Effects of Fuel Lewis Number on Wall Heat Transfer During Oblique Flame-Wall Interaction of Premixed Flames Within Turbulent Boundary Layers

被引:12
作者
Ghai, Sanjeev Kr. [1 ]
Ahmed, Umair [1 ]
Chakraborty, Nilanjan [1 ]
机构
[1] Newcastle Univ, Sch Engn, Newcastle Upon Tyne NE1 7RU, England
基金
英国工程与自然科学研究理事会;
关键词
Wall heat flux; Quenching distance; Fuel Lewis number; Direct numerical simulations; DIRECT NUMERICAL-SIMULATION; SURFACE-DENSITY; EVOLUTION EQUATION; SPEED; FLUX;
D O I
10.1007/s10494-023-00418-1
中图分类号
O414.1 [热力学];
学科分类号
摘要
The influence of fuel Lewis number Le(F )on the statistical behaviour of wall heat flux and flame quenching distance has been analysed using direct numerical simulation (DNS) data for the turbulent V-shaped flame-wall interaction in a channel flow configuration corresponding to a friction velocity-based Reynolds number of 110 for fuel Lewis number, Le(F), ranging from 0.6 to 1.4. It has been found that the maximum wall heat flux magnitude in turbulent V-shaped flame-wall interaction increases with decreasing LeF but just the opposite trend was observed for 2D laminar V-shaped flame-wall interaction and 1D laminar head-on quenching cases. This behaviour has been explained in terms of the correlation of temperature and fuel reaction rate magnitude with local flame surface curvature for turbulent flames due to the thermo-diffusive effects induced by the non-unity Lewis number. The wall heat flux magnitude and wall shear stress magnitude are found to be negatively correlated for all cases considered here. Moreover, their mean variations in the stream wise direction are qualitatively different irrespective of Le(F), although the magnitudes of wall heat flux and wall shear stress increase with decreasing Le(F). Furthermore, the flame alignment relative to the wall also affects the wall heat flux and it has been found that local occurrences of head-on quenching can lead to higher magnitudes of wall heat flux magnitude. It has been found that Le(F) also affects the evolution of the flame quenching distance in the streamwise direction with the progress of flame quenching for different flame normal orientations with respect to the wall. This analysis shows that the effects of fuel Lewis number on flame orientation, correlations of reaction rate and temperature with local flame curvature and coherent flow structures within the turbulent boundary layer ultimately affect the wall heat transfer and flame quenching distance. Thus, the thermo-diffusive effects arising from the non-unity Lewis number need to be taken into account for accurate modelling of wall heat transfer during flame-wall interaction in turbulent boundary layers.
引用
收藏
页码:867 / 895
页数:29
相关论文
共 50 条
[1]   Influence of thermal wall boundary condition on scalar statistics during flame-wall interaction of premixed combustion in turbulent boundary layers [J].
Ahmed, Umair ;
Chakraborty, Nilanjan ;
Klein, Markus .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2021, 92
[2]   Scalar Gradient and Strain Rate Statistics in Oblique Premixed Flame-Wall Interaction Within Turbulent Channel Flows [J].
Ahmed, Umair ;
Chakraborty, Nilanjan ;
Klein, Markus .
FLOW TURBULENCE AND COMBUSTION, 2021, 106 (02) :701-732
[3]   Surface density function evolution and the influence of strain rates during turbulent boundary layer flashback of hydrogen-rich premixed combustion [J].
Ahmed, Umair ;
Pillai, Abhishek L. ;
Chakraborty, Nilanjan ;
Kurose, Ryoichi .
PHYSICS OF FLUIDS, 2020, 32 (05)
[4]   Turbulent length scales and budgets of Reynolds stress-transport for open-channel flows; friction Reynolds numbers (Reτ)=150, 400 and 1020 [J].
Ahmed, Umair ;
Apsley, David ;
Stallard, Timothy ;
Stansby, Peter ;
Afgan, Imran .
JOURNAL OF HYDRAULIC RESEARCH, 2021, 59 (01) :36-50
[5]   Multiscale analysis of head-on quenching premixed turbulent flames [J].
Ahmed, Umair ;
Nguyen Anh Khoa Doan ;
Lai, Jiawei ;
Klein, Markus ;
Chakraborty, Nilanjan ;
Swaminathan, Nedunchezhian .
PHYSICS OF FLUIDS, 2018, 30 (10)
[6]   Wall heat flux in turbulent premixed reacting flow [J].
Alshaalan, T ;
Rutland, CJ .
COMBUSTION SCIENCE AND TECHNOLOGY, 2002, 174 (01) :135-+
[7]  
Alshaalan TM, 1998, TWENTY-SEVENTH SYMPOSIUM (INTERNATIONAL) ON COMBUSTION, VOLS 1 AND 2, P793
[8]   Turbulence-flame interactions in lean premixed hydrogen: transition to the distributed burning regime [J].
Aspden, A. J. ;
Day, M. S. ;
Bell, J. B. .
JOURNAL OF FLUID MECHANICS, 2011, 680 :287-320
[9]   Premixed flame-wall interaction in a turbulent channel flow: budget for the flame surface density evolution equation and modelling [J].
Bruneaux, G ;
Poinsot, T ;
Ferziger, JH .
JOURNAL OF FLUID MECHANICS, 1997, 349 :191-219
[10]   Flame-wall interaction simulation in a turbulent channel flow [J].
Bruneaux, G ;
Akselvoll, K ;
Poinsot, T ;
Ferziger, JH .
COMBUSTION AND FLAME, 1996, 107 (1-2) :27-+