LAPSE:2020.0425
Published Article
LAPSE:2020.0425
Laser-Induced Ignition and Combustion of Individual Aluminum Particles Below 10 μm by Microscopic High-Speed Cinematography
Fengting Hou, Shengji Li, Yue Wang, Xuefeng Huang
May 8, 2020
Metal aluminum has been widely used as an ingredient in propellant, gunpowder and thermite, but there is less understanding of the combustion mechanism of aluminum particles from submicron to several microns in diameter. This paper proposes to experimentally investigate the ignition and combustion characteristics of individual aluminum particles below 10 μm. A specific in situ diagnostic experimental apparatus was first designed for directly observing the ignition and combustion behaviors of individual aluminum particles, with a submicrometer spatial resolution and a temporal resolution of tens of microseconds. Direct observation through microscopic high-speed cinematography demonstrated that, when heated by a continuous laser, individual aluminum particles thermally expanded, followed by shell rupture; the molten aluminum core overflowed and evaporated, leading to ignition and combustion. Further results showed that, when the laser power densities were gradually increased (5.88, 7.56 and 8.81 × 105 W/cm2), the durations of thermal expansion, melting and evaporation were shortened. The required time for the aluminum particles to expand to 150% of their initial diameter was shortened (34 s, 0.34 s and 0.0125 s, respectively). This study will be beneficial to further extend the investigation of other individual metal particles and reveal their combustion mechanism by direct observation.
Keywords
combustion mechanism, individual aluminum, laser ignition, microscopic high-speed cinematography, submicron particle
Suggested Citation
Hou F, Li S, Wang Y, Huang X. Laser-Induced Ignition and Combustion of Individual Aluminum Particles Below 10 μm by Microscopic High-Speed Cinematography. (2020). LAPSE:2020.0425
Author Affiliations
Hou F: Institute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, China
Li S: College of Materials and Environmental Engineering, Hangzhou Dianzi University, Hangzhou 310018, China
Wang Y: Institute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, China
Huang X: Institute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, China
Journal Name
Processes
Volume
8
Issue
3
Article Number
E280
Year
2020
Publication Date
2020-02-28
Published Version
ISSN
2227-9717
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Original Submission
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PII: pr8030280, Publication Type: Journal Article
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LAPSE:2020.0425
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doi:10.3390/pr8030280
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May 8, 2020
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CC BY 4.0
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May 8, 2020
 
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Calvin Tsay
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