BUNSEN FLAME BLOW-OFF: VELOCITY-MATCHING METHOD

被引:0
|
作者
Xia, Huang [1 ]
Yong, Huang [1 ]
Fang, Wang [1 ]
Bin, Hu [1 ]
机构
[1] Beihang Univ, Natl Key Lab Aeroengines, Sch Jet Prop, Beijing 100191, Peoples R China
关键词
velocity-matching; flame anchoring point; Bunsen burner; laminar premixed flame;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The effect of the incoming velocity on the anchoring point of a Bunsen flame is studied by theoretical analysis and experiments, since the anchoring point is essential to the flame holding. In order to predict the locations of the anchoring point, the velocity-matching (VM) method, which compares the profile of the flow velocity of the cold flow with that of the flame speed near the exit of a Bunsen burner, is employed together with the consideration of the cold wall quenching. The anchoring point is predicted to be located at {x = C(x1)u(0) + C(q)d(q0)u(0)(1/2) + C(x2)d(q0) y = -C(y1)S(L0)(1/2)u(0)(-1) + C(y2)S(L0)u(0)(-2) + C(y3)S(L0)(1/2)u(0)(-2) + C-y4 . The experiment on the variation of the anchoring point with the incoming gas velocity is done with a laminar premixed methane-air flame. The equivalence ratios of the pre-mixture are 1.0, 0.9, and 0.8, respectively, and the incoming velocity is less than 2.00 m/s in the experiment. The results show that the anchoring point moves downstream and towards instead of away from the centerline of the jet as estimated by Bernard Lewis with increasing incoming gas velocity. The prediction of the locations of the anchoring point by VM method agrees well with the experiment within the uncertainty of less than +/-20%.
引用
收藏
页码:623 / 631
页数:9
相关论文
共 50 条
  • [41] Anomalous blow-off limit of methane-air premixed flame in a micro preheated combustor with a flame holder
    Wan, Jianlong
    Zhao, Haibo
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (55) : 31202 - 31212
  • [42] MEASUREMENTS OF THE VISCOSITY OF BOUNDARY (SURFACE) LAYERS OF LIQUIDS BY THE BLOW-OFF METHOD
    DERJAGUIN, B
    STRAKHOVSKY, S
    MALISHEVA, D
    ZHURNAL EKSPERIMENTALNOI I TEORETICHESKOI FIZIKI, 1946, 16 (02): : 171 - 178
  • [43] Blow-off characteristics of a premixed methane/air flame response to acoustic disturbances in a longitudinal combustor
    Sun, Yongchao
    Sun, Mingbo
    Zhao, Dan
    Chen, Yong
    Ma, Guangwei
    Wan, Minggang
    Sun, Yuze
    Zhu, Jiajian
    AEROSPACE SCIENCE AND TECHNOLOGY, 2021, 118
  • [44] Lean blow-off characteristics of a tangential entry type dual swirling free and impinging flame
    Sapra, Girish
    Chander, Subhash
    FUEL, 2021, 295
  • [45] Detailed chemistry LES/CMC simulation of a swirling ethanol spray flame approaching blow-off
    Giusti, A.
    Mastorakos, E.
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2017, 36 (02) : 2625 - 2632
  • [46] DESIGN AND CONSTRUCTION OF STEAM BLOW-OFF SILENCERS
    KERB, D
    RENNECKE, HJ
    SOUND TECHNOLOGY 89: PROGRESSIVE NOISE PROTECTION TECHNOLOGIES AND LOW NOISE PRODUCTS, 1989, 742 : 105 - 119
  • [47] Giant impact induced atmospheric blow-off
    Ahrens, TJ
    Shen, AH
    Ni, S
    SHOCK COMPRESSION OF CONDENSED MATTER - 2003, PTS 1 AND 2, PROCEEDINGS, 2004, 706 : 1419 - 1422
  • [48] Large Eddy Simulation of Bluff-Body Flame Approaching Blow-Off: A Sensitivity Study
    Hodzic, Erdzan
    Jangi, Mehdi
    Szasz, Robert-Zoltan
    Duwig, Christophe
    Geron, Marco
    Early, Juliana
    Fuchs, Laszlo
    Bai, Xue-Song
    COMBUSTION SCIENCE AND TECHNOLOGY, 2019, 191 (10) : 1815 - 1842
  • [49] Complex Effect of Electric and Acoustic Fields on Air-methane Flame Blow-off Characteristics
    Arefyev, K. Yu
    Krikunova, A., I
    Panov, V. A.
    HIGH TEMPERATURE, 2019, 57 (06) : 909 - 915
  • [50] Generalised correlations of blow-off and flame quenching for sub-sonic and choked jet flames
    Palacios, Adriana
    Bradley, Derek
    COMBUSTION AND FLAME, 2017, 185 : 309 - 318