Year |
Citation |
Score |
2015 |
Chakraborty N, Cant RS. Effects of Turbulent Reynolds Number on Turbulent Scalar Flux Modeling in Premixed Flames Using Reynolds-Averaged Navier-Stokes Simulations Numerical Heat Transfer; Part a: Applications. 67: 1187-1207. DOI: 10.1080/10407782.2014.955375 |
0.334 |
|
2013 |
Chakraborty N, Cant RS. Turbulent Reynolds number dependence of flame surface density transport in the context of Reynolds averaged Navier-Stokes simulations Proceedings of the Combustion Institute. 34: 1347-1356. DOI: 10.1016/j.proci.2012.07.071 |
0.353 |
|
2012 |
Katragadda M, Chakraborty N, Cant RS. A priori assessment of algebraic flame surface density models in the context of large eddy simulation for nonunity lewis number flames in the thin reaction zones regime Journal of Combustion. 2012. DOI: 10.1155/2012/794671 |
0.349 |
|
2012 |
Katragadda M, Chakraborty N, Cant RS. Effects of turbulent reynolds number on the performance of algebraic flame surface density models for large eddy simulation in the thin reaction zones regime: A direct numerical simulation analysis Journal of Combustion. 2012. DOI: 10.1155/2012/353257 |
0.343 |
|
2011 |
Chakraborty N, Cant RS. Effects of Lewis number on flame surface density transport in turbulent premixed combustion Combustion and Flame. 158: 1768-1787. DOI: 10.1016/j.combustflame.2011.01.011 |
0.348 |
|
2011 |
Dunstan TD, Swaminathan N, Bray KNC, Cant RS. Geometrical properties and turbulent flame speed measurements in stationary premixed V-flames using direct numerical simulation Flow, Turbulence and Combustion. 87: 237-259. DOI: 10.1007/s10494-010-9284-1 |
0.336 |
|
2010 |
Neophytou A, Mastorakos E, Cant RS. DNS of spark ignition and edge flame propagation in turbulent droplet-laden mixing layers Combustion and Flame. 157: 1071-1086. DOI: 10.1016/J.Combustflame.2010.01.019 |
0.338 |
|
2008 |
Chakraborty N, Hawkes ER, Chen JH, Cant RS. The effects of strain rate and curvature on surface density function transport in turbulent premixed methane-air and hydrogen-air flames: A comparative study Combustion and Flame. 154: 259-280. DOI: 10.1016/J.Combustflame.2008.03.015 |
0.432 |
|
2007 |
Chakraborty N, Mastorakos E, Cant RS. Effects of turbulence on spark ignition in inhomogeneous mixtures: A direct numerical simulation (DNS) study Combustion Science and Technology. 179: 293-317. DOI: 10.1080/00102200600809555 |
0.353 |
|
2007 |
Chakraborty N, Cant RS. A priori analysis of the curvature and propagation terms of the flame surface density transport equation for large eddy simulation Physics of Fluids. 19. DOI: 10.1063/1.2772326 |
0.302 |
|
2006 |
Klein M, Chakraborty N, Jenkins KW, Cant RS. Effects of initial radius on the propagation of premixed flame kernels in a turbulent environment Physics of Fluids. 18. DOI: 10.1063/1.2196092 |
0.32 |
|
2006 |
Chakraborty N, Cant RS. Influence of Lewis number on strain rate effects in turbulent premixed flame propagation International Journal of Heat and Mass Transfer. 49: 2158-2172. DOI: 10.1016/j.ijheatmasstransfer.2005.11.025 |
0.337 |
|
2006 |
Armitage CA, Balachandran R, Mastorakos E, Cant RS. Investigation of the nonlinear response of turbulent premixed flames to imposed inlet velocity oscillations Combustion and Flame. 146: 419-436. DOI: 10.1016/J.Combustflame.2006.06.002 |
0.313 |
|
2005 |
Chakraborty N, Cant RS. Effects of strain rate and curvature on surface density function transport in turbulent premixed flames in the thin reaction zones regime Physics of Fluids. 17: 1-15. DOI: 10.1063/1.1923047 |
0.343 |
|
2002 |
Jenkins KW, Cant RS. Curvature effects on flame kernels in a turbulent environment Proceedings of the Combustion Institute. 29: 2023-2029. |
0.322 |
|
2002 |
Tullis S, Cant RS. Scalar transport modeling in large eddy simulation of turbulent premixed flames Proceedings of the Combustion Institute. 29: 2097-2104. |
0.313 |
|
2000 |
Hawkes ER, Cant RS. A flame surface density approach to large-eddy simulation of premixed turbulent combustion Symposium (International) On Combustion. 28: 51-58. |
0.447 |
|
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