Mathematical imaging of piloted diffusion methane-air flames under anisotropic scalar dissipation rates

被引:0
作者
Abou-Ellail, Mohsen M. [1 ]
Beshay, Karam R. [1 ]
Halka, David R. [1 ]
机构
[1] George Washington Univ, Washington, DC 20052 USA
来源
HT2005: Proceedings of the ASME Summer Heat Transfer Conference 2005, Vol 1 | 2005年
关键词
D O I
10.1115/HT2005-72439
中图分类号
O414.1 [热力学];
学科分类号
摘要
The present work is a numerical simulation of the, piloted, non-premixed, methane-air flame structure in a new mathematical imaging domain. This imaging space has the mixture fraction of diffusion flame Z1 and mixture fraction of pilot flame Z2 as independent coordinates to replace the usual physical space coordinates. The predications are based on the solution of two - dimensional set of transformed second order partial differential conservation equations describing the mass fractions of O-2, CH4, CO2, CO, H2O, H-2 and sensible enthalpy of the combustion products which are rigorously derived and solved numerically. A three - step chemical kinetic mechanism is adopted. This was deduced in a systematic way from a detailed chemical kinetic mechanism by Peters (1985). The rates for the three reaction steps are related to the rates of the elementary reactions of the full reaction mechanism. The interaction of the pilot flame with the non-premixed flame and the resulting modifications to the structure and chemical kinetics of the flame are studied numerically for different values of the scalar dissipation rate tensor. The dissipation rate tensor represents the flame stretching along Z1, the main mixture fraction, and in the perpendicular direction, along Z2, the pilot mixture fraction. The computed flame temperature contours are plotted in the Z1-Z2 plane for fixed values of the dissipation rate along Z1 and Z2. These temperature contours show that the flame will become unstable when the dissipate rates along Z1 and Z2 increase, simultaneously, to the limiting value for complete flame extinction of 45 s(-1). However, the diffusion flame will extinguish for dissipate rates less than 20 1/s, if unpiloted. It is also noticed that the flame will remain stable if the dissipation rate along Z2 is increased to the limiting value, while the dissipation rate, along Z2, remains constant at a value less than 30 s(-1).
引用
收藏
页码:723 / 734
页数:12
相关论文
共 50 条
[21]   IMPACT OF COMBUSTION MODELS ON EMISSIONS PREDICTIONS FROM A PILOTED METHANE-AIR DIFFUSION FLAME [J].
Naikl, Chitralkumar V. ;
Elasrag, Hossam ;
Yadav, Rakesh ;
Validi, Ahad ;
Meeks, Ellen .
PROCEEDINGS OF THE ASME/JSME/KSME JOINT FLUIDS ENGINEERING CONFERENCE, 2019, VOL 3A, 2019,
[22]   Scalar length scales and spatial averaging effects in turbulent piloted methane/air jet flames [J].
Barlow, RS ;
Karpetis, AN .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2005, 30 :673-680
[23]   MODELING OF TURBULENT METHANE-AIR DIFFUSION FLAMES - THE LAMINAR-FLAMELET MODEL [J].
ROGG, B ;
BEHRENDT, F ;
WARNATZ, J .
BERICHTE DER BUNSEN-GESELLSCHAFT-PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 1986, 90 (11) :1005-1010
[24]   LES of confined methane-air diffusion flames using oscillating inflow conditions [J].
Düsing, M ;
Hauser, A ;
Sadiki, A ;
Janicka, J .
ENGINEERING TURBULENCE MODELLING AND EXPERIMENTS 5, 2002, :917-926
[25]   Soot formation and oxidation in oscillating methane-air diffusion flames at elevated pressure [J].
Hentschel, J ;
Suntz, R ;
Bockhorn, H .
APPLIED OPTICS, 2005, 44 (31) :6673-6681
[26]   Influence of Strouhal number on pulsating methane-air coflow jet diffusion flames [J].
Sanchez-Sanz, M. ;
Bennett, B. A. V. ;
Smooke, M. D. ;
Linan, A. .
COMBUSTION THEORY AND MODELLING, 2010, 14 (03) :453-478
[27]   Peclet correlation for stability of inverse diffusion flames in methane-air cross flows [J].
Clausing, EM ;
Senser, DW ;
Laurendeau, NM .
COMBUSTION AND FLAME, 1997, 110 (03) :405-408
[28]   Stabilization Heights in Lifted Methane-Air Jet Diffusion Flames Diluted with Nitrogen [J].
Donnerhack, Stefan ;
Peters, Norbert .
COMBUSTION SCIENCE AND TECHNOLOGY, 1984, 41 (1-2) :101-108
[29]   Direct comparison of PDF and scalar dissipation rates between LEM simulations and experiments for turbulent, premixed methane air flames [J].
Tsui, H. P. ;
Kamal, M. M. ;
Hochgreb, S. ;
Bushe, W. K. .
COMBUSTION AND FLAME, 2016, 165 :208-222
[30]   Investigation of NOx in piloted stabilized methane-air diffusion flames using finite-rate and infinitely-fast chemistry based combustion models [J].
Saini, Rohit ;
Prakash, Swetha ;
De, Ashoke ;
Yadav, Rakesh .
THERMAL SCIENCE AND ENGINEERING PROGRESS, 2018, 5 :144-157