Mechanical Activation Assisted Self-Propagating High-Temperature Synthesis of HfB2-HfC Composites

被引:4
作者
Zaitsev, A. A. [1 ]
Potanin, A. Yu. [1 ]
Pogozhev, Yu. S. [1 ]
Filonenko, I. O. [1 ]
Levashov, E. A. [1 ]
机构
[1] Natl Univ Sci & Technol MISiS, Moscow 119049, Russia
关键词
HfB2-HfC; mechanical activation; self-propagating high-temperature synthesis; composite powder; HAFNIUM CARBIDE POWDER; BOROTHERMAL REDUCTION; HFC; CERAMICS; MICROSTRUCTURE; CONSOLIDATION; DEPOSITION; BORIDE; TIME;
D O I
10.3103/S1061386223020073
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The structure as well as the phase and granulometric compositions of the submicron-sized heterophase HfB2-34 at % HfC powders fabricated by mechanical activation assisted self-propagating high-temperature synthesis from (Hf + B + C) mixtures were studied. It was demonstrated that HfB2-HfC powders can be produced from (Hf + B + C) mixtures by mechanochemical synthesis in a planetary ball mill (centrifugal factor, 60 g) during more than 15 min. The SHS product with composition HfB2-34 at % HfC consisted of a combination of highly porous agglomerates sized 5-100 & mu;m, which can be easily broken into composite HfB2-HfC particles sized 1-10 & mu;m. Important that each composite particle of powder have a heterophase structure which consists of HfB2 grains sized 0.5-2.0 & mu;m and equiaxial HfC grains sized 0.3-1 & mu;m. Impurity oxygen content in the SHS products did not exceed 0.29 wt %. Milling of the SHS product allowed to obtain the HfB2-34 at % HfC powder characterized by the average particle size of 4 & mu;m with heterophase submicron-sized microstructure and oxygen content of 0.72 wt %.
引用
收藏
页码:157 / 168
页数:12
相关论文
共 38 条
[31]   Effects of milling time and reductant content on the formation of HfC-HfB2 composite powders synthesized via a solid-state reaction route [J].
Tekoglu, Emre ;
Ovecoglu, M. Lutfi ;
Agaogullari, Duygu .
CERAMICS INTERNATIONAL, 2021, 47 (17) :23851-23860
[32]   Synthesis and characterization of hafnium carbide microcrystal chains with a carbon-rich shell via CVD [J].
Tian, Song ;
Li, Hejun ;
Zhang, Yulei ;
Liu, Sen ;
Fu, Yangxi ;
Li, Yixian ;
Qiang, Xinfa .
JOURNAL OF ALLOYS AND COMPOUNDS, 2013, 580 :407-411
[33]  
Varma A., 1998, Adv. Chem. Eng., V24, P79, DOI DOI 10.1016/S0065-2377(08)60093-9
[34]   Sol-Gel Synthesis and Formation Mechanism of Ultrahigh Temperature Ceramic: HfB2 [J].
Venugopal, Saranya ;
Boakye, Emmanuel E. ;
Paul, Anish ;
Keller, Kristin ;
Mogilevsky, Pavel ;
Vaidhyanathan, Bala ;
Binner, Jon G. P. ;
Katz, Allan ;
Brown, Peter M. .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2014, 97 (01) :92-99
[35]   Self-propagating high-temperature synthesis of advanced ceramics MoSi2-HfB2-MOB [J].
Vorotilo, S. ;
Potanin, A. Yu. ;
Pogozhev, Yu. S. ;
Levashov, E. A. ;
Kochetov, N. A. ;
Kovalev, D. Yu. .
CERAMICS INTERNATIONAL, 2019, 45 (01) :96-107
[36]   LOW-TEMPERATURE DEPOSITION OF ZIRCONIUM AND HAFNIUM BORIDE FILMS BY THERMAL-DECOMPOSITION OF THE METAL BOROHYDRIDES (M[BH4]4) [J].
WAYDA, AL ;
SCHNEEMEYER, LF ;
OPILA, RL .
APPLIED PHYSICS LETTERS, 1988, 53 (05) :361-363
[37]   Effect of HfC and SiC on microstructure and mechanical properties of HfB2-based ceramics [J].
Yuan, Ye ;
Liu, Ji-Xuan ;
Zhang, Guo-Jun .
CERAMICS INTERNATIONAL, 2016, 42 (06) :7861-7867
[38]   Low-temperature synthesis of ultra-high-temperature HfC and HfCN nanoparticles [J].
Yudin, S. N. ;
Kasimtsev, A., V ;
Volodko, S. S. ;
Alimov, I. A. ;
Markova, G., V ;
Sviridova, T. A. ;
Tabachkova, N. Yu ;
Buinevich, V. S. ;
Nepapushev, A. A. ;
Moskovskikh, D. O. .
MATERIALIA, 2022, 22