燃烧
氨
烟气
化学
摩尔分数
点火系统
绝热火焰温度
火焰结构
分析化学(期刊)
煤
氮气
化学发光
无机化学
自燃温度
煤粉锅炉
化学工程
氮氧化物
火焰前沿
材料科学
分数(化学)
煤燃烧产物
一氧化碳
反应机理
氧气
预混火焰
作者
Yang Liu,Yan Gong,Qinghua Guo,Junhan Liu,Guangsuo Yu
标识
DOI:10.1016/j.combustflame.2026.114880
摘要
Ammonia, as a carbon-free fuel, offers a promising pathway for achieving emission reduction through co-combustion with pulverized coal. However, the effect of ammonia addition on coal combustion and the intrinsic mechanisms requires further investigation. In this study, an optical diagnostic platform comprising a two-stage flat flame burner, high-speed imaging system and fiber-optic spectroscopy was employed to investigate the combustion characteristics of NH 3 /coal flames at low ammonia blending ratios. CH ⁎ chemiluminescence was utilized to characterize the flame structure and the ignition process. In addition, numerical simulations integrating global mechanisms for coal and ammonia pyrolysis/combustion were conducted to analyze flue gas composition and NO generation. The results indicated that flame height and fuel-rich zone increased significantly with ammonia blending ratios. Coal ignition delay time and the time to the peak intensity exhibit nearly linear growth. Total CO and CO 2 emissions decreased gradually with increasing ammonia concentration, while local CO peak mole fraction increased. It was attributed to the suppression of the critical CO oxidation pathway (CO + OH→CO 2 + H) due to O₂ and OH radical consumption by ammonia. As ammonia blending ratio rises, NO mole concentration increased substantially and coal-N contributed significantly less to NO formation than NH 3 -N. The distribution of the NO core zone was governed by the oxidation reaction R10(NH 3 + O 2 →NO + H 2 O + 0.5H 2 ) and the reduction reaction R11(NH 3 + NO→N 2 + H 2 O + 0.5H 2 ).
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