个人信息Personal Information
工程师
性别:男
毕业院校:大连理工大学
学位:硕士
所在单位:化工学院
电子邮箱:zhangdawei@dlut.edu.cn
Flame propagation behaviours in nano-metal dust explosions
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论文类型:期刊论文
发表时间:2017-11-01
发表刊物:POWDER TECHNOLOGY
收录刊物:Scopus、SCIE、EI
卷号:321
页面范围:154-162
ISSN号:0032-5910
关键字:Nano-metal dust explosions; Flame propagation behaviours; Combustion reaction phases and mechanisms
摘要:Flame propagation behaviours in 40 nm titanium, aluminium and iron dust clouds were investigated by highspeed photography. 40 rim titanium, aluminium and iron dust flames were all characterized by discrete single glowing burning particles with smoothly spherical front. "Micro explosions" caused by the fragment ejection occurred in both 40 nm titanium and aluminium particles burning processes. At nano scales, the heat and mass transfer regimes were absolutely different with micro particles, which resulted in different propagation velocities. The average pulsating flame propagation velocities of 40 nm titanium, aluminium and iron dust clouds were 0.565 m/s, 0.189 m/s and 0.035 m/s, respectively. From SEM analysis, it was inferred that 40 nm titanium, aluminium and iron particles were burnt in liquid, gas, and solid-phase, respectively. From XPS analysis, it was found that N-2 played a significant role in titanium particles combustion. 40 nm titanium combustion products contained 43% TiO2 (Ti4+), 27% Ti2O3 (Ti3+), 21%TiO (Ti2+) and 9%TiN (Ti3+). While 40 nm aluminium combustion products just contained 100% Al2O3 (Al3+), and 40 nm iron combustion products contained 49% Fe2O3 (Fe3+), 26% Fe3O4 (Fe3+/Fe2+), 15% FeO (Fe2+) and 10% iron nonoxides. Inerted by nitrogen for preventing nano titanium dust explosions was inadvisable. (C) 2017 Elsevier B.V. All rights reserved.