Effect of inlet rotation angle on lean ignition and blowout limits of an integrated afterburner

This study investigates the effects of inlet rotation angle on the lean ignition and blowout characteristics of an integrated afterburner under high-temperature rotating inflow conditions. Ignition and blowout experiments are conducted in an integrated afterburner with a single strut-cavity structure. The lean ignition and blowout fuel–air ratios are measured at strut trailing-edge Mach numbers ranging from 0.20 to 0.35 and rotation angles from 0° to 15°. Numerical simulations are also performed to analyze the effects of inlet rotation angle on the flow field structure, fuel atomization and mixing, and combustion characteristics. The results show that: 1) as the inlet rotation angle increases, the lean ignition and blowout fuel–air ratios follow a nonmonotonic trend, initially decreasing and then increasing, with optimal performance occurring at a rotation angle of 5°; 2) a small rotation angle enhances flame retention within the recirculation zone, promotes secondary fuel atomization and mixing, and improves local combustion conditions; 3) a larger rotation angle weakens the recirculation zone downstream of the strut, shifts the shear layer outward, and increases local heat dissipation, raising the risk of flame blowout. This study provides a valuable reference for optimizing combustion organization and designing stable lean-blowout combustion in integrated afterburners.

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Publication Details

Journal
Applied Thermal Engineering
Published
2026-09-13
DOI
https://doi.org/10.1016/j.applthermaleng.2026.133242
Primary Topic
Combustion and flame dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Effect of inlet rotation angle on lean ignition and blowout limits of an integrated afterburner

Yingwen Yan, Di Dong, Qirun Li, Weidou Sun et al.
Applied Thermal Engineering
Combustion and flame dynamics
article

Effect of inlet rotation angle on lean ignition and blowout limits of an integrated afterburner

Yingwen Yan, Di Dong, Qirun Li, Weidou Sun, Wei Li
article en

Abstract

This study investigates the effects of inlet rotation angle on the lean ignition and blowout characteristics of an integrated afterburner under high-temperature rotating inflow conditions. Ignition and blowout experiments are conducted in an integrated afterburner with a single strut-cavity structure. The lean ignition and blowout fuel–air ratios are measured at strut trailing-edge Mach numbers ranging from 0.20 to 0.35 and rotation angles from 0° to 15°. Numerical simulations are also performed to analyze the effects of inlet rotation angle on the flow field structure, fuel atomization and mixing, and combustion characteristics. The results show that: 1) as the inlet rotation angle increases, the lean ignition and blowout fuel–air ratios follow a nonmonotonic trend, initially decreasing and then increasing, with optimal performance occurring at a rotation angle of 5°; 2) a small rotation angle enhances flame retention within the recirculation zone, promotes secondary fuel atomization and mixing, and improves local combustion conditions; 3) a larger rotation angle weakens the recirculation zone downstream of the strut, shifts the shear layer outward, and increases local heat dissipation, raising the risk of flame blowout. This study provides a valuable reference for optimizing combustion organization and designing stable lean-blowout combustion in integrated afterburners.

Applied Thermal EngineeringVol. 306
Nanjing University of Aeronautics and Astronautics (CN)
National Natural Science Foundation of China, National Major Science and Technology Projects of China
Affordable and clean energy
Openalex Percentile: Top 13%
Combustion and flame dynamics
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