4.4 Article

Study of a Premixed Turbulent Counter-Flow Flame with a Large Eddy Simulation Method

期刊

FLOW TURBULENCE AND COMBUSTION
卷 106, 期 4, 页码 1379-1398

出版社

SPRINGER
DOI: 10.1007/s10494-020-00240-z

关键词

Flame stability; Stochastic fields method; Turbulent counter-flow flame; Large Eddy Simulation; Local extinction

资金

  1. Imperial College London
  2. China Scholarship Council (CSC)
  3. Engineering and Physical Sciences Research Council (EPSRC) through the UK Consortium on Turbulent Reacting Flow (UKCTRF)

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This study numerically investigates premixed turbulent counter-flow flames using Large Eddy Simulation, adopting a transported probability density function approach for sub-grid scale turbulence-chemistry interactions. The results successfully reproduce the velocity field and local extinction processes in the flame region, showing good agreement with measurements. The study highlights the capability of the LES-pdf method in analyzing premixed opposed jet turbulent flames.
The turbulent counter-flow flame (TCF) has proven to be a useful benchmark to study turbulence-chemistry interactions, however, the widely observed bulk flow fluctuations and their influence on the flame stability remain unclear. In the present work, premixed TCFs are studied numerically using a Large Eddy Simulation (LES) method. A transported probability density function (pdf) approach is adopted to simulate the sub-grid scale (sgs) turbulence-chemistry interactions. A solution to the joint sgs-pdf evolution equation for each of the relative scalars is obtained by the stochastic fields method. The chemistry is represented using a simplified chemical reaction mechanism containing 15 reaction steps and 19 species. This work compares results with two meshing strategies, with the domain inside nozzles included and excluded respectively. A conditional statistical approach is applied to filter out the large scale motions of the flame. With the use of digital turbulence, the velocity field in the flame region is well reproduced. The processes of local extinction and re-ignition are successfully captured and analysed together with the strain rate field, and local extinctions are found correlated to the turbulent structures in the reactant stream. The predicted probability of localised extinction is in good agreement with the measurements, and the influence of flame stoichiometry are also successfully reproduced. Overall, the current results serve to demonstrate the capability of the LES-pdf method in the study of the premixed opposed jet turbulent flames.

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