The effect of central air flow on inverse diffusion flame height in atmospheric environment

被引:0
|
作者
Shun Meng
Zhengkang Lu
Yuke Gao
Changfa Tao
Peixiang He
Yejian Qian
Yongqiang Liu
机构
[1] Hefei University of Technology,School of Automotive and Transportation Engineering
[2] Hefei University of Technology,Engineering Research Center for Intelligent Transportation and Cooperative Vehicle
关键词
Flame height; Momentum flux; Buoyancy flux; Air–fuel momentum ratio; Turbulent inverse diffusion flame;
D O I
暂无
中图分类号
学科分类号
摘要
An experimental investigation was performed to study the effect of the central air flow on the turbulent inverse diffusion flame height. The study conducted a series of experiments using two coaxial burners with different nozzle sizes in the atmospheric environment. The experimental results show that the central air flow influences the mixing process between the air/fuel jets and the flame morphology. The inverse diffusion flame height decreased with the increase in air flow rate under the same heat release rate due to the strengthening of air/fuel mixing. The flame height decreases sharply when the air flow is turbulence flow. The air–fuel momentum ratio was found to estimate the inverse diffusion flame height. The momentum flux and buoyancy flux of inverse diffusion flame have been analyzed. Considering the combinational effect of momentum flux and buoyancy flux on the inverse diffusion flame, a new correlation between the inverse diffusion flame height, air flow rate, and heat release rate has been established which provides a valuable resource for designing the inverse diffusion flame burners.
引用
收藏
页码:2209 / 2215
页数:6
相关论文
共 50 条
  • [31] EFFECT OF OXYGEN ADDITION TO A NEAR-SOOTING ETHENE INVERSE DIFFUSION FLAME
    SIDEBOTHAM, GW
    GLASSMAN, I
    COMBUSTION SCIENCE AND TECHNOLOGY, 1992, 81 (4-6) : 207 - 219
  • [32] Suppression Dynamics of a Laminar Oscillating Diffusion Flame with Co-flow Air
    Darabkhani, H. Gohari
    Zhang, Y.
    WORLD CONGRESS ON ENGINEERING, WCE 2010, VOL II, 2010, : 1421 - 1426
  • [33] Stabilisation Mechanism of a Flickering Methane Diffusion Flame with Co-flow of Air
    Darabkhani, Hamidreza Gohari
    Zhang, Yang
    ENGINEERING LETTERS, 2010, 18 (04)
  • [34] Experimental study on the flame height evolution of two adjacent fires under transverse air flow
    Shi, Congling
    Deng, Lei
    Ren, Fei
    Tang, Fei
    ENERGY, 2023, 262
  • [35] Experimental Comparison of Working Region, Flame Stability, and Flame Height of LPG, DME, and DME-mixed LPG in an Atmospheric Diffusion Cylindrical Burner
    Anggarani, Riesta
    Aisyah, Lies
    Wibowo, Cahyo S.
    Nugroho, Yulianto S.
    Dhiputra, I. Made K.
    INTERNATIONAL JOURNAL OF TECHNOLOGY, 2020, 11 (02) : 400 - 410
  • [36] Case study for swirling flow and porous media on triple coaxial ports inverse diffusion flame
    Kotb, Ashraf
    Kamal, Mahmoud M.
    Baghdady, Amr
    Saad, Hany
    ALEXANDRIA ENGINEERING JOURNAL, 2022, 61 (03) : 2294 - 2306
  • [37] The response of a propane-air counter-flow diffusion flame subjected to a transient flow field
    Welle, EJ
    Roberts, WL
    Carter, CD
    Donbar, JM
    COMBUSTION AND FLAME, 2003, 135 (03) : 285 - 297
  • [38] A Computational Study of Radiation and Gravity Effect on Temperature and Soot Formation in a Methane Air Co-flow Diffusion Flame
    Bhowal, Arup Jyoti
    Mandal, Bijan Kumar
    PROCEEDINGS OF THE 11TH INTERNATIONAL CONFERENCE ON MECHANICAL ENGINEERING (ICME 2015), 2016, 1754
  • [39] The Effect of Air Preheating on a Sudden-Expansion Turbulent Diffusion Air-fuel Flame
    S. A. Hashemi
    A. Fattahi
    G. A. Sheikhzadeh
    Arabian Journal for Science and Engineering, 2013, 38 : 2801 - 2808
  • [40] Effect of preheating air temperature on sooting tendency in laminar co-flow diffusion flame of n-heptane
    Zhang, Zijian
    Zhou, Lei
    He, Xiaozhou
    Chen, Lei
    Wei, Haogang
    COMBUSTION AND FLAME, 2023, 251