A hybrid LES (Large Eddy Simulation)/assumed sub-grid PDF (Probability Density Function) model for supersonic turbulent combustion
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作者:
HongBo Wang
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机构:National University of Defense Technology,College of Aerospace and Material Engineering
HongBo Wang
Ning Qin
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机构:National University of Defense Technology,College of Aerospace and Material Engineering
Ning Qin
MingBo Sun
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机构:National University of Defense Technology,College of Aerospace and Material Engineering
MingBo Sun
HaiYan Wu
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机构:National University of Defense Technology,College of Aerospace and Material Engineering
HaiYan Wu
ZhenGuo Wang
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机构:National University of Defense Technology,College of Aerospace and Material Engineering
ZhenGuo Wang
机构:
[1] National University of Defense Technology,College of Aerospace and Material Engineering
[2] University of Sheffield,Department of Mechanical Engineering
来源:
Science China Technological Sciences
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2011年
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54卷
关键词:
LES (Large Eddy Simulation);
assumed PDF (Probability Density Function);
supersonic;
turbulent combustion;
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摘要:
A hybrid LES (Large Eddy Simulation)/assumed sub-grid PDF (Probability Density Function) closure model has been developed for supersonic turbulent combustion. Scalar transport equations for all species in a given chemical kinetic mechanism were solved, which are necessary in the supersonic combustion where the non-equilibrium chemistry is essentially involved. The clipped Gaussian PDF of temperature and multivariate β PDF of composition were used to close the sub-grid chemical sources that appear in the conservation equations. The sub-grid variances of temperature and composition were constructed based on scale similarity approach. A semi-implicit approach based on the PDF model was proposed to tackle the resulting numerical stiffness associated with finite rate chemistry. The model was applied to simulate a supersonic, coaxial H2-air burner, where both the mean and rms (root mean square) results were compared with the experimental data. In general, good agreements were achieved, which indicated that the present sub-grid PDF method could work well in simulating supersonic turbulent combustion. Moreover, the calculation showed that the sub-grid fluctuations of temperature and major species in the combustion region were of the order of 10%–20% of their rms, while the sub-grid fluctuation of hydroxyl might be as high as 40%–50% of its rms.
WANG HongBoQIN NingSUN MingBoWU HaiYan WANG ZhenGuo College of Aerospace and Material EngineeringNational University of Defense TechnologyChangsha China Department of Mechanical EngineeringUniversity of SheffieldSheffieldS JDUK
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WANG HongBoQIN NingSUN MingBoWU HaiYan WANG ZhenGuo College of Aerospace and Material EngineeringNational University of Defense TechnologyChangsha China Department of Mechanical EngineeringUniversity of SheffieldSheffieldS JDUK
机构:
Chair of Fluid Dynamics, Institute for Combustion and Gasdynamics (IVG), University of Duisburg-Essen, Duisburg, GermanyChair of Fluid Dynamics, Institute for Combustion and Gasdynamics (IVG), University of Duisburg-Essen, Duisburg, Germany
Inanc, Eray
Kempf, Andreas M.
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机构:
Chair of Fluid Dynamics, Institute for Combustion and Gasdynamics (IVG), University of Duisburg-Essen, Duisburg, GermanyChair of Fluid Dynamics, Institute for Combustion and Gasdynamics (IVG), University of Duisburg-Essen, Duisburg, Germany
Kempf, Andreas M.
Chakraborty, Nilanjan
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机构:
School of Engineering, Newcastle University, Newcastle-Upon-Tyne, United KingdomChair of Fluid Dynamics, Institute for Combustion and Gasdynamics (IVG), University of Duisburg-Essen, Duisburg, Germany
机构:
Siemens Ind Turbomachinery Ltd, Waterside S LN5 7FD, Lincoln, EnglandSiemens Ind Turbomachinery Ltd, Waterside S LN5 7FD, Lincoln, England
Bulat, G.
Jones, W. P.
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机构:
Univ London Imperial Coll Sci Technol & Med, Dept Mech Engn, London SW7 2AZ, EnglandSiemens Ind Turbomachinery Ltd, Waterside S LN5 7FD, Lincoln, England
Jones, W. P.
Marquis, A. J.
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机构:
Univ London Imperial Coll Sci Technol & Med, Dept Mech Engn, London SW7 2AZ, EnglandSiemens Ind Turbomachinery Ltd, Waterside S LN5 7FD, Lincoln, England