H₂/CO 예혼합화염에서 NO 배출에 대한 압력 영향
The purpose of the present study is to better understand the pressure effect on NO formation in H2/CO/air premixed flames. A recently developed detailed chemical kinetic model by merging AramcoMech 3.0 and a comprehensive nitrogen chemistry is first compared against experimental data of H2/CO mixtur...
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Published in | 한국연소학회지 Vol. 24; no. 3; pp. 26 - 32 |
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Main Author | |
Format | Journal Article |
Language | Korean |
Published |
한국연소학회
01.09.2019
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Subjects | |
Online Access | Get full text |
ISSN | 1226-0959 2466-2089 |
DOI | 10.15231/jksc.2019.24.3.026 |
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Abstract | The purpose of the present study is to better understand the pressure effect on NO formation in H2/CO/air premixed flames. A recently developed detailed chemical kinetic model by merging AramcoMech 3.0 and a comprehensive nitrogen chemistry is first compared against experimental data of H2/CO mixtures including NO formation in premixed flames. Freely propagating H2/CO/air premixed flames are then simulated over a pressure range 1-20 atm and temperatures of 1886 and 1986K. NO formation via N2O becomes important between reaction zone and postflame region with increasing pressure, but NO concentrations in the reaction zone is not sensitive to increasing pressure. Thermal NO production pathways lead to the total NO formation in the postflame zone and the total NO formation rate increases with increasing pressure. KCI Citation Count: 2 |
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AbstractList | The purpose of the present study is to better understand the pressure effect on NO formation in H2/CO/air premixed flames. A recently developed detailed chemical kinetic model by merging AramcoMech 3.0 and a comprehensive nitrogen chemistry is first compared against experimental data of H2/CO mixtures including NO formation in premixed flames. Freely propagating H2/CO/air premixed flames are then simulated over a pressure range 1-20 atm and temperatures of 1886 and 1986K. NO formation via N2O becomes important between reaction zone and postflame region with increasing pressure, but NO concentrations in the reaction zone is not sensitive to increasing pressure. Thermal NO production pathways lead to the total NO formation in the postflame zone and the total NO formation rate increases with increasing pressure. KCI Citation Count: 2 |
Author | 박성우(Sungwoo Park) |
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Keywords | H₂/CO Premixed flame Gas turbine NOx Detailed chemical kinetic model |
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Title | H₂/CO 예혼합화염에서 NO 배출에 대한 압력 영향 |
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