Mechanical Alloying with the Partial Amorphization of the Fe–Cr–Co–Ni–Mn Multicomponent Powder Mixture and Its Spark Plasma Sintering to Produce a Compact High-Entropy Material

被引:0
作者
N. A. Kochetov
A. S. Rogachev
A. S. Shchukin
S. G. Vadchenko
I. D. Kovalev
机构
[1] Institute of Structural Macrokinetics,
[2] Russian Academy of Sciences,undefined
来源
Russian Journal of Non-Ferrous Metals | 2019年 / 60卷
关键词
multicomponent high-entropy alloys; Fe–Cr–Co–Ni–Mn alloy; solid solution; face-centered crystal lattice; mechanical alloying; spark plasma sintering; compact material;
D O I
暂无
中图分类号
学科分类号
摘要
The results of studying the influence of mechanical alloying (MA) on the surface morphology, microstructure, and atomic–crystalline structure of particles of the Fe–Cr–Co–Ni–Mn multicomponent powder mixture are presented. The initial components are as follows: the R-10 radio-engineering carbonyl iron powder with average particle size d = 3.5 μm, the NPE-1 nickel powder with d = 150 μm, the PK-1u cobalt powder with d < 71 μm, the PKh-1M chromium powder with d < 125 μm, and the MR0 manganese powder with d < 400 μm. The MA of the prepared mixture was performed in an AGO-2 water-cooled mechanical activator using 9-mm steel balls with an acceleration of 90 g in air. The alloying time varies from 5 to 90 min. The ratio of the ball weight to the mixture weight is 20 : 1. X-ray diffraction patterns of the initial and alloyed mixtures, as well as of the sample formed by sintering, are recorded using a DRON 3M diffractometer in FeKα radiation at 2θ = 30–100°. The microstructure of the mixture particles and the compact sample metallographic specimen after sintering are investigated by scanning electron microscopy. It is established that the peaks of initial components are absent in the X-ray diffraction pattern after mechanical activation for 90 min, and peaks corresponding to the phase representing the γ-Fe-based solid solution having a face-centered crystal lattice are presented. Herewith, the fraction of the amorphous phase increases to 20%. A compact single-phase material is formed from the mixture prepared after 90-min alloying by spark plasma sintering at 800°C for 10 min. Its density is 7.49 kg/cm3, resistivity is 0.94–0.96 × 10–6 Ω m, and microhardness is 306–328 kg/mm2. The phase is uniformly distributed over the volume.
引用
收藏
页码:268 / 273
页数:5
相关论文
共 50 条
[21]   The Growth Kinetic and Ultra High Hardness of CoCrFeNiTi High-Entropy Alloy by Mechanical Alloying and Spark Plasma Sintering [J].
Qu, Tiejun ;
Liu, Mingpu ;
Yang, Chuanhua ;
Wang, Xin ;
Wang, Junfa .
MATERIALS, 2025, 18 (14)
[22]   Microstructures and properties of CoCrCuFeNiMox high-entropy alloys fabricated by mechanical alloying and spark plasma sintering [J].
Yang, Qiumin ;
Tang, Yanyuan ;
Wen, Yan ;
Zhang, Qinying ;
Deng, Dengfei ;
Nai, Xinren .
POWDER METALLURGY, 2018, 61 (02) :115-122
[23]   AlFeCoNiCu High-Entropy Alloys Formed by Spark Plasma Sintering of a Powder Mixture and a Deposited Layer [J].
Batraev, Igor S. ;
V. Dudina, Dina ;
Ulianitsky, Vladimir Yu. ;
V. Ukhina, Arina ;
Bokhonov, Boris B. ;
Samodurova, Marina N. ;
Trofimov, Evgeny A. .
SCIENCE OF SINTERING, 2025, 57 (02) :145-154
[24]   CoxCrFeNiTi High-Entropy Alloys Prepared via Mechanical Alloying and Spark Plasma Sintering for Magnetron Sputtering Coatings [J].
Manea, Ciprian Alexandru ;
Geambazu, Laura Elena ;
Talpeanu, Dorinel ;
Marinescu, Virgil ;
Sbarcea, Gabriela Beatrice ;
Patroi, Delia ;
Udrea, Radu Mihail ;
Lungu, Magdalena Valentina ;
Lucaci, Mariana .
MATERIALS, 2023, 16 (19)
[25]   High-Entropy FeCoNiB0.5Si0.5 Alloy Synthesized by Mechanical Alloying and Spark Plasma Sintering [J].
Zaara, Kaouther ;
Chemingui, Mahmoud ;
Le Gallet, Sophie ;
Gaillard, Yves ;
Escoda, Lluisa ;
Saurina, Joan ;
Sunol, Joan Josep ;
Bernard, Frederic ;
Khitouni, Mohamed ;
Optasanu, Virgil .
CRYSTALS, 2020, 10 (10) :1-20
[26]   Effect of Mechanical Alloying Modes on the Microstructure, Phase Composition, and Mechanical Properties of Powder High-Entropy Co-Cr-Fe-Ni-Ti Alloys [J].
Berezin, M. A. ;
Zaitsev, A. A. ;
Romanenko, B. Yu. ;
Loginov, P. A. .
PHYSICS OF METALS AND METALLOGRAPHY, 2024, 125 (12) :1472-1485
[27]   Exploring the mechanical and tribological properties of AlCrFeNiTi high-entropy alloy fabricated by mechanical alloying and spark plasma sintering [J].
Nagarjuna, Cheenepalli ;
Dewangan, Sheetal Kumar ;
Lee, Hansung ;
Lee, Kwan ;
Ahn, Byungmin .
VACUUM, 2023, 218
[28]   Microstructural Evolution of Ti–Al–Ni (Cr,Co,Fe)-Based High-Entropy Alloys Processed Through Mechanical Alloying [J].
R. Anand Sekhar ;
Srinivasa Rao Bakshi .
Transactions of the Indian Institute of Metals, 2019, 72 :1427-1430
[29]   Phase evolution of refractory high-entropy alloy CrMoNbTiW during mechanical alloying and spark plasma sintering [J].
Raman, Lavanya ;
Guruvidyathri, K. ;
Kumari, Geeta ;
Murty, S. V. S. Narayana ;
Kottada, Ravi Sankar ;
Murty, B. S. .
JOURNAL OF MATERIALS RESEARCH, 2019, 34 (05) :756-766
[30]   Structure and properties of ultrafine-grained CoCrFeMnNi high-entropy alloys produced by mechanical alloying and spark plasma sintering [J].
Joo, S. -H. ;
Kato, H. ;
Jang, M. J. ;
Moon, J. ;
Kim, E. B. ;
Hong, S. -J. ;
Kim, H. S. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 698 :591-604