY, V9, P623, DOI 10.1615/AtomizSpr.v9.i6.40
[5]   Evaporation and ignition of droplets in combustion chambers modeling and simulation [J].
Betelin, V. B. ;
Smirnov, N. N. ;
Nikitin, V. F. ;
Dushin, V. R. ;
Kushnirenko, A. G. ;
Nerchenko, V. A. .
ACTA ASTRONAUTICA, 2012, 70 :23-35
[6]   Liquid jet in a subsonic gaseous crossflow: Recent progress and remaining challenges [J].
Broumand, M. ;
Birouk, M. .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2016, 57 :1-29
[7]   Initiation of detonation of fuel-air mixtures in a flow-type annular combustor [J].
Bykovskii, F. A. ;
Zhdan, S. A. ;
Vedernikov, E. F. .
COMBUSTION EXPLOSION AND SHOCK WAVES, 2014, 50 (02) :214-222
[8]   Continuous spin detonations [J].
Bykovskii, Fedor A. ;
Zhdan, Sergey A. ;
Vedernikov, Evgenii F. .
JOURNAL OF PROPULSION AND POWER, 2006, 22 (06) :1204-1216
[9]  
Crowe C.T., 2011, Multiphase flows with droplets and particles, Vsecond, DOI 10.1201/b11103
[10]   PARTICLE-SOURCE IN CELL (PSI-CELL) MODEL FOR GAS-DROPLET FLOWS [J].
CROWE, CT ;
SHARMA, MP ;
STOCK, DE .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1977, 99 (02) :325-332