Experimental and numerical investigation of ammonia addition on combustion characteristics and NO formation effects in ammonia/coal co-firing flames

燃烧 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) 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
出处
期刊:Combustion and Flame [Elsevier BV]
卷期号:287: 114880-114880
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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