On the evolution of the scalar flux through a planar premixed turbulent flame brush

被引:0
作者
Mura, Arnaud [1 ]
Robin, Vincent [1 ]
Kha, Kim Q. N. [1 ]
Champion, Michel [1 ]
机构
[1] Univ Poitiers, ISAE ENSMA, CNRS, Inst Pprime,UPR 3346, Poitiers, France
关键词
Combustion; premixed flame; turbulence; turbulent transport; flamelet regime; leading edge; flame brush; COUNTER-GRADIENT DIFFUSION; THERMAL-EXPANSION; GENERATED TURBULENCE; BURNING VELOCITY; TRANSPORT; COMBUSTION; TRANSITION; MODEL; DISSIPATION; EQUATION;
D O I
10.1080/00102202.2022.2041615
中图分类号
O414.1 [热力学];
学科分类号
摘要
The thermal expansion induced by the exothermicity of chemical reactions taking place in a turbulent flame affects the flow dynamics so deeply that the velocity field can be imposed by chemistry rather than turbulence. Moreover, thermal expansion is known to be responsible for flame-generated turbulence (FGT) as well as non-gradient or counter-gradient diffusion (CGD) phenomena. In the present study, a specific description of the joint probability-density function (PDF) of the progress variable and velocity is introduced. The corresponding PDF accounts for the finite thickness of the local flame. On the basis of this theoretical framework, the evolution of the scalar fluxes is analyzed across a planar premixed turbulent flame brush described as a boundary layer. The corresponding analysis recovers a CGD region in the planar flame brush as well as a region controlled by gradient diffusion (GD) transport at its leading edge. This region, which corresponds to small values of the mean progress variable, is dominated by finite Damkohler number effects. Finally, the dependency of the normalized turbulent scalar flux to classical nondimensional numbers - i.e., the Bray, Karlovitz and Reynolds numbers - is put into evidence. The obtained results provide a relatively simple basis for the development of closure models for the turbulent flux of the progress variable.
引用
收藏
页码:3753 / 3784
页数:32
相关论文
共 77 条
[51]  
Pope S.B., 1984, Proc. Combust. Inst, V20, P403, DOI [10.1016/S0082-0784(85)80527-0, DOI 10.1016/S0082-0784(85)80527-0]
[52]   THE EVOLUTION OF SURFACES IN TURBULENCE [J].
POPE, SB .
INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 1988, 26 (05) :445-469
[53]   PDF METHODS FOR TURBULENT REACTIVE FLOWS [J].
POPE, SB .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 1985, 11 (02) :119-192
[54]   TURBULENT PREMIXED FLAMES [J].
POPE, SB .
ANNUAL REVIEW OF FLUID MECHANICS, 1987, 19 :237-270
[55]   A second-order model for turbulent reactive flows with variable equivalence ratiol [J].
Robin, Vincent ;
Champion, Michel ;
Mura, Arnaud .
COMBUSTION SCIENCE AND TECHNOLOGY, 2008, 180 (10-11) :1709-1734
[56]   A new analysis of the modeling of pressure fluctuations effects in premixed turbulent flames and its validation based on DNS data [J].
Robin, Vincent ;
Mura, Arnaud ;
Champion, Michel ;
Hasegawa, Tatsuya .
COMBUSTION SCIENCE AND TECHNOLOGY, 2008, 180 (05) :997-1010
[57]   Direct and indirect thermal expansion effects in turbulent premixed flames [J].
Robin, Vincent ;
Mura, Arnaud ;
Champion, Michel .
JOURNAL OF FLUID MECHANICS, 2011, 689 :149-182
[58]   MODELING THE EFFECTS OF THERMAL EXPANSION ON SCALAR TURBULENT FLUXES IN TURBULENT PREMIXED FLAMES [J].
Robin, Vincent ;
Mura, Arnaud ;
Champion, Michel ;
Hasegawa, Tatsuya .
COMBUSTION SCIENCE AND TECHNOLOGY, 2010, 182 (4-6) :449-464
[59]  
Rutland C.J., 1994, P SUMM PROGR
[60]   Analysis of the influence of cold front quenching on the turbulent burning velocity associated with an eddy-break-up model [J].
Sabel'nikov, VA ;
Corvellec, C ;
Bruel, P .
COMBUSTION AND FLAME, 1998, 113 (04) :492-497