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Original Articles

Validation of a Turbulent Flame Speed Model across Combustion Regimes

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Pages 284-308 | Received 27 May 2009, Accepted 16 Sep 2009, Published online: 03 Mar 2010

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (6)

Junichi Furukawa, Yasuko Yoshida & Forman A. Williams. (2016) Structures of Methane-Air and Propane-Air Turbulent Premixed Bunsen Flames. Combustion Science and Technology 188:9, pages 1538-1564.
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S. Ruan, T. D. Dunstan, N. Swaminathan & R. Balachandran. (2016) Computation of Forced Premixed Flames Dynamics. Combustion Science and Technology 188:7, pages 1115-1135.
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Andrei Nikolaevich Lipatnikov, Shinnosuke Nishiki & Tatsuya Hasegawa. (2015) DNS assessment of relation between mean reaction and scalar dissipation rates in the flamelet regime of premixed turbulent combustion. Combustion Theory and Modelling 19:3, pages 309-328.
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V.A. Sabelnikov & A.N. Lipatnikov. (2013) Transition from pulled to pushed premixed turbulent flames due to countergradient transport. Combustion Theory and Modelling 17:6, pages 1154-1175.
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I. Ahmed & N. Swaminathan. (2013) Simulation of Spherically Expanding Turbulent Premixed Flames. Combustion Science and Technology 185:10, pages 1509-1540.
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Articles from other publishers (47)

Seyed Morteza Mousavi & Andrei N. Lipatnikov. (2024) Are differential diffusion effects of importance when burning hydrogen under elevated pressures and temperatures?. International Journal of Hydrogen Energy 49, pages 1048-1058.
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Ankit D. Kumar, James C. Massey, Isaac Boxx & Nedunchezhian Swaminathan. (2023) Effects of Hydrogen Enrichment on Thermoacoustic and Helical Instabilities in Swirl Stabilised Partially Premixed Flames. Flow, Turbulence and Combustion.
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Osman Akın Kutlar, Hüseyin Emre Doğan, Abdurrahman Demirci & Hikmet Arslan. (2023) An Investigation of the Impact of Combustion Chamber Geometry on Turbulent Burning Speeds in a Thermodynamic Model. Journal of Energy Resources Technology 145:6.
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Sukruth Somappa, Vishal Acharya & Tim Lieuwen. (2022) Finite flame thickness effects on Kolmogorov-Petrovsky-Piskunov turbulent burning velocities. Physical Review E 106:5.
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Hsu Chew Lee, Peng Dai, Minping Wan & Andrei N. Lipatnikov. (2022) A numerical support of leading point concept. International Journal of Hydrogen Energy 47:55, pages 23444-23461.
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Shikhar Mohan & Moshe Matalon. (2022) Outwardly growing premixed flames in turbulent media. Combustion and Flame 239, pages 111816.
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V. Macián, F.J. Salvador, J. De la Morena & V. Pagano. (2021) Combustion analysis of a stratified pre-chamber ignition system by means of a zero-dimensional turbulence and flame speed model. Combustion and Flame 232, pages 111526.
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Shawn A. Reggeti, Allen Parker, C. Taber Wanstall, Ajay K. Agrawal & Joshua A. Bittle. (2021) Comparing Global Spray Combustion Characteristics and Local Shot-to-Shot Variations in a Reacting n -Heptane Spray . Journal of Engineering for Gas Turbines and Power 143:9.
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Jann Koch, Christian Schürch, Yuri M Wright & Konstantinos Boulouchos. (2020) Reactive computational fluid dynamics modelling of methane–hydrogen admixtures in internal combustion engines: Part I – RANS. International Journal of Engine Research 22:5, pages 1525-1539.
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Tejas Kulkarni, Romain Buttay, M. Houssem Kasbaoui, Antonio Attili & Fabrizio Bisetti. (2020) Reynolds number scaling of burning rates in spherical turbulent premixed flames. Journal of Fluid Mechanics 906.
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N. Swaminathan & N. Chakraborty. (2021) Scalar fluctuation and its dissipation in turbulent reacting flows. Physics of Fluids 33:1.
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Kherlen Jigjid, Chitoshi Tamaoki, Yuki Minamoto, Ryota Nakazawa, Nakamasa Inoue & Mamoru Tanahashi. (2021) Data driven analysis and prediction of MILD combustion mode. Combustion and Flame 223, pages 474-485.
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Konstantinos Bardis, Panagiotis Kyrtatos, Christos E. Frouzakis, Yuri M. Wright, George K. Giannakopoulos & Konstantinos Boulouchos. (2020) Reduction of RANS/LES combustion sub-models for quasi-dimensional spark ignition engine simulations and evaluation of the modelling assumptions with DNS. Combustion and Flame 220, pages 189-202.
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Guoqing Xu, Yuri Martin Wright, Michele Schiliro & Konstantinos Boulouchos. (2018) Characterization of combustion in a gas engine ignited using a small un-scavenged pre-chamber. International Journal of Engine Research 21:7, pages 1085-1106.
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Ehsan Abbasi-Atibeh & Jeffrey M. Bergthorson. (2019) The effects of differential diffusion in counter-flow premixed flames with dilution and hydrogen enrichment. Combustion and Flame 209, pages 337-352.
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Umair Ahmed, Abhishek L. Pillai, Nilanjan Chakraborty & Ryoichi Kurose. (2019) Statistical behavior of turbulent kinetic energy transport in boundary layer flashback of hydrogen-rich premixed combustion. Physical Review Fluids 4:10.
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Ehsan Abbasi-Atibeh, Sandeep Jella & Jeffrey M. Bergthorson. (2019) Fuel Variation Effects in Propagation and Stabilization of Turbulent Counter-Flow Premixed Flames. Journal of Engineering for Gas Turbines and Power 141:3.
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Zhenkan Wang, Bo Zhou, Senbin Yu, Christian Brackmann, Zhongshan Li, Mattias Richter, Marcus Aldén & Xue-Song Bai. (2019) Structure and burning velocity of turbulent premixed methane/air jet flames in thin-reaction zone and distributed reaction zone regimes. Proceedings of the Combustion Institute 37:2, pages 2537-2544.
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Ehsan Abbasi-Atibeh & Jeffrey M. Bergthorson. (2019) Differential diffusion effects in counter-flow premixed hydrogen-enriched methane and propane flames. Proceedings of the Combustion Institute 37:2, pages 2399-2406.
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Jonathan Sosa, Jessica Chambers, Kareem A. Ahmed, Alexei Poludnenko & Vadim N. Gamezo. (2019) Compressible turbulent flame speeds of highly turbulent standing flames. Proceedings of the Combustion Institute 37:3, pages 3495-3502.
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Shiyou Yang. Application of Two Sub-Models Relative to Chemical-Kinetics-Based Turbulent Pre-Mixed Combustion Modeling Approach on the Simulation of Burn Rate and Emissions of Spark Ignition Engines. Application of Two Sub-Models Relative to Chemical-Kinetics-Based Turbulent Pre-Mixed Combustion Modeling Approach on the Simulation of Burn Rate and Emissions of Spark Ignition Engines.
R.C. Aldredge. (2017) Flame propagation in multiscale transient periodic flow. Combustion and Flame 183, pages 166-180.
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Shiyou Yang, Eric Pomraning & Ming Jia. (2016) Simulations of gasoline engine combustion and emissions using a chemical-kinetics-based turbulent premixed combustion modeling approach. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 231:6, pages 743-765.
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D. Dovizio, A. Debbagh & C. B. Devaud. (2016) RANS Simulations of a Series of Turbulent V-Shaped Flames using Conditional Source-term Estimation. Flow, Turbulence and Combustion 96:4, pages 891-919.
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Shiyou Yang, Hemanth Kolla & Nedunchezhian Swaminathan. Application of a New Turbulent Flame Speed Combustion Model on Burn Rate Simulation of Spark Ignition Engines. Application of a New Turbulent Flame Speed Combustion Model on Burn Rate Simulation of Spark Ignition Engines.
Jann Koch, Guoqing Xu, Yuri M. Wright, Konstantinos Boulouchos & Michele Schiliro. (2016) Comparison and Sensitivity Analysis of Turbulent Flame Speed Closures in the RANS G-Equation Context for Two Distinct Engines. SAE International Journal of Engines 9:4, pages 2091-2106.
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Navin Fogla, Francesco Creta & Moshe Matalon. (2015) Effect of folds and pockets on the topology and propagation of premixed turbulent flames. Combustion and Flame 162:7, pages 2758-2777.
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Vladimir A. Sabelnikov & Andrei N. Lipatnikov. (2015) Transition from pulled to pushed fronts in premixed turbulent combustion: Theoretical and numerical study. Combustion and Flame 162:7, pages 2893-2903.
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Zhi Chen, Shaohong Ruan & Nedunchezhian Swaminathan. (2015) Simulation of turbulent lifted methane jet flames: Effects of air-dilution and transient flame propagation. Combustion and Flame 162:3, pages 703-716.
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Jaeseo Lee, Gwang G. Lee & Kang Y. Huh. (2014) Asymptotic expressions for turbulent burning velocity at the leading edge of a premixed flame brush and their validation by published measurement data. Physics of Fluids 26:12.
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J. Vancoillie, G. Sharpe, M. Lawes & S. Verhelst. (2014) The turbulent burning velocity of methanol–air mixtures. Fuel 130, pages 76-91.
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Swetaprovo Chaudhuri, Fujia Wu & Chung K. Law. (2013) Scaling of turbulent flame speed for expanding flames with Markstein diffusion considerations. Physical Review E 88:3.
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J. Vancoillie, J. Demuynck, J. Galle, S. Verhelst & J.A. van Oijen. (2012) A laminar burning velocity and flame thickness correlation for ethanol–air mixtures valid at spark-ignition engine conditions. Fuel 102, pages 460-469.
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T. D. Dunstan, N. Swaminathan & K. N. C. Bray. (2012) Influence of flame geometry on turbulent premixed flame propagation: a DNS investigation. Journal of Fluid Mechanics 709, pages 191-222.
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Andrei Lipatnikov. 2012. Fundamentals of Premixed Turbulent Combustion. Fundamentals of Premixed Turbulent Combustion 324 445 .
Pratap Sathiah, Ed Komen & Dirk Roekaerts. (2012) The role of CFD combustion modeling in hydrogen safety management—Part I: Validation based on small scale experiments. Nuclear Engineering and Design 248, pages 93-107.
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Malcolm Lawes, Matthew P. Ormsby, Chris G.W. Sheppard & Robert Woolley. (2012) The turbulent burning velocity of iso-octane/air mixtures. Combustion and Flame 159:5, pages 1949-1959.
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Simon Bjerkborn, Karin Frojd, Cathleen Perlman & Fabian Mauss. (2012) A Monte Carlo Based Turbulent Flame Propagation Model for Predictive SI In-Cylinder Engine Simulations Employing Detailed Chemistry for Accurate Knock Prediction. SAE International Journal of Engines 5:4, pages 1637-1647.
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Swetaprovo Chaudhuri, Fujia Wu, Delin Zhu & Chung K. Law. (2012) Flame Speed and Self-Similar Propagation of Expanding Turbulent Premixed Flames. Physical Review Letters 108:4.
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Y. Minamoto, N. Fukushima, M. Tanahashi, T. Miyauchi, T. D. Dunstan & N. Swaminathan. (2011) Effect of flow-geometry on turbulence-scalar interaction in premixed flames. Physics of Fluids 23:12.
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Ken Bray, Michel Champion, Paul A. Libby & N. Swaminathan. (2011) Scalar dissipation and mean reaction rates in premixed turbulent combustion. Combustion and Flame 158:10, pages 2017-2022.
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Thomas D. Dunstan, Nedunchezhian Swaminathan, Ken N. C. Bray & R. Stewart Cant. (2010) Geometrical Properties and Turbulent Flame Speed Measurements in Stationary Premixed V-flames Using Direct Numerical Simulation. Flow, Turbulence and Combustion 87:2-3, pages 237-259.
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N. SWAMINATHAN, G. XU, A. P. DOWLING & R. BALACHANDRAN. (2011) Heat release rate correlation and combustion noise in premixed flames. Journal of Fluid Mechanics 681, pages 80-115.
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Swetaprovo Chaudhuri, V’yacheslav Akkerman & Chung K. Law. (2011) Spectral formulation of turbulent flame speed with consideration of hydrodynamic instability. Physical Review E 84:2.
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V. L. Zimont & G. Pagnini. (2011) Lagrangian properties of turbulent diffusion with passive chemical reaction in the framework of the premixed combustion theory. Physics of Fluids 23:3.
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H. Kolla & N. Swaminathan. (2011) Influence of Turbulent Scalar Mixing Physics on Premixed Flame Propagation. Journal of Combustion 2011, pages 1-8.
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N Swaminathan, G Xu, A. P. Dowling & R Balachandran. (2010) Prediction of Sound Emission from Open Turbulent Premixed Flames. Prediction of Sound Emission from Open Turbulent Premixed Flames.

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