Unlocking high energy release: Tailored fabrication and combustion mechanisms of spherical AlB alloy fuels

Metal or nonmetal additives with high-energy-release characteristics are critical energetic materials, such as high-energy solid propellants. This study proposes a prepressing–smelting–ultrasonic atomization technique to fabricate spherical Al B alloy fuel. The Al B alloy fuel exhibits a uniform particle size distribution, a smooth surface, and multiple phases, including α-Al, AlB₂, and AlB₁₂. Compared with pure Al powder, the Al B alloy fuel exhibits a lower oxidation exothermic peak temperature and a higher oxidation weight gain. In combustion diagnostics, the Al B alloy fuels exhibit enhanced overall energy-release characteristics compared with pure Al. In particular, the maximum combustion heat is increased by approximately 2542 J/g and the maximum flame temperature by approximately 130 K compared with pure Al, whereas the pressurization rates of AlB6 and AlB10 decrease by approximately 62.5% and 85.8%, respectively, accompanied by prolonged pressure durations. These characteristics indicate enhanced total energy release but slower pressure buildup and energy-release kinetics after the incorporation of B. The enhanced heat release is attributed to the synergistic reactions between the alloy components, which induce a distinctive combustion mechanism. Therefore, Al B alloy fuels exhibit potential for energetic-material applications, such as high-energy solid propellants, where their enhanced overall energy release and prolonged combustion characteristics can be effectively utilized.

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Publication Details

Journal
Fuel Processing Technology
Published
2026-09-18
DOI
https://doi.org/10.1016/j.fuproc.2026.108597
Primary Topic
Energetic Materials and Combustion
Type
article
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Unlocking high energy release: Tailored fabrication and combustion mechanisms of spherical AlB alloy fuels

Yang Gao, Yilong Xu, Jie Yao, Xueyong Guo et al.
Fuel Processing Technology
Energetic Materials and Combustion
article

Unlocking high energy release: Tailored fabrication and combustion mechanisms of spherical AlB alloy fuels

Yang Gao, Yilong Xu, Jie Yao, Xueyong Guo, Shi Yan, Zhe Yang
article en

Abstract

Metal or nonmetal additives with high-energy-release characteristics are critical energetic materials, such as high-energy solid propellants. This study proposes a prepressing–smelting–ultrasonic atomization technique to fabricate spherical Al B alloy fuel. The Al B alloy fuel exhibits a uniform particle size distribution, a smooth surface, and multiple phases, including α-Al, AlB₂, and AlB₁₂. Compared with pure Al powder, the Al B alloy fuel exhibits a lower oxidation exothermic peak temperature and a higher oxidation weight gain. In combustion diagnostics, the Al B alloy fuels exhibit enhanced overall energy-release characteristics compared with pure Al. In particular, the maximum combustion heat is increased by approximately 2542 J/g and the maximum flame temperature by approximately 130 K compared with pure Al, whereas the pressurization rates of AlB6 and AlB10 decrease by approximately 62.5% and 85.8%, respectively, accompanied by prolonged pressure durations. These characteristics indicate enhanced total energy release but slower pressure buildup and energy-release kinetics after the incorporation of B. The enhanced heat release is attributed to the synergistic reactions between the alloy components, which induce a distinctive combustion mechanism. Therefore, Al B alloy fuels exhibit potential for energetic-material applications, such as high-energy solid propellants, where their enhanced overall energy release and prolonged combustion characteristics can be effectively utilized.

Fuel Processing TechnologyVol. 292
Beijing Institute of Technology (CN), Zhengzhou University of Aeronautics (CN), State Key Laboratory of Explosion Science and Safety Protection (CN)
Affordable and clean energy
Openalex Percentile: Top 19%
Energetic Materials and Combustion
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Unlocking high energy release: Tailored fabrication and combustion mechanisms of spherical AlB alloy fuels — Yang Gao, Yilong Xu, et al. · Fuel Processing Technology (2026) | TGRS Research Map | TGRS