Reaction zone structure in flameless combustion

被引:53
|
作者
Maruta, K
Muso, K
Takeda, K
Niioka, T
机构
[1] Akita Univ, Fac Syst Sci & Technol, Akita 0150055, Japan
[2] Tohoku Univ, Inst Fluid Sci, Sendai, Miyagi 9808577, Japan
[3] Univ Adelaide, Adelaide, SA, Australia
[4] NIST, Gaithersburg, MD 20899 USA
关键词
D O I
10.1016/S0082-0784(00)80621-9
中图分类号
O414.1 [热力学];
学科分类号
摘要
We present a study of the combustion limit and reaction zone structure of non-premixed counterflow flames of highly preheated air and methane diluted with nitrogen. First. we measured the flammable region experimentally in the range of air temperatures up to 800 K;. In the case of flame stretch rates smaller than 20 s(-1). experiments were conducted under microgravity. All the microgravity tests were conducted at the JAMIC drop tower facility in Hokkiado. Japan. The results show that the extinction limits become broader with increasing air temperature. All the extinction curves are C-shaped and exhibit the radiation extinction branch. That is, the configurations of the extinction curves are the same as most conventional combustion at air temperatures from 300 K to 800 K, Second. we compared the. flammable region and reaction zone structure of these flames by using the conventional one dimensional flame code with detailed chemistry. The flammable regions obtained by experiment agree with the computated ones. This shows that the present computation could also represent the phenomena well for high-temperature air combustion. Based on this, computation was extended to higher air temperatures (up to 1900 K) at 1300K microgravity experimentation is not possible. When the air temperature was higher than 1300 K, extinction limits disappeared. In this temperature range, combustion continues even under extremely fuel-lean conditions such as 1% methane in nitrogen. Reaction zones without any temperature peaks were observed. Methane and oxygen leakage through thew flame occurred and they coexisted there. This is like the Linan's premixed flame regime, in other words, a reaction-time-dominated reaction zone structure. In these regions. NOx emission is very low and this may lead to the low levels of NOx emission of high-temperature air combustion.
引用
收藏
页码:2117 / 2123
页数:7
相关论文
共 50 条
  • [1] NUMERICAL MODELING OF THE EFFECTS OF FUEL DILUTION AND STRAIN RATE ON REACTION ZONE STRUCTURE AND NOX FORMATION IN FLAMELESS COMBUSTION
    Mohamed, Hamdi
    Benticha, Hmaeid
    Mohamed, Sassi
    COMBUSTION SCIENCE AND TECHNOLOGY, 2009, 181 (08) : 1078 - 1091
  • [2] Experimental and numerical study of the effect of water injection into the reaction zone of a flameless combustion furnace
    Lopez, Yefferson
    Obando, Julian
    Echeverri-Uribe, Camilo
    Amell, Andres A.
    APPLIED THERMAL ENGINEERING, 2022, 213
  • [3] Structure of reaction zone of normal temperature air flameless combustion in a 2 ton/h coal-fired boiler furnace
    Xing, X.
    Wang, B.
    Lin, Q.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2007, 221 (A4) : 473 - 480
  • [4] Characterization of the reaction zone structures in a laboratory combustor using optical diagnostics: from flame to flameless combustion
    Zhou, Bo
    Costa, Mario
    Li, Zhongshan
    Alden, Marcus
    Bai, Xue-Song
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2017, 36 (03) : 4305 - 4312
  • [5] Flameless combustion
    Ellis, C
    TRANSACTIONS OF THE AMERICAN INSTITUTE OF MINING AND METALLURGICAL ENGINEERS, 1912, 43 : 612 - 630
  • [6] Reaction zone monitoring in biomass combustion
    Garami, Attila
    Csordas, Bernadett
    Palotas, Arpad
    Toth, Pal
    CONTROL ENGINEERING PRACTICE, 2018, 74 : 95 - 106
  • [7] Biogas Flameless Combustion: A Review
    Hosseini, Seyed Ehsan
    Wahid, Mazlan A.
    Abuelnuor, A. A. Ali
    ADVANCES IN THERMOFLUIDS, 2013, 388 : 273 - 279
  • [8] On mathematical modelling of flameless combustion
    Mancini, Marco
    Schwoeppe, Patrick
    Weber, Roman
    Orsino, Stefano
    COMBUSTION AND FLAME, 2007, 150 (1-2) : 54 - 59
  • [9] The flameless upper surface combustion
    不详
    ZEITSCHRIFT DES VEREINES DEUTSCHER INGENIEURE, 1921, 65 : 274 - 275
  • [10] FLAMELESS CATALYTIC COMBUSTION FOR CURING PAINTS
    CONWAY, K
    PLATING AND SURFACE FINISHING, 1988, 75 (02): : 20 - 21