A study of the influence of coflow on flame dynamics in impinging jet diffusion flames

被引:3
作者
Li, Hongxu [1 ]
Jiang, Jieyu [1 ,2 ]
Sun, Meng [1 ]
Yu, Yongzhe [1 ]
Sui, Chunjie [1 ]
Zhang, Bin [1 ]
机构
[1] Qingdao Univ Sci & Technol, Coll Electromech Engn, Qingdao 266100, Peoples R China
[2] Univ Sci & Technol China, State Key Lab Fire Sci, Hefei 230027, Anhui, Peoples R China
来源
JOURNAL OF TURBULENCE | 2021年 / 22卷 / 08期
关键词
Impinging; coflow; velocity; temperature; flame instability; COMBUSTION; INSTABILITY; STEADY;
D O I
10.1080/14685248.2021.1917769
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Non-premixed impinging jet flames with different coflow conditions are performed using PIV technology combined with numerical simulation to investigate flame instability in the vicinity of wall. Results indicate that the increase of coflow velocity results in a more chaotic flow field and higher fuel efficiency, and the increase of coflow temperature leads to ignition advance and the increase of NO concentration. These can be attributed to the coupling effect of Kelvin-Helmholtz instability, convective instability and Rayleigh-Taylor instability. High coflow velocity is more likely to induce Kelvin-Helmholtz instability and convective instability, and the increase of coflow temperature enhances Rayleigh-Taylor instability and convective instability. Due to the impact effect in the vicinity of wall, the flame instability is more likely to be induced at high coflow velocity. Meanwhile, the increase of coflow temperature can inhibit flame wrinkles. The flame dynamics is affected by turbulent mixing, head-on collision, shear and convective behaviors in non-premixed flames.
引用
收藏
页码:461 / 480
页数:20
相关论文
共 36 条
  • [21] Direct numerical simulation of turbulent premixed jet flames: Influence of inflow boundary conditions
    Ma, Man-Ching
    Talei, Mohsen
    Sandberg, Richard D.
    [J]. COMBUSTION AND FLAME, 2020, 213 : 240 - 254
  • [22] Murugan S, 2020, INT J MECH SCI, V186, DOI [10.1016/j.ijmecsci.2020.105907, 10.1016/j.ijmecsci.2020.1059070]
  • [23] Wall heat transfer prediction in CH4/O2 and H2/O2 rocket thrust chambers using a non-adiabatic flamelet model
    Perakis, Nikolaos
    Haidn, Oskar J.
    [J]. ACTA ASTRONAUTICA, 2020, 174 : 254 - 269
  • [24] The wall shear stress produced by the normal impingement of a jet on a flat surface
    Phares, DJ
    Smedley, GT
    Flagan, RC
    [J]. JOURNAL OF FLUID MECHANICS, 2000, 418 : 351 - 375
  • [25] Thermal-diffusive instabilities in unstretched, planar diffusion flames
    Robert, Etienne
    Monkewitz, Peter A.
    [J]. COMBUSTION AND FLAME, 2012, 159 (03) : 1228 - 1238
  • [26] Temporal evolution of flame stretch due to turbulence and the hydrodynamic instability
    Steinberg, A. M.
    Driscoll, J. F.
    Ceccio, S. L.
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2009, 32 : 1713 - 1721
  • [27] Thermo-acoustic instabilities in lean premixed swirl-stabilized combustion and their link to acoustically coupled and decoupled flame macrostructures
    Taamallah, Soufien
    LaBry, Zachary A.
    Shanbhogue, Santosh J.
    Ghoniem, Ahmed F.
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2015, 35 : 3273 - 3282
  • [28] Large-eddy simulation of dual-fuel spray ignition at different ambient temperatures
    Tekgul, Bulut
    Kahila, Heikki
    Kaario, Ossi
    Vuorinen, Ville
    [J]. COMBUSTION AND FLAME, 2020, 215 (215) : 51 - 65
  • [29] Numerical study of H2O addition effects on pulverized coal oxy-MILD combustion
    Tu, Yaojie
    Liu, Hao
    Su, Kai
    Chen, Sheng
    Liu, Zhaohui
    Zheng, Chuguang
    Li, Weijie
    [J]. FUEL PROCESSING TECHNOLOGY, 2015, 138 : 252 - 262
  • [30] Simulations of a turbulent line fire with a steady flamelet combustion model coupled with models for non-local and local gas radiation effects
    Van Minh Le
    Marchand, Alexis
    Verma, Salman
    Xu, Rui
    White, James
    Marshall, Andre
    Rogaume, Thomas
    Richard, Franck
    Luche, Jocelyn
    Trouve, Arnaud
    [J]. FIRE SAFETY JOURNAL, 2019, 106 : 105 - 113