Synthesis of titanium orthorhombic alloy spherical powders by mechanical alloying and plasma spheroidization processes

2019 ◽  
Vol 256 ◽  
pp. 126615 ◽  
Author(s):  
Igor Polozov ◽  
Nikolay Razumov ◽  
Tagir Makhmutov ◽  
Alexey Silin ◽  
Artem Kim ◽  
...  
2018 ◽  
Vol 9 (1) ◽  
pp. 86-90 ◽  
Author(s):  
Nikolay G. Razumov ◽  
Anatoly A. Popovich ◽  
Andrey V. Samokhin ◽  
Aleksei V. Grigoriev

Metals ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 1557
Author(s):  
Alina K. Mazeeva ◽  
Artem Kim ◽  
Nikolay E. Ozerskoi ◽  
Aleksey I. Shamshurin ◽  
Nikolay G. Razumov ◽  
...  

In this paper, a novel approach to obtain a ferromagnetic material for smart applications was implied. A combination of mechanical alloying (MA) and plasma spheroidization (PS) was applied to produce Ni36Al27Co37 spherical powder. Then its structure was systematically studied. It was shown that homogenization of the structure occurs due to mechanism of layered structure formation. The dependence of the lamella thickness on the energy dose input at MA was defined. It was found that 14.7 W⋅h/g is sufficient to obtain lamella thickness of 1 μm and less. The low-energy mode of a planetary mill with rotation speeds of the main disk/bowl of 150/−300 rpm makes it possible to achieve a uniform element distribution upon a minimal amount of impurity. During MA in an attritor Ni3Al-type intermetallic compounds are formed that result in more intensive degradation in particle size. Plasma spheroidization of the powder after MA allowed obtaining Ni36Al27Co37 spherical powder. The powder had a fine β + γ-structure. The particle size distribution remains almost unchanged compared to the MA stage. Coercivity of the powder is 79 Oe. The powder obtained meets the requirements of selective laser melting technology, but also can be utilized as a functional filler in various magnetic composites.


2019 ◽  
Vol 245 ◽  
pp. 188-191 ◽  
Author(s):  
I.S. Goncharov ◽  
N.G. Razumov ◽  
A.O. Silin ◽  
N.E. Ozerskoi ◽  
A.I. Shamshurin ◽  
...  

Author(s):  
T. E. Mitchell ◽  
P. B. Desch ◽  
R. B. Schwarz

Al3Zr has the highest melting temperature (1580°C) among the tri-aluminide intermetal1ics. When prepared by casting, Al3Zr forms in the tetragonal DO23 structure but by rapid quenching or by mechanical alloying (MA) it can also be prepared in the metastable cubic L12 structure. The L12 structure can be stabilized to at least 1300°C by the addition of copper and other elements. We report a TEM study of the microstructure of bulk Al5CuZr2 prepared by hot pressing mechanically alloyed powder.MA was performed in a Spex 800 mixer using a hardened steel container and balls and adding hexane as a surfactant. Between 1.4 and 2.4 wt.% of the hexane decomposed during MA and was incorporated into the alloy. The mechanically alloyed powders were degassed in vacuum at 900°C. They were compacted in a ram press at 900°C into fully dense samples having Vickers hardness of 1025. TEM specimens were prepared by mechanical grinding followed by ion milling at 120 K. TEM was performed on a Philips CM30 at 300kV.


Sign in / Sign up

Export Citation Format

Share Document