63
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Comparative analysis of combustion dynamics using three reaction source models

, &
Pages 460-479 | Received 13 Sep 2020, Accepted 13 Dec 2020, Published online: 11 Jan 2021

References

  • Abdel-Gayed, R. G., and D. Bradley. 1981. “A Two-eddy Theory of Premixed Turbulent Flame Propagation, Philosophical Trans.” Royal Society London 301: 1–25.
  • Aluri, N. K., S. P. R. Muppala, and D. F. Large-Eddy. 2008. “Simulation of Lean Premixed Turbulent Flames of Three Different Combustion Configurations Using a Novel Reaction Closure.” Flow Turbulence and Combustion 80: pp. 207. doi:10.1007/s10494-007-9114-2.
  • Anthony, A. A. 1997. KIVA-3V: A Block-Structured KIVA Program for Engines with Vertical or Canted Valves. 87545, LA-13313-MS, UC-1412 July. Los Alamos, New Mexico:Los Alamos National Laboratory.
  • Borghi, R. 1988. “Turbulent Combustion Modelling.” Progress in Energy and Combustion Science 14 (4): 245–292. doi:10.1016/0360-1285(88)90015-9.
  • Bray, K. 1980. Turbulent Flows with Premixed Reactants, in Turbulent Reacting Flows, P. A. Libby and F. A. Williams, eds. 115–183. Berlin: Springer.
  • Bray, K. N. C., P. A. Libby, and J. B. Moss. 1984. “Flamelet Crossing Frequencies and Mean Reaction Rates in Premixed Turbulent Combustion.” Combustion Science and Technology 41: pp. 143–172. doi:10.1080/00102208408923827.
  • Cant, R. S., and K. N. C. Bray, “Strained Laminar Flamelet Calculations of Premixed Turbulent Combustion in a Closed Vessel.” In Twenty-Second Symposium (International) on Combustion, pp. 791–799, Combustion Institute, 1990.
  • Cha, C. M., G. Kosaly, and H. Pitsch. 2001. “Modeling Extinction and Reignition in Turbulent Non-premixed Combustion Using a Doubly-conditional Moment Closure Approach.” Physics of Fluids 13 (12): pp. 3824–3834. doi:10.1063/1.1415426.
  • Chase, M. W. NIST-JANAF Thermochemical Tables. Fourth. Monograph 9 (Part I and Part II) 1963. Vol. 1998.
  • Colin, O., F. Ducros, D. Veynante, and T. Poinsot. 2000. “A Thickened Flame Model for Large Eddy Simulations of Turbulent Premixed Combustion.” Physics of Fluids 12 (7): pp. 1843–1863. doi:10.1063/1.870436.
  • Dinkelacker, F., and S. Hölzler. 2000. “Investigation of Turbulent Flame Speed Closure Approaches for Premixed Flame Calculation.” Combustion Science and Technology 158: pp. 321–340. doi:10.1080/00102200008947339.
  • Fontanesi, S., A. d’Adamo, and C. J. Rutland. 2015. “Large-eddy Simulation Analysis of Spark Configuration Effect on Cycle-to-cycle Variability of Combustion and Knock.” International Journal of Engine Research 16 (3): pp. 403–418. doi:10.1177/1468087414566253.
  • Gicquel, O., N. Darabiha, and D. Thevenin. 2000. “Laminar Premixed Hydrogen/air Counterflow Flame Simulations Using Flame Prolongation of ILDM with Differential Diffusion.” Proceedings of the Combustion Institute 28 (2): pp. 1901–1908. doi:10.1016/S0082-0784(00)80594-9.
  • Göttgens, J., F. Mauss, and N. Peters. 1992. “Analytic Approximations of Burning Velocities and Flame Thicknesses of Lean Hydrogen, Methane, Ethylene, Ethane, Acetylene, and Propane Flames.” Symposium (International) on Combustion 24 (1): 129–135. doi:10.1016/S0082-0784(06)80020-2.
  • Gülder, Ö. L. 1991. “Turbulent Premixed Flame Propagation Models for Different Combustion Regimes.” Twenty-Third Symposium (International) on Combustion 23 (1): 743–750. doi:10.1016/S0082-0784(06)80325-5.
  • Heywood, J. B. 2018. Internal Combustion Engine Fundamentals. 10019. 2nd ed. New York, NY: McGraw-Hill Education.
  • Hirt, C. W., A. A. Amsden, and J. L. Cook. 1997. “An Arbitrary Lagrangian–Eulerian Computing Method for All Flow Speeds.” Journal of Computational Physics, Article No. CP975702 135: 203–216. doi:10.1006/jcph.1997.5702.
  • International Energy Agency. https://www.iea.org. ( accessed 2020), 2020.
  • Janicka, J., and A. Sadiki. 2005. “Large Eddy Simulation of Turbulent Combustion Systems.” Proceedings of Combustion Institute 30: pp. 537–547. doi:10.1016/j.proci.2004.08.279.
  • Jasak, H., and A. D. Gosman. 2000. “Automatic Resolution Control for the Finite Volume Method. Part 1: A-posteriori Error Estimates.” Numerical Heat Transfer, Part B 38 (3, September): 237–256. doi:10.1080/10407790050192753.
  • Jasak, H., and A. D. Gosman. 2001. “Residual Error Estimate for the Finite Volume Method, Int.” Journal of Numerical Methods and Fluids 39: 1–19.
  • Kobayashi, H., Y. Kawabata, and K. Maruta. 1998. “Experimental Study on General Correlation of Turbulent Burning Velocity at High Pressure.” Proceedings of the Combustion Institute 27: pp. 941–948. doi:10.1016/S0082-0784(98)80492-X.
  • Kolmogorov, A. N. 1941a. “The Local Structure of Turbulence in Incompressible Viscous Fluid for Very Large Reynolds Numbers.” C. R. Academy of Science URSS 30: pp. 301–305.
  • Kolmogorov, A. N. 1941b. “Dissipation of Energy in the Locally Isotropic Turbulence.” C. R. Academy of Science URSS 32: pp. 19–21.
  • Kolmogorov, A. N. 1962. “A Refinement of Previous Hypotheses Concerning the Local Structure of Turbulence in A Viscous Incompressible Fluid at High Reynolds Number.” Journal of Fluid Mechanics 13: pp. 82–85. doi:10.1017/S0022112062000518.
  • Law, C. K. 2006. “Propagation, Structure, and Limit Phenomena of Laminar Flames at Elevated Pressures.” Combustion Science and Technology 178 (1–3): 335–360. doi:10.1080/00102200500290690.
  • Masuya, G. 1986. “Influence of Laminar Flame Speed on Turbulent Premixed Combustion.” Combustion and Flame 64: pp. 353–367. doi:10.1016/0010-2180(86)90151-3.
  • Muppala, S. P. R., N. K. Aluri, F. Dinkelacker, and A. Leipertz. 2005. “Development of an Algebraic Reaction Rate Closure for the Numerical Calculation of Turbulent Premixed Methane, Ethylene, and Propane/air Flames for Pressures up to 1.0 MPa.” Combustion and Flame 140 (4): pp. pp. 257–266. doi:10.1016/j.combustflame.2004.11.005.
  • Muppala, S. P. R., M. Nakahara, N. K. Aluri, H. Kido, J. X. Wen, and M. V. Papalexandris. 2009. “Experimental and Analytical Investigation of the Turbulent Burning Velocity of Two-component Fuel Mixtures of Hydrogen, Methane and Propane.” International Journal of Hydrogen Energy 34: 9258–9265. doi:10.1016/j.ijhydene.2009.09.036.
  • Nieuwstadt, F. T. M., and J. P. Meeder. 1997. “New Tools in Turbulence Modelling.” Large Eddy Simulation of Air Pollution Dispersion: A Review. Les Editions de Physique pp. 264–280. Springer Verlag.
  • Peters, N. 1999. “The Turbulent Burning Velocity for Large-scale and Small-scale Turbulence.” Journal of Fluid Mechanics 384: 107–132. doi:10.1017/S0022112098004212.
  • Pitsch, H. 2006. “Large-eddy Simulation of Turbulent Combustion.” Annual Review of Fluid Mechanics 38: pp. 453–482. doi:10.1146/annurev.fluid.38.050304.092133.
  • Pitsch, H., and H. Duchamp de Lageneste. 2002. “Large-eddy Simulation of Premixed Turbulent Combustion Using a Level-set Approach.” Proceedings of Combustion Institute 29: 2001–2008. doi:10.1016/S1540-7489(02)80244-9.
  • Poinsot, T., and D. Veynante. Theoretical and Numerical Combustion. R. T. Edwards. Philadelphia, PA, USA. 2nd. 2005.
  • Poinsot, T., D. Veynante, and S. Candel. 1991. “Quenching Processes and Premixed Turbulent Combustion Diagrams.” Journal of Fluid Mechanics 228 (561).
  • Polifke, W., P. Flohr, and M. Brandt Modeling of In-homogeneously Premixed Combustion with an Extended TFC Model. ASME, Paper No. 2000-GT-0135, 2000.
  • Richardson, L. F. 1922. “Weather Prediction by Numerical Process.” Cambridge University Press.
  • Spalding, D. B. 1955. “Gas Turbines II: Some Fundamentals of Combustion, Butterworths Scientific Publications Ltd., 249 Pp., Illustrations. 40s.” doi:10.1017/S036839310012807X.
  • Spalding, D. B., Mixing and Chemical Reaction in Steady Confined Turbulent Flames., In: Thirteenth Symposium (International) on Combustion, pp. 649–657, Combustion Institute, Pittsburgh, PA, 1970.
  • Tabor, G., and H. G. Weller. 2004. “Large Eddy Simulation of Premixed Turbulent Combustion Using ?” Flame Surface Wrinkling Model, Turbulence and Combustion 72: pp. 1–28. doi:10.1023/B:APPL.0000014910.06345.fb.
  • Weller, H. G., The Development of a New Flame Area Combustion Model Using Conditional Averaging. Thermo-fluids Section Report TF 9307, Department of Mechanical Engineering, Imperial College of Science, Technology and Medicine, 1993.
  • Weller, H. G., C. J. Marooney, and A. D. Gosman. “A New Spectral Method for Calculation of the Time-Varying Area of A Laminar Flame in Homogeneous Turbulence.” In Twenty-Third Symposium (International) on Combustion, pp. 629–636, Combustion Institute, 1990.
  • Weller, H. G., G. Tabor, H. Jasak, and C. Fureby. 1998. “A Tensorial Approach to Computational Continuum Mechanics Using Object Orientated Techniques.” Computers in Physics 12 (6): 620–631. doi:10.1063/1.168744.
  • Weller, H. G., S. Usla, A. D. Gosman, R. R. Maly, R. Herweg, and B. Heel, “Prediction of Combustion in Homogeneous-Charge Spark-Ignition Engines.” In Twenty-Second Symposium COMODIA 94, pp. 163–169, Japan Society of Mechanical Engineers, Yokohama, Japan. 1994.
  • Williams, F. A. 1985a. Combustion Theory. 2727 Sand Hill Road Menlo Park, California 94025: Benjamin/Cummings Publishing Company. 1985.
  • Williams, F. A. 1986. “Asymptotic Methods in Turbulent Combustion.” AIAA Journal 24: pp. 867–875. doi:10.2514/3.9361.
  • World Energy Outlook, Fatih Birol, David Turk, Keisuke Sadamori and Claire Bouteille, International Energy Agency, https://www.iea.org, 2020.
  • Zimont, V. L. 1979. “Theory of Turbulent Combustion of a Homogeneous Fuel Mixture at High Reynolds Numbers.” Combustion Experimental and Shock Waves 15 (3): pp. 305–311. doi:10.1007/BF00785062.
  • Zimont, V. L., and A. N. Lipatnikov. 1995. “A Numerical Model of Premixed Turbulent Combustion of Gases.” Chemical Physics Reports 14 (7): pp. 993–1025.

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.