Effects of fuel-air unmixedness on flame stability and emissions in rapidly mixed hydrogen-enriched swirling flames

The transition to hydrogen-enriched combustion is fundamentally constrained by the challenge of simultaneously ensuring safety, flame stability, and low NO x emissions. This is because hydrogen’s high burning velocity increases flashback susceptibility, while its high reactivity and diffusivity make combustion more sensitive to local fuel–air mixing variations, which can generate localized high-temperature regions and promote thermal NO formation. Rapidly mixed combustion offers a promising strategy for addressing these competing constraints by distributing the reaction zone and heat release. However, the effects of fuel–air unmixedness on pollutant formation and combustion stability in hydrogen-enriched rapidly mixed flames remain insufficiently understood. To fill this gap, this study experimentally and numerically investigates how fuel–air mixing quality influences flame stability and NO x formation in hydrogen-rich rapidly mixed flames. Flame structure, lean blow-off limits, and emissions (NO x , CO) are measured and complemented by chemical reactor network modeling with a Beta-PDF representation of fuel–air unmixedness (μ). The roles of equivalence ratio (Φ), residence time, and inlet temperature are analyzed to elucidate mixing-chemical interactions. Results show that rapidly mixed flames improve lean blow-off stability by maintaining distributed combustion through local fuel-rich regions under globally lean conditions, while reducing the intensity of localized hot spots observed in diffusion flames. NO x emissions increase nonlinearly with μ, exhibiting weak sensitivity at low Φ but becoming strongly pronounced at Φ ≥ 0.6 due to intensified coupling between mixture stratification and thermal NO formation. Chemical-mixing timescale analysis indicates that the sensitivity of NO x to μ increases as the system transitions into a chemistry-dominated regime, i.e., Damköhler number ( Da ) > 1. Under such conditions, mixture inhomogeneity can persist into the reaction zone, promoting localized high-temperature regions and consequently enhancing NO formation. This explains the greater sensitivity of hydrogen-rich flames to μ. Residence time and inlet temperature dominate NO x formation by controlling reaction exposure and thermal intensity, respectively, while Φ sets the instantaneous formation level. Unmixedness acts as a regime-dependent amplifier of thermal NO x formation, whose influence becomes significant beyond the Da ≈1 transition regime.

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Publication Details

Journal
Fuel
Published
2026-09-12
DOI
https://doi.org/10.1016/j.fuel.2026.141330
Primary Topic
Combustion and flame dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Effects of fuel-air unmixedness on flame stability and emissions in rapidly mixed hydrogen-enriched swirling flames

Dongxu Han, Zhonghui Tian, Yuanping Yang, Jinyang Sun et al.
Fuel
Combustion and flame dynamics
article

Effects of fuel-air unmixedness on flame stability and emissions in rapidly mixed hydrogen-enriched swirling flames

Dongxu Han, Zhonghui Tian, Yuanping Yang, Jinyang Sun, Chenkun Bai, Tong Si
article en

Abstract

The transition to hydrogen-enriched combustion is fundamentally constrained by the challenge of simultaneously ensuring safety, flame stability, and low NO x emissions. This is because hydrogen’s high burning velocity increases flashback susceptibility, while its high reactivity and diffusivity make combustion more sensitive to local fuel–air mixing variations, which can generate localized high-temperature regions and promote thermal NO formation. Rapidly mixed combustion offers a promising strategy for addressing these competing constraints by distributing the reaction zone and heat release. However, the effects of fuel–air unmixedness on pollutant formation and combustion stability in hydrogen-enriched rapidly mixed flames remain insufficiently understood. To fill this gap, this study experimentally and numerically investigates how fuel–air mixing quality influences flame stability and NO x formation in hydrogen-rich rapidly mixed flames. Flame structure, lean blow-off limits, and emissions (NO x , CO) are measured and complemented by chemical reactor network modeling with a Beta-PDF representation of fuel–air unmixedness (μ). The roles of equivalence ratio (Φ), residence time, and inlet temperature are analyzed to elucidate mixing-chemical interactions. Results show that rapidly mixed flames improve lean blow-off stability by maintaining distributed combustion through local fuel-rich regions under globally lean conditions, while reducing the intensity of localized hot spots observed in diffusion flames. NO x emissions increase nonlinearly with μ, exhibiting weak sensitivity at low Φ but becoming strongly pronounced at Φ ≥ 0.6 due to intensified coupling between mixture stratification and thermal NO formation. Chemical-mixing timescale analysis indicates that the sensitivity of NO x to μ increases as the system transitions into a chemistry-dominated regime, i.e., Damköhler number ( Da ) > 1. Under such conditions, mixture inhomogeneity can persist into the reaction zone, promoting localized high-temperature regions and consequently enhancing NO formation. This explains the greater sensitivity of hydrogen-rich flames to μ. Residence time and inlet temperature dominate NO x formation by controlling reaction exposure and thermal intensity, respectively, while Φ sets the instantaneous formation level. Unmixedness acts as a regime-dependent amplifier of thermal NO x formation, whose influence becomes significant beyond the Da ≈1 transition regime.

FuelVol. 430
Beijing Institute of Petrochemical Technology (CN), RE Hydrogen (United Kingdom) (GB), Tsinghua University (CN)
Ministry of Science and Technology of the People's Republic of China, Beijing Municipal Education Commission
Affordable and clean energy
Openalex Percentile: Top 13%
Combustion and flame dynamics
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