Mechanism of combustion dynamics in a backward-facing step stabilized premixed flame

被引:48
作者
Ghoniem, AF [1 ]
Park, S [1 ]
Wachsman, A [1 ]
Annaswamy, A [1 ]
Wee, D [1 ]
Altay, HM [1 ]
机构
[1] MIT, Dept Mech Engn, Cambridge, MA 02139 USA
来源
PROCEEDINGS OF THE COMBUSTION INSTITUTE | 2005年 / 30卷
关键词
combustion dynamics; premised combustion; flame-vortex interactions; instability; numerical modeling;
D O I
10.1016/j.proci.2004.08.201
中图分类号
O414.1 [热力学];
学科分类号
摘要
Combustion dynamics leading to thermoacoustic instability in a rearward-facing step stabilized premixed flame is experimentally examined with the objective of investigating the fluid dynamic mechanism that drives heat release rate fluctuations, and how it couples with the acoustic field. The field is probed Visually, using linear photodiode arrays that capture the spatiotemporal distribution of CH* and OH*; an equivalence ratio monitor; and a number of pressure sensors. Results show resonance between the acoustic quarter wave mode of the combustion tunnel and a fluid dynamic mode of the wake. Under unstable conditions. the flame is convoluted around a large vortex that extends several step heights downstream. During a typical cycle, while the velocity is decreasing, the vortex grows, and the flame extends downstream around its outer edge. As the velocity reaches its minimum, becoming mostly negative, the vortex reaches its maximum size, and the flame collides with the upper wall; its leading edge folds, trapping reactants pockets, and its trailing edge propagates far upstream of the step. In the next phase, while the velocity is increasing, the heat release grows rapidly as trapped reactant' pockets are consumed by flames converging towards their centers, and the upstream flame is dislodged back downstream. The heat release rate reaches its maximum halfway into the velocity rise period, leading the maximum velocity by about 90 degrees. In this quarter-wave mode, the pressure leads the velocity by 90 degrees as well, that is, it is in phase with the heat release rate. Numerical modeling results support this mechanism. Equivalence ratio contribution to the instability mechanism is shown to be minor, i.e., heat release dynamics are governed by the cyclical formation of the wake vortex and its interaction with the flame. (c) 2004 Published by Elsevier Inc. on behalf of The Combustion Institute.
引用
收藏
页码:1783 / 1790
页数:8
相关论文
共 17 条
[1]  
COHEN JM, 1996, 34 AER SCI M REN NV
[2]   A computational study of combustion instabilities due to vortex shedding [J].
Fureby, C .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2000, 28 :783-791
[3]   Shear flow-driven combustion instability: Evidence, simulation, and modeling [J].
Ghoniem, AF ;
Annaswamy, A ;
Wee, D ;
Yi, TX ;
Park, S .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2002, 29 (01) :53-60
[4]   NUMERICAL MODELING OF TURBULENT-FLOW IN A COMBUSTION TUNNEL [J].
GHONIEM, AF ;
CHORIN, AJ ;
OPPENHEIM, AK .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1982, 304 (1484) :303-+
[5]   An experimental study on the effect of pressure and strain rate on CH chemiluminescence of premixed fuel-lean methane/air flames [J].
Higgins, B ;
McQuay, MQ ;
Lacas, F ;
Candel, S .
FUEL, 2001, 80 (11) :1583-1591
[6]  
JOU WH, 1986, AIAA 24 ARE SCI M RE
[7]   MECHANISM OF INSTABILITIES IN TURBULENT COMBUSTION LEADING TO FLASHBACK [J].
KELLER, JO ;
VANEVELD, L ;
KORSCHELT, D ;
HUBBARD, GL ;
GHONIEM, AF ;
DAILY, JW ;
OPPENHEIM, AK .
AIAA JOURNAL, 1982, 20 (02) :254-262
[8]   A mechanism of combustion instability in lean premixed gas turbine combustors [J].
Lieuwen, T ;
Torres, H ;
Johnson, C ;
Zinn, BT .
JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 2001, 123 (01) :182-189
[9]  
LUMLEY JL, 1996, TURBULENCE COHERENT
[10]   COUPLING BETWEEN VORTICITY AND PRESSURE OSCILLATIONS IN COMBUSTION INSTABILITY [J].
NAJM, HN ;
GHONIEM, AF .
JOURNAL OF PROPULSION AND POWER, 1994, 10 (06) :769-776