Direct numerical simulations of autoignition in turbulent two-phase flows

被引:71
作者
Schroll, P. [1 ]
Wandel, A. P. [1 ]
Cant, R. S. [1 ]
Mastorakos, E. [1 ]
机构
[1] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England
关键词
Autoignition; Spray; Turbulent; DNS; FUEL SPRAY; DROPLET; IGNITION; COMBUSTION; DNS;
D O I
10.1016/j.proci.2008.06.057
中图分类号
O414.1 [热力学];
学科分类号
摘要
Three-dimensional direct numerical simulations (DNS) were carried out to investigate the impact of evaporation of droplets oil the autoignition process under decaying turbulence. The droplets were taken as point sources and were tracked in a Lagrangian manner. Three cases with the same initial equivalence ratio but different initial droplet size were simulated and the focus was to examine the influence of the droplet evaporation process on the location of autoignition. It was found that all increase in the initial droplet size results in an increase in the autoignition time, that highest reaction rates always occur at a specific mixture fraction zeta(MR), as in purely gaseous flows, and that changes in the initial droplet size did not affect the value of zeta(MR). The conditional correlation coefficient between scalar dissipation rate and reaction rates was only mildly negative, contrary to the strongly negative values for purely gaseous autoigniting flows, possibly due to the continuous generation of mixture fraction by the droplet evaporation process that randomizes both the mixture fraction and the scalar dissipation fields. (C) 2009 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:2275 / 2282
页数:8
相关论文
共 50 条
[21]   DNS analysis of turbulent vaporizing two-phase flows, Part I: Topology of the velocity field [J].
Ramos, Marcos Martin Onofre ;
Zhao, Song ;
Bouali, Zakaria ;
Mura, Arnaud .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2022, 156
[22]   Validation of a model of dilute two-phase, gas-solid turbulent flows [J].
Fairweather, M ;
Hurn, JP .
European Symposium on Computer-Aided Process Engineering-15, 20A and 20B, 2005, 20a-20b :379-384
[23]   Direct numerical simulation of compressible turbulent flows [J].
Li, Xin-Liang ;
Fu, De-Xun ;
Ma, Yan-Wen ;
Liang, Xian .
ACTA MECHANICA SINICA, 2010, 26 (06) :795-806
[24]   A two-phase turbulent combustion model and its validation for spray flames [J].
Wang, Fang ;
Hu, Bin ;
Huang, Yong .
FUEL, 2013, 113 :280-286
[25]   Numerical modeling of two-phase flows in the presence of dynamic and thermal interactions [J].
Tulegenov, Kubaidolla K. ;
Kamalova, Gaukhar A. ;
Bekenova, Anargul S. ;
Diyarova, Lunara B. .
HEAT TRANSFER, 2023, 52 (07) :5089-5107
[26]   PDF modelling of autoignition in nonpremixed turbulent flows [J].
Lakshmisha, KN ;
Rogg, B ;
Bray, KNC .
COMBUSTION SCIENCE AND TECHNOLOGY, 1995, 105 (4-6) :229-243
[27]   PDF modelling of spray autoignition in high pressure turbulent flows [J].
Zhu, M ;
Bray, KNC ;
Rogg, B .
COMBUSTION SCIENCE AND TECHNOLOGY, 1996, 120 (1-6) :357-379
[28]   On the development and application of a droplet flamelet-generated manifold for use in two-phase turbulent combustion simulations [J].
Bojko, Brian T. ;
DesJardin, Paul E. .
COMBUSTION AND FLAME, 2017, 183 :50-65
[29]   A model for the effects of mixing on the autoignition of turbulent flows [J].
Mastorakos, E ;
DaCruz, AP ;
Baritaud, TA ;
Poinsot, TJ .
COMBUSTION SCIENCE AND TECHNOLOGY, 1997, 125 (1-6) :243-+
[30]   Direct Numerical Simulations of gas-liquid-solid three phase flows [J].
Baltussen, M. W. ;
Seelen, L. J. H. ;
Kuipers, J. A. M. ;
Deen, N. G. .
CHEMICAL ENGINEERING SCIENCE, 2013, 100 :293-299