Physical study of radiation effects on the boundary layer structure in a turbulent channel flow

被引:21
作者
Zhang, Y. F.
Vicquelin, R. [1 ]
Gicquel, O.
Taine, J.
机构
[1] Ecole Cent Paris, F-92295 Chatenay Malabry, France
关键词
DNS; Turbulence; Gas radiation; Monte-Carlo; Channel flow; Temperature; Wall-law; DIRECT NUMERICAL-SIMULATION; NARROW-BAND MODEL; HEAT-TRANSFER; TEMPERATURE; COMBUSTION; WALL; PROFILES; DNS;
D O I
10.1016/j.ijheatmasstransfer.2013.02.041
中图分类号
O414.1 [热力学];
学科分类号
摘要
A complete numerical coupling between radiation and turbulent convection in a channel gas flow has been performed for different temperature, optical thickness (pressure) and wall emissivity conditions. In this model, radiation is treated from the CK approach and a Monte Carlo transfer method; the flow by a Direct Numerical Simulation. Both the effects of turbulence on radiation fields and of radiation on turbulent fields are accounted for. Gas-gas and gas-wall radiation interactions generate antagonist effects on the temperature and flux fields. The first one tends to increase wall conductive flux while the second one to decrease it. Consequently, the structure of the temperature field and the wall conductive flux often strongly differ from results without radiation. Classical wall log-laws for temperature are then strongly modified by the global radiation effects. Many conditions encountered in applications are discussed in the paper. The observed modifications depend on all the set of conditions (temperature level, wall emissivity, pressure, Reynolds number), i.e. on the relative magnitudes of radiation gas-gas and gas-wall phenomena and of global radiation flux and conductive flux without radiation. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:654 / 666
页数:13
相关论文
共 43 条
[1]   Unsteady coupling of Navier-Stokes and radiative heat transfer solvers applied to an anisothermal multicomponent turbulent channel flow [J].
Amaya, J. ;
Cabrit, O. ;
Poitou, D. ;
Cuenot, B. ;
El Hafi, M. .
JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2010, 111 (02) :295-301
[2]   Scalar profiles and NO formation in laminar opposed-flow partially premixed methane/air flames [J].
Barlow, RS ;
Karpetis, AN ;
Frank, JH ;
Chen, JY .
COMBUSTION AND FLAME, 2001, 127 (03) :2102-2118
[3]   Radiation and velocity fields induced by localized temperature fluctuations [J].
Baum, HR ;
Mell, WE .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2000, 28 (28) :473-479
[4]  
BURNS SP, 1999, SAND993190 SAND NAT
[5]   Direct simulations for wall modeling of multicomponent reacting compressible turbulent flows [J].
Cabrit, Olivier ;
Nicoud, Franck .
PHYSICS OF FLUIDS, 2009, 21 (05)
[6]   Numerical simulation of the interaction between turbulence and radiation in reactive flows [J].
Coelho, P. J. .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2007, 33 (04) :311-383
[7]  
Coelho PJ, 2010, PROCEEDINGS OF THE ASME INTERNATIONAL HEAT TRANSFER CONFERENCE - 2010, VOL 8, P251
[8]   Detailed numerical simulation of radiative transfer in a nonluminous turbulent jet diffusion flame [J].
Coelho, PJ .
COMBUSTION AND FLAME, 2004, 136 (04) :481-492
[9]   A numerical study of turbulent supersonic isothermal-wall channel flow [J].
Coleman, GN ;
Kim, J ;
Moser, RD .
JOURNAL OF FLUID MECHANICS, 1995, 305 :159-183
[10]   Analysis of the interaction between turbulent combustion and thermal radiation using unsteady coupled LES/DOM simulations [J].
Damien, Poitou ;
Jorge, Amaya ;
Mouna, El Hafi ;
Benedicte, Cuenot .
COMBUSTION AND FLAME, 2012, 159 (04) :1605-1618