Theoretical analysis on the ignition of a combustible mixture by a hot particle

被引:8
|
作者
Yu, Dehai [1 ]
Chen, Zheng [1 ]
机构
[1] Peking Univ, Coll Engn, Dept Mech & Engn Sci, SKLTCS,CAPT,BIC ESAT, Beijing 100871, Peoples R China
基金
中国国家自然科学基金;
关键词
combustion; STOICHIOMETRIC HYDROGEN-AIR; EXPLOSIVE ATMOSPHERES; HEAT-TRANSFER; SPHERE; GAS; FLOW; MASS;
D O I
10.1017/jfm.2022.63
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Mechanical spark is an important ignition source in various industrial processes involving combustible mixtures and it may cause serious safety issues. In this work, we analysed the ignition induced by hot particles in a combustible mixture. In Semenov's transient ignition criterion, we introduced a hypothetical heat loss coefficient accounting for the temperature inhomogeneity and obtained a revised ignition criterion which allows us to calculate the ignition delay time. Explicit expressions for the critical ignition temperature were derived and used to demonstrate the primary impacts of temperature inhomogeneity on the ignition process. Consistent with experimental and numerical results, the temperature inhomogeneity is intensified by either reducing the particle size or convective heat transfer at the particle surface, resulting in an increase of the critical ignition temperature. For flow separation on the particle surface, the boundary layer problem was solved based on a Blasius series. A temperature gradient for ignition was defined at the location of flow separation to reproduce the experimentally observed phenomenon that ignition prefers to occur first near the flow separation position. It is shown that the unsteadiness of particle cooling makes negligible contribution to the ignition process because of the exceedingly large density ratio between the particle and the ambient gas. In addition, the finite residence time of ignition for a fluid parcel due to its elevation from the particle surface leads to additional growth in the critical ignition temperature. However, such a correction appears to be inconsequential because the ignition of the fluid parcel restricted to the Frank-Kamenetskii region is close to the particle surface.
引用
收藏
页数:30
相关论文
共 50 条
  • [41] Heating and ignition of combustible dust layers on a hot surface: Influence of layer shrinkage
    Kim, HM
    Hwang, CC
    COMBUSTION AND FLAME, 1996, 105 (04) : 471 - 485
  • [42] ANALYSIS OF IGNITION MECHANISM OF COMBUSTIBLE MIXTURES BY COMPOSITE SPARKS
    ISHII, K
    TSUKAMOTO, T
    UJIIE, Y
    KONO, M
    COMBUSTION AND FLAME, 1992, 91 (02) : 153 - 164
  • [43] Simulation of the ignition of a liquid fuel with a hot particle
    G. V. Kuznetsov
    P. A. Strizhak
    Russian Journal of Physical Chemistry B, 2009, 3 : 441 - 447
  • [44] An axisymmetric electric discharge as a means for remote heating of gas and for ignition of combustible gas mixture
    E. M. Barkhudarov
    N. K. Berezhetskaya
    T. S. Zhuravskaya
    V. A. Kop’ev
    I. A. Kossyi
    V. A. Levin
    V. V. Markov
    N. A. Popov
    M. I. Taktakishvili
    N. M. Tarasova
    S. M. Temchin
    High Temperature, 2010, 48 : 620 - 628
  • [45] Ignition of a combustible gas mixture by a high-current electric discharge in a closed volume
    N. K. Berezhetskaya
    S. I. Gritsinin
    V. A. Kop’ev
    I. A. Kossyi
    P. S. Kuleshov
    N. A. Popov
    A. M. Starik
    N. M. Tarasova
    Plasma Physics Reports, 2009, 35 : 471 - 483
  • [46] Thermoelectric detector application for measuring the ignition delay time in a shock heated combustible mixture
    Kotov, M. A.
    Kozlov, P. V.
    Gerasimov, G. Ya
    Levashov, V. Yu
    Shemyakin, A. N.
    Solovyov, N. G.
    Yakimov, M. Yu
    Glebov, V. N.
    Dubrova, G. A.
    Malyutin, A. M.
    ACTA ASTRONAUTICA, 2023, 204 : 787 - 793
  • [47] Simulation of the ignition of a liquid fuel with a hot particle
    Kuznetsov, G. V.
    Strizhak, P. A.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY B, 2009, 3 (03) : 441 - 447
  • [48] Ignition of a combustible gas mixture by a high-current electric discharge in a closed volume
    Berezhetskaya, N. K.
    Gritsinin, S. I.
    Kop'ev, V. A.
    Kossyi, I. A.
    Kuleshov, P. S.
    Popov, N. A.
    Starik, A. M.
    Tarasova, N. M.
    PLASMA PHYSICS REPORTS, 2009, 35 (06) : 471 - 483
  • [49] An Axisymmetric Electric Discharge as a Means for Remote Heating of Gas and for Ignition of Combustible Gas Mixture
    Barkhudarov, E. M.
    Berezhetskaya, N. K.
    Zhuravskaya, T. S.
    Kop'ev, V. A.
    Kossyi, I. A.
    Levin, V. A.
    Markov, V. V.
    Popov, N. A.
    Taktakishvili, M. I.
    Tarasova, N. M.
    Temchin, S. M.
    HIGH TEMPERATURE, 2010, 48 (05) : 620 - 628
  • [50] BORON PARTICLE IGNITION IN HOT GAS STREAMS
    KING, MK
    COMBUSTION SCIENCE AND TECHNOLOGY, 1974, 8 (5-6) : 255 - 273