TY - JOUR
T1 - Combustion characteristics of zirconium particles coated with ferrite nanoparticles
AU - Wang, Qiuhong
AU - Shen, Zhongyi
AU - Sun, Jinhua
AU - Shu, Chi Min
AU - Jiang, Juncheng
AU - Deng, Jun
AU - Sheng, Youjie
AU - Laiwang, Bin
N1 - Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2021/9
Y1 - 2021/9
N2 - To improve the properties of Zr powder for specific applications in aerospace and military fields, Zr powders were coated with ferrite nanoparticles, namely FeOOH, Fe2O3, and Fe3O4. An instantaneous flame propagation system and scanning electron microscopy, X-ray diffraction, thermogravimetry, and differential scanning calorimetry techniques was used to characterized the flame propagation characteristics, micromorphology, phase composition, crystal structure, thermal stability, and reactivity of the three types of nano ferrite-coated Zr particles. The results showed that, the flame propagation velocity and maximal temperature exhibited the following order: Fe2O3-coated > FeOOH-coated > Fe3O4-coated Zr dust cloud. With an increase in the proportion of coating materials, the combustion characteristics all decreased. The contrastive analysis of surface, ingredient and heating process revealed that, during combustion, in addition to inducing oxidation–reduction, inner Zr led to a replacement reaction with the outside ferrite coating layer, and then, Fe generated was oxidized at a high temperature.
AB - To improve the properties of Zr powder for specific applications in aerospace and military fields, Zr powders were coated with ferrite nanoparticles, namely FeOOH, Fe2O3, and Fe3O4. An instantaneous flame propagation system and scanning electron microscopy, X-ray diffraction, thermogravimetry, and differential scanning calorimetry techniques was used to characterized the flame propagation characteristics, micromorphology, phase composition, crystal structure, thermal stability, and reactivity of the three types of nano ferrite-coated Zr particles. The results showed that, the flame propagation velocity and maximal temperature exhibited the following order: Fe2O3-coated > FeOOH-coated > Fe3O4-coated Zr dust cloud. With an increase in the proportion of coating materials, the combustion characteristics all decreased. The contrastive analysis of surface, ingredient and heating process revealed that, during combustion, in addition to inducing oxidation–reduction, inner Zr led to a replacement reaction with the outside ferrite coating layer, and then, Fe generated was oxidized at a high temperature.
KW - Coated Zr particles
KW - Ferrite nanoparticle
KW - Flame propagation
KW - Molar ratio
KW - Replacement reaction
UR - http://www.scopus.com/inward/record.url?scp=85106236593&partnerID=8YFLogxK
U2 - 10.1016/j.powtec.2021.04.097
DO - 10.1016/j.powtec.2021.04.097
M3 - 文章
AN - SCOPUS:85106236593
SN - 0032-5910
VL - 389
SP - 145
EP - 154
JO - Powder Technology
JF - Powder Technology
ER -