Combustion of Laser-Induced Individual Magnesium Microparticles under Natural Convection

Metal magnesium (Mg) fuels have been widely used in rocket propellants. The combustion study on individual Mg microparticles is crucial to the in-depth unveiling of the combustion mechanism of Mg-based propellants. In this paper, a new experimental setup was proposed to directly observe the combusti...

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Main Authors: Chengyuan Lin, Minqi Zhang, Yue Wang, Shengji Li, Xuefeng Huang, Jiangrong Xu, Sunqiang Pan
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Processes
Subjects:
Online Access:https://www.mdpi.com/2227-9717/9/8/1276
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spelling doaj-cc4103c986be433a91118e1fcde771bf2021-08-26T14:15:53ZengMDPI AGProcesses2227-97172021-07-0191276127610.3390/pr9081276Combustion of Laser-Induced Individual Magnesium Microparticles under Natural ConvectionChengyuan Lin0Minqi Zhang1Yue Wang2Shengji Li3Xuefeng Huang4Jiangrong Xu5Sunqiang Pan6Institute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, ChinaInstitute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, ChinaInstitute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, ChinaCollege of Materials and Environmental Engineering, Hangzhou Dianzi University, Hangzhou 310018, ChinaInstitute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, ChinaInstitute of Energy, Department of Physics, Hangzhou Dianzi University, Hangzhou 310018, ChinaDivision of Biological and Chemical Metrology, Zhejiang Institute of Metrology, Hangzhou 310018, ChinaMetal magnesium (Mg) fuels have been widely used in rocket propellants. The combustion study on individual Mg microparticles is crucial to the in-depth unveiling of the combustion mechanism of Mg-based propellants. In this paper, a new experimental setup was proposed to directly observe the combustion of individual micron-sized Mg particles, based on laser ignition and microscopic high-speed cinematography. The combustion process of individual Mg microparticles could be directly and clearly observed by the apparatus at high temporal and spatial resolutions. Individual Mg microparticles took gas phase combustion, and mainly underwent four stages: expansion, melting, gasification, ignition, and combustion. The ignition delay time and total combustion time had an exponential decay on the particle diameter, and they had a linear decay on the ignition power density. The melting took a dominant role in the whole burnout time. The gas-phase combustion flame seemed thick, inhomogeneous, and ring-like structure. The combustion model of individual Mg microparticles was built through combining the experimental results with the SEM, XRD, XPS, and EDS analysis of original samples and combustion residues. This study will be beneficial to understand the combustion process and reveal the combustion mechanism of metal microparticles besides Mg.https://www.mdpi.com/2227-9717/9/8/1276metal fuelsmagnesium (Mg)individual microparticleslaser ignitionmicroscopic high-speed cinematography
collection DOAJ
language English
format Article
sources DOAJ
author Chengyuan Lin
Minqi Zhang
Yue Wang
Shengji Li
Xuefeng Huang
Jiangrong Xu
Sunqiang Pan
spellingShingle Chengyuan Lin
Minqi Zhang
Yue Wang
Shengji Li
Xuefeng Huang
Jiangrong Xu
Sunqiang Pan
Combustion of Laser-Induced Individual Magnesium Microparticles under Natural Convection
Processes
metal fuels
magnesium (Mg)
individual microparticles
laser ignition
microscopic high-speed cinematography
author_facet Chengyuan Lin
Minqi Zhang
Yue Wang
Shengji Li
Xuefeng Huang
Jiangrong Xu
Sunqiang Pan
author_sort Chengyuan Lin
title Combustion of Laser-Induced Individual Magnesium Microparticles under Natural Convection
title_short Combustion of Laser-Induced Individual Magnesium Microparticles under Natural Convection
title_full Combustion of Laser-Induced Individual Magnesium Microparticles under Natural Convection
title_fullStr Combustion of Laser-Induced Individual Magnesium Microparticles under Natural Convection
title_full_unstemmed Combustion of Laser-Induced Individual Magnesium Microparticles under Natural Convection
title_sort combustion of laser-induced individual magnesium microparticles under natural convection
publisher MDPI AG
series Processes
issn 2227-9717
publishDate 2021-07-01
description Metal magnesium (Mg) fuels have been widely used in rocket propellants. The combustion study on individual Mg microparticles is crucial to the in-depth unveiling of the combustion mechanism of Mg-based propellants. In this paper, a new experimental setup was proposed to directly observe the combustion of individual micron-sized Mg particles, based on laser ignition and microscopic high-speed cinematography. The combustion process of individual Mg microparticles could be directly and clearly observed by the apparatus at high temporal and spatial resolutions. Individual Mg microparticles took gas phase combustion, and mainly underwent four stages: expansion, melting, gasification, ignition, and combustion. The ignition delay time and total combustion time had an exponential decay on the particle diameter, and they had a linear decay on the ignition power density. The melting took a dominant role in the whole burnout time. The gas-phase combustion flame seemed thick, inhomogeneous, and ring-like structure. The combustion model of individual Mg microparticles was built through combining the experimental results with the SEM, XRD, XPS, and EDS analysis of original samples and combustion residues. This study will be beneficial to understand the combustion process and reveal the combustion mechanism of metal microparticles besides Mg.
topic metal fuels
magnesium (Mg)
individual microparticles
laser ignition
microscopic high-speed cinematography
url https://www.mdpi.com/2227-9717/9/8/1276
work_keys_str_mv AT chengyuanlin combustionoflaserinducedindividualmagnesiummicroparticlesundernaturalconvection
AT minqizhang combustionoflaserinducedindividualmagnesiummicroparticlesundernaturalconvection
AT yuewang combustionoflaserinducedindividualmagnesiummicroparticlesundernaturalconvection
AT shengjili combustionoflaserinducedindividualmagnesiummicroparticlesundernaturalconvection
AT xuefenghuang combustionoflaserinducedindividualmagnesiummicroparticlesundernaturalconvection
AT jiangrongxu combustionoflaserinducedindividualmagnesiummicroparticlesundernaturalconvection
AT sunqiangpan combustionoflaserinducedindividualmagnesiummicroparticlesundernaturalconvection
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