SHS Metallurgy of Binary Silicides (MoW)Si2 for Sintering Composite Materials

2019 ◽  
Vol 10 (2) ◽  
pp. 473-479
Author(s):  
V. A. Gorshkov ◽  
P. A. Miloserdov ◽  
D. D. Titov ◽  
V. I. Yukhvid ◽  
Yu. F. Kargin
2017 ◽  
Vol 746 ◽  
pp. 219-232 ◽  
Author(s):  
V.I. Yukhvid ◽  
D.E. Andreev ◽  
Vladimir N. Sanin ◽  
Vladimir A. Gorshkov ◽  
M.I. Alymov

The review of the results obtained by the authors in synthesis of cast composite materials by the methods of SHS metallurgy is made. The main attention is paid to synthesis of heat-resistant materials based on intermetallic compounds of nickel and titanium and niobium silicides as well as tungsten-free hard alloys based on titanium and chromium carbides. The parameters allowing one to govern the process, material structure and composition were determined. Practical application was specified.


2021 ◽  
Vol 12 (2-2021) ◽  
pp. 107-110
Author(s):  
K. V. Zakharov ◽  
◽  
D. E. Andreev ◽  
V. I. Yukhvid ◽  
N. Yu. Khomenko ◽  
...  

This paper discusses the synthesis regularities of new composite materials via combustion processes and their features of physicochemical transformations for task of a modern technology. In early studies, the authors showed the possibility of synthesizing composite materials via centrifugal SHS metallurgy, in which the combustion of thermite mixtures and the chemical transformations were studied. The compositions, structures and mechanical properties of the synthesized materials were also investigated


2020 ◽  
Vol 14 (2) ◽  
pp. 261-265 ◽  
Author(s):  
D. E. Andreev ◽  
Yu. S. Vdovin ◽  
V. I. Yukhvid ◽  
N. V. Sachkova ◽  
I. D. Kovalev

2018 ◽  
Vol 59 (1) ◽  
pp. 42-49
Author(s):  
V. I. Yukhvid ◽  
D. E. Andreev ◽  
V. N. Sanin ◽  
N. V. Sachkova

2020 ◽  
Vol 14 (5) ◽  
pp. 847-852
Author(s):  
S. L. Silyakov ◽  
V. I. Yukhvid ◽  
N. Yu. Khomenko ◽  
T. I. Ignatieva ◽  
N. V. Sachkova

2018 ◽  
pp. 63-72
Author(s):  
V. A. Gorshkov ◽  
◽  
P. A. Miloserdov ◽  
D. D. Titov ◽  
V. I. Yukhvid ◽  
...  

Author(s):  
R.R. Russell

Transmission electron microscopy of metallic/intermetallic composite materials is most challenging since the microscopist typically has great difficulty preparing specimens with uniform electron thin areas in adjacent phases. The application of ion milling for thinning foils from such materials has been quite effective. Although composite specimens prepared by ion milling have yielded much microstructural information, this technique has some inherent drawbacks such as the possible generation of ion damage near sample surfaces.


Author(s):  
K.P.D. Lagerlof

Although most materials contain more than one phase, and thus are multiphase materials, the definition of composite materials is commonly used to describe those materials containing more than one phase deliberately added to obtain certain desired physical properties. Composite materials are often classified according to their application, i.e. structural composites and electronic composites, but may also be classified according to the type of compounds making up the composite, i.e. metal/ceramic, ceramic/ceramie and metal/semiconductor composites. For structural composites it is also common to refer to the type of structural reinforcement; whisker-reinforced, fiber-reinforced, or particulate reinforced composites [1-4].For all types of composite materials, it is of fundamental importance to understand the relationship between the microstructure and the observed physical properties, and it is therefore vital to properly characterize the microstructure. The interfaces separating the different phases comprising the composite are of particular interest to understand. In structural composites the interface is often the weakest part, where fracture will nucleate, and in electronic composites structural defects at or near the interface will affect the critical electronic properties.


Sign in / Sign up

Export Citation Format

Share Document