Downloads provided by UsageCounts
{"references": ["V. M. Reddy and S. Kumar, \"Development of high intensity low emission\ncombustor for achieving flameless combustion,\" Propulsion and Power\nResearch, Vol. 2, 2013, pp. 139\u2013147.", "C. Ghenai, \"Combustion of syngas fuel in gas turbine can combustor,\"\nAdvances in Mechanical Engineering, Vol. 1, 2010, pp. 1-13.", "P. S. Kumar and P. P. Rao, \"Design and analysis of gas turbine\ncombustion chamber,\" International Journal of Computational\nEngineering Research, Vol. 3, 2012, pp. 1-6.", "H. Pathan, K. Partel, and V. Tadvi, \"Numerical investigation of the\ncombustion of methane air mixture in gas turbine can-type combustion\nchamber,\" International Journal of Scientific & Engineering Research,\nVol. 3, No. 10, 2012, pp. 1-7.", "P. Koutmos and J. J. McGuirk, \"Isothermal flow in a gas turbine\ncombustor\u2013a benchmark experimental study,\" Experiments in Fluids, Vol.\n7, 1989, pp. 344-354.", "Y. A. Eldrainy, J. Jeffrie, and M. Jaafar, \"Prediction of the flow inside a\nMicro Gas Turbine Combustor,\" Journal of Mechanical, vol. 25, 2008, pp.\n50-63.", "J. A. Wunning, and J. G. Wunning, \"Flameless oxidation to reduce\nthermal NO-formation,\" Progress in Energy and Combustion Science,\nVol. 23, No. 1, 1997, pp. 81\u201394.", "B. E. Launder and D. B. Spalding, \"The numerical computation of\nturbulent flows,\" Computer Methods in Applied Mechanics and\nEngineering, Vol. 3, 1974, pp. 269-289.", "M. Y. Kim, \"Effect of swirl on gas-fired combustion behavior in a 3-D\nrectangular combustion chamber,\" World Academy of Science,\nEngineering and Technology, Vol. 64, 2012, pp. 939-944."]}
Combustion phenomenon will be accomplished effectively by the development of low emission combustor. One of the significant factors influencing the entire Combustion process is the mixing between a swirling angular jet (Primary Air) and the non-swirling inner jet (fuel). To study this fundamental flow, the chamber had to be designed in such a manner that the combustion process to sustain itself in a continuous manner and the temperature of the products is sufficiently below the maximum working temperature in the turbine. This study is used to develop the effective combustion with low unburned combustion products by adopting the concept of high swirl flow and motility of holes in the secondary chamber. The proper selection of a swirler is needed to reduce emission which can be concluded from the emission of Nox and CO2. The capture of CO2 is necessary to mitigate CO2 emissions from natural gas. Thus the suppression of unburned gases is a meaningful objective for the development of high performance combustor without affecting turbine blade temperature.
Emission, Can-type Combustion Chamber, Swirl Flow., Combustion, CFD, Motility of Holes
Emission, Can-type Combustion Chamber, Swirl Flow., Combustion, CFD, Motility of Holes
| selected citations These citations are derived from selected sources. This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | 0 | |
| popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network. | Average | |
| influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | Average | |
| impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Average |
| views | 2 | |
| downloads | 4 |

Views provided by UsageCounts
Downloads provided by UsageCounts