Flame Structures and Emissions of Premixed Partially Cracked Ammonia/Air Swirl Flames

Waste-heat-assisted catalytic cracking offers a practical route to improve the reactivity of ammonia for gas turbine applications. This study experimentally examines the effects of cracking ratio on flame structure, stability, and nitrogen oxide emissions in a model gas turbine combustor. As the cracking ratio increases from 0 to 0.4, the lean blowout limit decreases from approximately [Formula: see text] to [Formula: see text], while the rich blowout limit increases from approximately [Formula: see text] over the bulk velocities of [Formula: see text], corresponding to an approximately 4–8-fold expansion of the stable operating window. However, this is accompanied by increased emissions, with the peak [Formula: see text] emission increasing from approximately [Formula: see text] at [Formula: see text] to above [Formula: see text] at [Formula: see text]. Moreover, [Formula: see text], [Formula: see text], and [Formula: see text] chemiluminescence intensities rise nonlinearly with cracking ratio, indicating enhanced formation of reactive intermediates and stronger coupling between oxidation and fuel-nitrogen conversion. OH-PLIF and NH-PLIF further show a transition from elongated, weakly anchored flames to compact, highly wrinkled structures. These results clarify the tradeoff between flame stabilization and emission control in partially cracked ammonia combustion.

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Publication Details

Journal
AIAA Journal
Published
2026-08-24
DOI
https://doi.org/10.2514/1.j067202
Primary Topic
Combustion and flame dynamics
Type
article
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article

Flame Structures and Emissions of Premixed Partially Cracked Ammonia/Air Swirl Flames

Huangwei Zhang, Shumeng Xie, Samir B. Rojas Chavez, Jinzhou Li et al.
AIAA Journal
Combustion and flame dynamics
article

Flame Structures and Emissions of Premixed Partially Cracked Ammonia/Air Swirl Flames

Huangwei Zhang, Shumeng Xie, Samir B. Rojas Chavez, Jinzhou Li, Jim Rogerson, Hao Hu, Peng Ma
article en

Abstract

Waste-heat-assisted catalytic cracking offers a practical route to improve the reactivity of ammonia for gas turbine applications. This study experimentally examines the effects of cracking ratio on flame structure, stability, and nitrogen oxide emissions in a model gas turbine combustor. As the cracking ratio increases from 0 to 0.4, the lean blowout limit decreases from approximately [Formula: see text] to [Formula: see text], while the rich blowout limit increases from approximately [Formula: see text] over the bulk velocities of [Formula: see text], corresponding to an approximately 4–8-fold expansion of the stable operating window. However, this is accompanied by increased emissions, with the peak [Formula: see text] emission increasing from approximately [Formula: see text] at [Formula: see text] to above [Formula: see text] at [Formula: see text]. Moreover, [Formula: see text], [Formula: see text], and [Formula: see text] chemiluminescence intensities rise nonlinearly with cracking ratio, indicating enhanced formation of reactive intermediates and stronger coupling between oxidation and fuel-nitrogen conversion. OH-PLIF and NH-PLIF further show a transition from elongated, weakly anchored flames to compact, highly wrinkled structures. These results clarify the tradeoff between flame stabilization and emission control in partially cracked ammonia combustion.

AIAA Journal
National University of Singapore (SG), Siemens Healthcare (United States) (US)
Openalex Percentile: Top 12%
Combustion and flame dynamics
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