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浙江大学学报(工学版)  2026, Vol. 60 Issue (9): 2042-2048    DOI: 10.3785/j.issn.1008-973X.2026.09.022
能源工程     
可控氧浓度环境下毫米级镁颗粒燃烧特性
岳文谱(),李泽昊,杨丝鄅,杨卫娟*(),刘建忠,周俊虎
浙江大学 能源高效清洁利用全国重点实验室,浙江 杭州 310027
Combustion characteristics of millimeter-level magnesium particles under controlled oxygen concentration environment
Wenpu YUE(),Zehao LI,Siyu YANG,Weijuan YANG*(),Jianzhong LIU,Junhu ZHOU
State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China
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摘要:

采用直径为 3 mm 的球形镁颗粒,在甲烷火焰环境下开展燃烧实验,研究有效氧化剂体积分数(13%~26%)和火焰环境温度(1058~1220 K)对镁颗粒燃烧过程及颗粒残留产物的影响,并揭示燃烧释能机理. 镁颗粒燃烧经历着火、火焰扩张、火焰收缩、产物凝聚和熄火阶段. 镁颗粒燃烧残留产物外层晶体呈片状规则排列、疏松呈白色;内层晶体无序分布,较紧密呈黑色,成分均为MgO. 有效氧化剂体积分数和环境温度通过扩散和反应动力学机制共同作用于燃烧时间,燃烧时间随有效氧化剂体积分数提高和环境温度降低而缩短,并得到燃烧时间的计算公式. 定量地揭示出3 mm镁颗粒燃烧时间对有效氧化剂体积分数的响应是低体积分数区敏感的,环境温度的影响效应随着有效氧化剂体积分数的提高而逐渐减弱.

关键词: 毫米级镁颗粒有效氧化剂体积分数环境温度燃烧时间燃烧产物    
Abstract:

Combustion experiments were conducted on spherical magnesium particles with a diameter of 3 mm in a methane flame environment. The effects of the volume fraction of effective oxidizing agent (13%?26%) and flame ambient temperature (1058?1220 K) on the combustion process of magnesium particles and the particle residue products were analyzed. The combustion of magnesium particles went through the stages of ignition, flame expansion, flame contraction, product aggregation and extinction. The outer layer of crystalline magnesium combustion residues exhibited a regular, loose, and white morphology. The inner layer of crystals was disorderly distributed and densely black. The composition of crystals was MgO. The combustion time was synergistically affected by the volume fraction of the effective oxidizing agent and the ambient temperature, primarily through diffusion and reaction kinetic mechanisms. The combustion time decreased with the increase of the volume fraction of effective oxidizing agent and the decrease of environmental temperature. A calculation formula for combustion time was obtained. The combustion time of 3 mm magnesium particles was sensitive to the volume fraction of effective oxidizing agent at low volume fraction. The effect of ambient temperature diminished with the increasing volume fraction of effective oxidizing agent.

Key words: millimeter-level magnesium particles    effective oxidant volume fraction    ambient temperature    combustion time    combustion product
收稿日期: 2025-08-04 出版日期: 2026-07-20
CLC:  TK 16  
基金资助: 中国载人空间站工程空间科学与应用项目(KJZ-YY-NRS0603).
通讯作者: 杨卫娟     E-mail: 22327047@zju.edu.cn;yangwj@zju.edu.cn
作者简介: 岳文谱(2001—),男,硕士生,从事含能金属燃烧研究. orcid.org/0009-0006-7183-2906. E-mail:22327047@zju.edu.cn
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引用本文:

岳文谱,李泽昊,杨丝鄅,杨卫娟,刘建忠,周俊虎. 可控氧浓度环境下毫米级镁颗粒燃烧特性[J]. 浙江大学学报(工学版), 2026, 60(9): 2042-2048.

Wenpu YUE,Zehao LI,Siyu YANG,Weijuan YANG,Jianzhong LIU,Junhu ZHOU. Combustion characteristics of millimeter-level magnesium particles under controlled oxygen concentration environment. Journal of ZheJiang University (Engineering Science), 2026, 60(9): 2042-2048.

链接本文:

https://www.zjujournals.com/eng/CN/10.3785/j.issn.1008-973X.2026.09.022        https://www.zjujournals.com/eng/CN/Y2026/V60/I9/2042

图 1  平焰燃烧实验系统图
图 2  环境温度随悬挂高度的变化
名称图像序号对应时刻
着火1~60~250 ms
火焰扩展7~22250~3 450 ms
火焰收缩23~413 450~6 950 ms
产物凝聚42~466 950~7 450 ms
熄火47~507 450~7 850 ms
表 1  镁颗粒着火燃烧阶段划分
图 3  3 mm镁颗粒的微观燃烧过程(Xeff=17.01%,h=15 mm)
图 4  3 mm镁颗粒燃烧最剧烈时刻波长和光谱强度的关系图
图 5  不同有效氧化剂体积分数下燃烧最剧烈时刻火焰图像
图 6  不同温度下3 mm球形镁颗粒燃烧时间随有效氧化剂体积分数的变化
图 7  不同有效氧化剂体积分数下3 mm球形镁颗粒燃烧时间随环境温度的变化
图 8  有效氧化剂体积分数、环境温度和燃烧时间关系图
图 9  基于温度和有效氧化剂体积分数的镁颗粒燃烧时间模型
图 10  3 mm镁颗粒燃烧产物
图 11  3 mm镁颗粒燃烧产物XRD数据图
图 12  3 mm镁颗粒燃烧产物的SEM图
图 13  燃烧产物的SEM图像及完整产物图像
1 周俊虎, 周楷, 杨卫娟, 等 镁在水蒸气中高温氧化的动力学特性[J]. 燃烧科学与技术, 2010, 16 (5): 383- 387
ZHOU Junhu, ZHOU Kai, YANG Weijuan, et al The kinetic characteristics of high-temperature oxidation of magnesium in water vapor[J]. Combustion Science and Technology, 2010, 16 (5): 383- 387
2 TRAN Q, VAZ N, MICHSLLE L, et al On the effectiveness of metal particle combustion performance and implications to martian missions[J]. Fuel, 2023, 342: 127805
doi: 10.1016/j.fuel.2023.127805
3 PALASZEWSKI B, JURNS J, BREISACHER K, et al. Metallized gelled propellants combustion experiments in a pulse detonation engine [C]// 2004 40th AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit Fort Lauderdale. Fort Lauderdale: AIAA, 2004: 41–91.
4 WRONSKI T, SCIACOVELLI A Analysis of the potential of four reactive metals as zero-carbon energy carriers for energy storage and conversion[J]. Journal of Energy Storage, 2024, 100: 113514
doi: 10.1016/j.est.2024.113514
5 代世梅, 谢乐源 金属镁粉尘爆炸机理及防护技术研究进展[J]. 矿山工程, 2024, 12 (2): 270- 274
DAI Shimei, XIE Leyuan Research progress on explosion mechanism and protection technology of magnesium metal dust[J]. Mining Engineering, 2024, 12 (2): 270- 274
doi: 10.12677/me.2024.122030
6 DREIZIN E L, BERMAN C H, VICENZI E P Condensed-phase modifications in magnesium particle combustion in air[J]. Magnesium Particle Combustion, 2000, 122: 30- 42
doi: 10.1016/s0010-2180(00)00101-2
7 孙璐. 球形镁颗粒的点火及燃烧特性研究[D]. 北京: 北京理工大学, 2018.
SUN Lu. Research on the ignition and combustion characteristics of spherical magnesium particles [D]. Beijing: Beijing University of Technology, 2018.
8 MAGHSOUDI P, BIDABADI M Particle trajectory and pulsation flame of magnesium combustion[J]. Fuel, 2023, 338: 127230
doi: 10.1016/j.fuel.2022.127230
9 ZHAO Z, CHEN J, YANG Z, et al Ignition and combustion characteristics of magnesium-based nanofluid fuel[J]. Acta Astronautica, 2024, 223: 234- 241
doi: 10.1016/j.actaastro.2024.07.013
10 YANG Q, WANG X, XU X, et al Effects of magnesium particle size on combustion characteristic of martian ramjet engine[J]. Energy, 2022, 260: 125121
doi: 10.1016/j.energy.2022.125121
11 WANG X, LIU Y, XU X, et al Combustion of single micron-sized magnesium particles in carbon dioxide[J]. Chemical Engineering Journal, 2024, 495: 153897
doi: 10.1016/j.cej.2024.153897
12 ROSENBAND V Thermo-mechanical aspects of the heterogeneous ignition of metals[J]. Combustion and Flame, 2004, 137: 366- 375
doi: 10.1016/j.combustflame.2004.02.009
13 ZHU X, LI C, GUO Y, et al Experimental investigation on the ignition and combustion characteristics of moving micron-sized Mg particles in CO2[J]. Acta Astronautica, 2020, 169: 66- 74
doi: 10.1016/j.actaastro.2020.01.008
14 BRYKOV N, EMELYANOV V, TETERINA I, et al Drag and heat transfer of metal and oxide agglomerates in flow of combustion products of solid propellant[J]. Acta Astronautica, 2023, 205: 319- 331
doi: 10.1016/j.actaastro.2022.09.023
15 HUANG L, XU D, LI S, et al Laser-induced ignition and combustion of individual Mg particles under CO2 atmosphere[J]. Combustion and Flame, 2024, 268: 113650
doi: 10.1016/j.combustflame.2024.113650
16 刘龙, 夏智勋, 黄利亚, 等 镁颗粒-空气混合物一维非稳态爆震波特性数值模拟研究[J]. 物理学报, 2020, 69 (19): 201- 203
LIU Long, XIA Zhixun, HUANG Liya, et al Numerical simulation of one-dimensional unsteady detonation wave characteristics of magnesium particle-air mixture[J]. Journal of Physics, 2020, 69 (19): 201- 203
17 BECKSTEAD M W Correlating aluminum burning times[J]. Combustion, Explosion, and Shock Waves, 2005, 41: 533- 546
doi: 10.1007/s10573-005-0067-2
18 DEREVYAGEA M E, STESIKL N, FEDORIN E A Magnesium combustion regimes[J]. Translated Form Fizika Goreniya I Vzryva, 1978, 14: 3- 10
doi: 10.1007/bf00790144
19 FENG Y, XIA Z, HUANG L, et al Experimental investigation on the ignition and combustion characteristics of a single magnesium particle in air[J]. Combustion, Explosion, and Shock Waves, 2019, 55 (2): 210- 219
doi: 10.1134/S0010508219020102
20 黄序, 夏智勋, 黄利亚, 等 氧化性气氛中镁颗粒燃烧特性研究进展[J]. 含能材料, 2013, 21 (3): 379- 386
HUANG Xu, XIA Zhixun, HUANG Liya, et al Research progress on the combustion characteristics of magnesium particles in oxidizing atmospheres[J]. Energetic Materials, 2013, 21 (3): 379- 386
doi: 10.3969/j.issn.1006-9941.2013.03.021
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