Publication Cover
Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 70, 2016 - Issue 3
181
Views
4
CrossRef citations to date
0
Altmetric
Original Articles

Large eddy simulation of methane/air lifted flame with hot co-flow

, &
Pages 282-292 | Received 22 Oct 2015, Accepted 24 Feb 2016, Published online: 13 Jul 2016

References

  • H. Pitsch and H. Steiner, Large Eddy Simulation of a Turbulent Piloted Methane/Air Diffusion Flame (Sandia Flame D), Phys. Fluids, vol. 12, pp. 2541–2554, 2000.
  • N. Chakraborty and R. S. Cant, Statistical Behavior and Modeling of the flame Normal Vector in Turbulent Premixed Flames, Numer. Heat Tr. A-Appl., vol. 50, pp. 623–643, 2006.
  • A. C. Y. Yuen, G. H. Yeoh, V. Timchenko, and T. Barber, LES and Multi-Step Chemical Reaction in Compartment Fires, Numer. Heat Tr. A-Appl., vol. 68, pp. 711–736, 2015.
  • P. Moin and S. V. Apte, Large Eddy Simulation of Realistic Gas Turbine Combustors, AIAA J., vol. 44, pp. 698–708, 2006.
  • W. W. Kim, S. Menon, and H. C. Mongia, Large Eddy Simulation of a Gas Turbine Combustor Flow, Combust. Sci. Technol., vol. 143, pp. 25–62, 1999.
  • R. Cabra, J. Y. Chen, R. W. Dibble, A. N. Karpetis, and R. S. Barlow, Lifted Methane-Air Jet Flames in a Vitiated Coflow, Combust. Flame, vol. 143, pp. 491–506, 2005.
  • C. Han, P. Zhang, T. H. Ye, and Y. L. Chen, Numerical Study of Methane/Air Jet Flame in Vitiated Co-Flow Using Tabulated Detailed Chemistry, Sci. China Technol. Sc., vol. 57, pp. 1750–1760, 2014.
  • R. Kulkarni, M. Zellhuber, and W. Polifke, LES Based Investigation of Autoignition in Turbulent Co-Flow Configurations, Combust. Theor. Model., vol. 17, pp. 224–259, 2013.
  • M. Ihme and Y. C. See, Prediction of Autoignition in a Lifted Methane/Air Flame Using an Unsteady Flamelet/Progress Variable Model, Combust. Flame, vol. 157, pp. 1850–1862, 2010.
  • P. Domingo, L. Vervisch, and D. Veynante, Large-Eddy Simulation Of A Lifted Methane Jet Flame in a Vitiated Coflow, Combust. Flame, vol. 152, pp. 415–432, 2008.
  • C. Duwig and M. J. Dunn, Large Eddy Simulation of a Premixed Jet Flame Stabilized by a Vitiated Co-Flow: Evaluation of Auto-Ignition Tabulated Chemistry, Combust. Flame, vol. 160, pp. 2879–2895, 2013.
  • D. G. Norton and D. G. Vlachos, Combustion Characteristics and Flame Stability at the Microscale: A CFD Study of Premixed Methane/Air Mixtures, Chem. Eng. Sci., vol. 58, pp. 4871–4882, 2003.
  • C. K. Westbrook and F. L. Dryer, Simplified Reaction Mechanisms for the Oxidation of Hydrocarbon Fuel in Flames, Combust. Sci. Technol., vol. 27, pp. 31–43, 1981.
  • L. X. Zhou, L. Qiao, X. L. Chen, and J. Zhang, A USM Turbulence-Chemistry Model for Simulating NOx Formation in Turbulent Combustion, Fuel, vol. 81, pp. 1703–1709, 2002.
  • F. Wang, L. Zhou, and C. Xu, Large-Eddy Simulation of Correlation Moments in Turbulent Combustion and Validation of the RANS-SOM Combustion Model, Fuel, vol. 85, pp. 1242–1247, 2006.
  • L. Y. Hu, L. X. Zhou, and Y. H. Luo, Large Eddy Simulation of the Sydney Swirling Nonpremixed Flame and Validation of Several Subgrid-Scale Models, Numer. Heat Tr. B-Fund, vol. 53, pp. 39–58, 2008.
  • K. Li and L. X. Zhou, Studies of the Effect of Spray Inlet Conditions on the Flow and Flame Structures of Ethanol-Spray Combustion by Large-Eddy Simulation, Numer. Heat Tr. A-Appl., vol. 62, pp. 44–59, 2012.
  • C. J. Sui, L. X. Zhou, Y. Lin B, and W. J. Kong, Algebraic Second-Order Moment Model for Simulation of Turbulent Non-Premixed Combustion, CIESC J., vol. 65, pp. 415–421, 2014.
  • H. Ying, H. G. Sung, S. Y. Haieh, and V. Yang, Large-Eddy Simulation of Combustion Dynamics of Lean-Premixed Swirl-Stabilized Combustor, J. Propul. Power, vol. 19, pp. 782–794, 2003.
  • C. J. Sui, L. X. Zhou, Y. Lin B, F. Yang, and W. J. Kong, Algebraic Second Order Moment Model in Large Eddy Simulation of Non-premixed Combustion, J. Eng. Thermophys., vol. 35, pp. 1424–1428, 2014.
  • E. Fernandez Tarrazo, A. L. Sanchez, A. Linan, and F. A. Williams, A Simple One-Step Chemistry Model for Partially Premixed Hydrocarbon Combustion, Combust. Flame, vol. 147, pp. 32–38, 2006.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.