Measurement of the electrical resistivity of liquid 32G2 and 32G1 steels by the rotating magnetic field method

2017 ◽  
Vol 2017 (3) ◽  
pp. 175-178 ◽  
Author(s):  
M. A. Borovykh ◽  
O. A. Chikova ◽  
V. S. Tsepelev ◽  
V. V. V’yukhin
2019 ◽  
Vol 25 (4) ◽  
pp. 259
Author(s):  
Olga Chikova ◽  
Vladimir Tsepelev ◽  
Vladimir V’yukhin ◽  
Kseniya Shmakovа ◽  
Vadim Il’in

<p class="AMSmaintext1">The kinematic viscosity and electrical resistivity of equiatomic liquid alloys CuNiAl, CuNiAlCo, CuNiAlCoFe were measured during heating of the sample to 2070 K and subsequent cooling. The kinematic viscosity was measured using the damped torsional vibrations of a crucible with a melt. The measuring results are discussed within the theory of absolute reaction rates. The entropy of activation of viscous flow (characteristic of the structural state of the melt) was are determined by analyzing the temperature dependences of kinematic viscosity. The electrical resistivity was measured was using the rotating magnetic field method. The temperature coefficient of resistivity (characteristic of the structural state of the melt) was are determined. The measuring results interpreted using the Nagel-Tauc model. We considerCuNiAl, CuNiAlCo, CuNiAlCoFe alloysof equiatomic compositions as the multi-principal element alloys (MPEAs),  the complex concentrated alloys (CCAs), the high-entropy alloys (HEAs). It based on the available microgeterogenity concept the measuring results of the vickosity and the resistivity are discussed. We were looking for temperatureis of the heating a melt for destroy of microheterogeneity and mixing components on an atomic scale T*. The temperature T*=1800 K could be determined only  for alloy CuNiAl of equiatomic composition. We have made the assumption that the heating of uid alloy CuNiAl the more 1800K in subsequent crystallization even at relatively low speeds will provide of more homogeneous structure volumetric ingots.</p>


Coatings ◽  
2021 ◽  
Vol 11 (6) ◽  
pp. 621
Author(s):  
Ivan Shorstkii ◽  
Maxim Sosnin

Soft magnetic composites (SMCs) of Fe3O4 particles coated with Al nanoparticles were prepared using the rotating magnetic field method, and the microwave absorption properties and microstructures of these composites were investigated. The results show that a well-distributed Al nanoparticles coating layer was formed on the surface of the Fe3O4 particles upon mechanical friction and rotating magnetic field distribution. Scanning electron microscopy SEM and X-ray diffraction XRD studies show that the rotating magnetic field method can produce a uniform coating of the aluminium layer on the Fe3O4 particles. Compared with common composites from Fe3O4 particles, SMCs of Fe3O4(Al) particles have stronger magnetic loss behaviour and weaker dielectric loss ability, as well as good reflection characteristics over a wide frequency range. The minimum reflection loss (RL) is −16.2 dB at 12.0 GHz for a corresponding thickness of 5 mm obtained for SMCs of Fe3O4(Al) particles. The presented rotating magnetic field method used in the Fe3O4 particles coating process with Al nanoparticles has great potential in composite materials synthesis with different morphology and areas of application.


AIP Advances ◽  
2017 ◽  
Vol 7 (11) ◽  
pp. 115204 ◽  
Author(s):  
T. Furukawa ◽  
K. Takizawa ◽  
D. Kuwahara ◽  
S. Shinohara

Author(s):  
О. Karlov ◽  
◽  
I. Kondratenko ◽  
R. Kryshchuk ◽  
A. Rashchepkin ◽  
...  

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