Synergistic suppression of hydrogen-air explosions by propane/CO2 and functionalized zeolite powder/CO2

The high CO 2 concentrations required for suppressing confined hydrogen explosions severely limit its practical application. To address this, the synergistic suppression effects of C 3 H 8 /CO 2 and ZPU (zeolite/KH 2 PO 4 /urea)/CO 2 systems were evaluated in a 20 L spherical vessel across hydrogen-air equivalence ratios of ϕ = 0.4-1.6. The results show that 2.0% C 3 H 8 reduces the critical CO 2 concentration at ϕ = 1.0 from 42% to 8%. The maximum synergistic enhancement factor reaches 93%, with an apparent amplification factor of approximately 8.6. Sensitivity analysis suggests CH 3 -mediated radical recombination (R88) contributes to flame inhibition in stoichiometric and fuel-rich mixtures. The gas-solid ZPU/CO 2 system achieves a 65% maximum synergistic enhancement factor. Characteristic-time modeling suggests that CO 2 -induced flame deceleration may provide additional time for powder decomposition. The gas-gas scheme saves 17 g CO 2 per gram of C 3 H 8 , exhibiting Pareto dominance over the gas-solid scheme. Nevertheless, the gas-solid approach remains suitable for scenarios strictly prohibiting combustible components.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-29
DOI
https://doi.org/10.1016/j.ijhydene.2026.157870
Primary Topic
Combustion and Detonation Processes
Type
article
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Synergistic suppression of hydrogen-air explosions by propane/CO2 and functionalized zeolite powder/CO2

Jumeng Fan, Huahua Xiao, Qiangling Duan, Qijiao Wang et al.
International Journal of Hydrogen Energy
Combustion and Detonation Processes
article

Synergistic suppression of hydrogen-air explosions by propane/CO2 and functionalized zeolite powder/CO2

Jumeng Fan, Huahua Xiao, Qiangling Duan, Qijiao Wang, Yanbin Chen, Jinhua Sun, Xiaoyong Liu
article en

Abstract

The high CO 2 concentrations required for suppressing confined hydrogen explosions severely limit its practical application. To address this, the synergistic suppression effects of C 3 H 8 /CO 2 and ZPU (zeolite/KH 2 PO 4 /urea)/CO 2 systems were evaluated in a 20 L spherical vessel across hydrogen-air equivalence ratios of ϕ = 0.4-1.6. The results show that 2.0% C 3 H 8 reduces the critical CO 2 concentration at ϕ = 1.0 from 42% to 8%. The maximum synergistic enhancement factor reaches 93%, with an apparent amplification factor of approximately 8.6. Sensitivity analysis suggests CH 3 -mediated radical recombination (R88) contributes to flame inhibition in stoichiometric and fuel-rich mixtures. The gas-solid ZPU/CO 2 system achieves a 65% maximum synergistic enhancement factor. Characteristic-time modeling suggests that CO 2 -induced flame deceleration may provide additional time for powder decomposition. The gas-gas scheme saves 17 g CO 2 per gram of C 3 H 8 , exhibiting Pareto dominance over the gas-solid scheme. Nevertheless, the gas-solid approach remains suitable for scenarios strictly prohibiting combustible components.

International Journal of Hydrogen EnergyVol. 280
University of Science and Technology of China (CN), Hefei University (CN), State Key Laboratory of Fire Science
Openalex Percentile: Top 8%
Combustion and Detonation Processes
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Synergistic suppression of hydrogen-air explosions by propane/CO2 and functionalized zeolite powder/CO2 — Jumeng Fan, Huahua Xiao, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS