Structure of Pure Hydrogen Array Microtube Premixed Flame and Measurement of Turbulent Burning Velocity

被引:0
|
作者
Liu, Hongfang [1 ]
Cai, Xiao [1 ]
Wang, Jinhua [1 ]
Dai, Hongchao [1 ]
Han, Xiao [2 ]
Liu, Xiaopei [3 ]
Tang, Chenglong [1 ]
Huang, Zuohua [1 ]
机构
[1] State Key Laboratory of Multiphase Flow in Power Engineering, Xi'An Jiaotong University, Xi'an,710049, China
[2] National Key Laboratory of Science and Technology on Aero-Engine, Beijing,100191, China
[3] Shanghai Electric Gas Turbine Co., Ltd., Shanghai,200240, China
关键词
Atmospheric density - Flame research - Premixed flames - Turbulent flow - Vortex flow;
D O I
10.7652/xjtuxb202412007
中图分类号
学科分类号
摘要
To investigate the turbulent burning characteristics of pure hydrogen micromix flames at various flow velocities ranging from 45 - - 87 m/s under lean combustion conditions, an arrayed microtube nozzle model combustion chamber is employed. The flame is diagnosed using particle image velocimetry and hydroxyl plane laser-induced fluorescence techniques to examine the structure of the turbulent flame front and the thermal flow field of the flame. Details on the scale of the flame front and turbulent parameters of the micromix combustion chamber are obtained, including flame volume, flame surface density, turbulent intensity, turbulent integral scale, and turbulent burning velocity. The results suggest that the turbulence intensity at the outlet of the micromix combustion chamber linearly increases with the inflow velocity. The probabilities of the flame front protruding towards unburned gas and receding from unburned gas are nearly equal. As turbulent intensity rises, the small-scale structure and wrinkling degree of the flame also increase. These changes lead to an increase in flame surface density, thereby increasing the turbulent flame area and turbulent burning velocity. Additionally, the normalized turbulent burning velocity of the hydrogen micromix flames reaches 7 - 11, approximately twice the flame area ratio of 3. 5-5. 5. This is primarily attributed to the low Lewis number of lean hydrogen flames, causing the local combustion rate of the flame to surpass the laminar burning velocity. Therefore, the increase in burning velocity of lean pure hydrogen micromix turbulent flames is mainly driven by the expansion of the flame area and the enhancement of the local combustion rate. This research provides a theoretical basis and experimental support for optimizing the arrayed microtube nozzle model combustion chamber and micromix combustion technology. © 2024 Xi'an Jiaotong University. All rights reserved.
引用
收藏
页码:69 / 77
相关论文
共 50 条
  • [31] Burning velocity and flame structure of CH4/NH3/air turbulent premixed flames at high pressure
    Ichikawa, Akinori
    Naito, Yuji
    Hayakawa, Akihiro
    Kudo, Taku
    Kobayashi, Hideaki
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (13) : 6991 - 6999
  • [32] A Numerical Study on Premixed Turbulent Planar Ammonia/Air and Ammonia/Hydrogen/Air Flames: An Analysis on Flame Displacement Speed and Burning Velocity
    Tamadonfar, Parsa
    Karimkashi, Shervin
    Kaario, Ossi
    Vuorinen, Ville
    FLOW TURBULENCE AND COMBUSTION, 2023, 111 (02) : 717 - 741
  • [33] A Numerical Study on Premixed Turbulent Planar Ammonia/Air and Ammonia/Hydrogen/Air Flames: An Analysis on Flame Displacement Speed and Burning Velocity
    Parsa Tamadonfar
    Shervin Karimkashi
    Ossi Kaario
    Ville Vuorinen
    Flow, Turbulence and Combustion, 2023, 111 (2) : 717 - 741
  • [34] Flame surface density and burning rate in premixed turbulent flames
    Shepherd, IG
    TWENTY-SIXTH SYMPOSIUM (INTERNATIONAL) ON COMBUSTION, VOLS 1 AND 2, 1996, : 373 - 379
  • [35] Three dimensional measurement of vectors of the flamelet motion and gas velocity in a turbulent premixed flame
    Yoshida, Yasuko
    Furukawa, Junichi
    Amin, Vaishali
    Williams, Forman A.
    Proceedings of the 8th International Conference on Modeling and Diagnostics for Advanced Engine Systems, COMODIA 2012, 2012, : 232 - 237
  • [36] Influence of local flame displacement velocity on turbulent burning velocity
    Kido, H
    Nakahara, M
    Nakashima, K
    Hashimoto, J
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2002, 29 : 1855 - 1861
  • [37] Phenomenological turbulent flame velocity model for premixed combustion
    Bi, Xiaoping
    Ranshao Kexue Yu Jishu/Journal of Combustion Science and Technology, 2000, 6 (01): : 44 - 46
  • [38] SPECTRAL INTERPRETATION OF PROPAGATION VELOCITY OF A PREMIXED TURBULENT FLAME
    GOKALP, I
    REVUE GENERALE DE THERMIQUE, 1977, 16 (192): : 853 - 864
  • [40] Measurements of the turbulent burning velocity and the structure of premixed flames on a low-swirl burner
    Plessing, T
    Kortschik, C
    Peters, N
    Mansour, MS
    Cheng, RK
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2000, 28 : 359 - 366