The acoustic response of burner-stabilized premixed flat flames

被引:18
|
作者
Schreel, KRAM [1 ]
Rook, R [1 ]
De Goey, LPH [1 ]
机构
[1] Eindhoven Univ Technol, Fac Mech Engn, Sect Combust Technol, NL-5600 MB Eindhoven, Netherlands
关键词
D O I
10.1016/S1540-7489(02)80019-0
中图分类号
O414.1 [热力学];
学科分类号
摘要
The behavior of acoustically driven flat flames has been analyzed experimentally. In this study, pressure transducers and laser Doppler velocimetry are used to characterize the acoustical waves upstream and downstream of a flat flame stabilized on a flame holder. Two different flame holders have been used, a perforated brass plate and a ceramic foam, exhibiting very different surface temperatures. From these experiments, the acoustical transfer function can be derived. This transfer function shows a resonance-like behavior, of which the shape and peak frequency is governed mainly by the surface temperature of the burner and the velocity of the unburned mixture. The brass burner exhibits a resonance frequency around 140 Hz, where the resonance of the ceramic burner seems to have shifted to much higher frequencies and is much more damped. All results can be understood very well with an analytical model in terms of Zeldovich number, standoff distance, and heat conductivity Apart from the analytical model for the brass flame holder, numerical simulations with detailed chemistry have also been performed. Again, the correspondence is good. The most interesting application is the acoustic behavior of central heating systems, in which these burners are frequently used. For the purpose of modeling the acoustical behavior of complete boiler systems, the analytical model can be used with minor adjustments to the Zeldovich number and heat conductivity, yielding a fairly accurate semiempirical model describing the transfer function.
引用
收藏
页码:115 / 122
页数:8
相关论文
共 50 条
  • [11] Modeling of the small scale structure of flat burner-stabilized flames
    DeGoey, LPH
    Somers, LMT
    Bosch, WMML
    Mallens, RMM
    COMBUSTION SCIENCE AND TECHNOLOGY, 1995, 104 (4-6) : 387 - 400
  • [12] Diffusional-thermal instability of cylindrical burner-stabilized premixed flames
    Chao, BH
    Xia, YQ
    COMBUSTION AND FLAME, 2000, 121 (04) : 625 - 639
  • [13] Development of a flashback correlation for burner-stabilized hydrogen-air premixed flames
    Vance, F. H.
    de Goey, L. P. H.
    van Oijen, J. A.
    COMBUSTION AND FLAME, 2022, 243
  • [14] Tip Opening of Burner-Stabilized Flames
    Mohammed, Abdul Naseer
    Jithin, Edacheri Veetil
    Dineshkurnar, L.
    Kishore, V. Ratna
    Mohammad, Akram
    ENERGY & FUELS, 2018, 32 (02) : 2344 - 2354
  • [16] PULSATIONS IN A BURNER-STABILIZED PREMIXED PLANE FLAME
    MATKOWSKY, BJ
    OLAGUNJU, DO
    SIAM JOURNAL ON APPLIED MATHEMATICS, 1981, 40 (03) : 551 - 562
  • [17] The i - V curve characteristics of burner-stabilized premixed flames: detailed and reduced models
    Han, Jie
    Belhi, Memdouh
    Casey, Tiernan A.
    Bisetti, Fabrizio
    Im, Hong G.
    Chen, Jyh-Yuan
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2017, 36 (01) : 1241 - 1250
  • [18] OSCILLATORY VELOCITY RESPONSE OF PREMIXED FLAT FLAMES STABILIZED IN AXIAL ACOUSTIC FIELDS
    SANKAR, SV
    JAGODA, JI
    ZINN, BT
    COMBUSTION AND FLAME, 1990, 80 (3-4) : 371 - 384
  • [19] Effects of Hydrogen Addition on the Standoff Distance of Premixed Burner-Stabilized Flames of Various Hydrocarbon Fuels
    Xu, Lei
    Yan, Fuwu
    Wang, Yu
    ENERGY & FUELS, 2018, 32 (02) : 2385 - 2396
  • [20] 2-DIMENSIONAL CELLULAR BURNER-STABILIZED FLAMES
    KUSKE, R
    MATKOWSKY, BJ
    QUARTERLY OF APPLIED MATHEMATICS, 1994, 52 (04) : 665 - 688