A scaling law for the recirculation zone length behind a bluff body in reacting flows
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Publication:5231461
DOI10.1017/jfm.2019.475zbMath1421.76263OpenAlexW2963921417MaRDI QIDQ5231461
Ivan Langella, James C. Massey, Nedunchezhian Swaminathan
Publication date: 27 August 2019
Published in: Journal of Fluid Mechanics (Search for Journal in Brave)
Full work available at URL: https://www.repository.cam.ac.uk/handle/1810/293650
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- Turbulent combustion modeling. Advances, new trends and perspectives.
- Geometrical properties and turbulent flame speed measurements in stationary premixed V-flames using direct numerical simulation
- Turbulent reacting flows. With contributions by R. W. Bilger, K. N. C. Bray, E. E. O'Brien, C. R. Ferguson, P. A. Libby, A. M. Mellor, F. A. Williams
- Modelling of turbulent reacting flows past a bluff body: Assessment of accuracy and efficiency
- A digital filter based generation of inflow data for spatially developing direct numerical or large eddy simulations.
- Computational Methods for Fluid Dynamics
- Heat release rate correlation and combustion noise in premixed flames
- ENHANCEMENTS OF THE SIMPLE METHOD FOR PREDICTING INCOMPRESSIBLE FLUID FLOWS
- A dynamic subgrid-scale eddy viscosity model
- Turbulent Combustion
- Turbulent Flows
- Large eddy simulation of reacting flows applied to bluff body stabilized flames
- Modelling of turbulent lifted jet flames using flamelets:a prioriassessment anda posteriorivalidation
- Assessment of dynamic closure for premixed combustion large eddy simulation
- Unstrained and strained flamelets for LES of premixed combustion
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