A.A. Stepashkin
National University of Science and Technology
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Publication
Featured researches published by A.A. Stepashkin.
Inorganic Materials: Applied Research | 2014
A.A. Stepashkin; D.I. Chukov; V. V. Cherdyntsev; S.D. Kaloshkin
The processes of chemical and thermal oxidization modifying the surface of UKN-5000 and VMN-4 carbon fibers are studied to provide their adhesion to a polymer matrix during formation of a composite material. Impact of the surface treatment parameters on structure and mechanical properties of the carbon fibers is studied. It is shown that the surface modification of the fibers is an efficient way to strengthen adhesion of the fibers to a polymer matrix, which provides valuable realization of mechanical properties of the fibers during their work in the content of a composite.
Inorganic Materials: Applied Research | 2014
D.I. Chukov; A.A. Stepashkin; V.V. Tcherdyntsev; S.D. Kaloshkin; V. D. Danilov
The structure and properties of carbon-filled composite materials for tribological applications based on ultrahigh molecular weight polyethylene that are obtained by deformation-induced solid-phase synthesis are investigated. It is shown that the addition of graphite and carbon fiber to a polymer material allows one to improve its tribological and thermophysical properties. An increase in the physical and mechanical characteristics is observed only upon the addition of carbon fiber, while the inclusion of graphite in a matrix polymer gives rise to embrittlement of the material.
Archive | 2018
A.A. Stepashkin; D.I. Chukov; L.K. Olifirov; A.I. Salimon; V.V. Tcherdyntsev
Powders of icosahedral Al65Cu23Fe12 and decagonal Al73Cu11Cr16 quasicrystalline intermetallics were synthesized by the mechanical alloying in combination with subsequent annealing. The conditions of mechanical alloying were purposely chosen to obtain the composite materials filled by dispersed (<3 μm) quasicrystalline particles. A number of silanes were tested for the surface treatment of quasicrystalline particles in order to provide the uniform distribution of quasicrystals over the polymer melt and chemical binding with the polymer matrix and the most efficient silane type was found. The composites based on ethylene-vinyl acetate EVA, polysulphone PSU, and polyphenylene sulfide PPS were produced by the filling with quasicrystalline powders. The study of rheological characteristics has shown that high fluidity of the melt is retained, while uniform distribution of quasicrystalline particles over the polymer is provided. The data of mechanical and physical properties are reported.
Journal of Thermoplastic Composite Materials | 2018
D.I. Chukov; A.A. Stepashkin; V.V. Tcherdyntsev; L.K. Olifirov; S.D. Kaloshkin
Structural, mechanical, and thermal properties of polyphenylene sulfide (PPS) filled with Al-Cu-Fe quasicrystals particles were studied. It was shown that the introducing of quasicrystalline fillers into the polymer matrix results in the increase in Young’s modulus, hardness, and toughness of the polymer. Quasicrystalline fillers can improve thermal properties of PPS, including heat resistance index, Vicat softening temperature, thermal diffusivity, and thermal conductivity.
International Journal of Materials Research | 2018
A.A. Stepashkin; D.I. Chukov; Mikhail Yu. Zadorozhnyy; S.D. Kaloshkin; Ivan S. Pyatov; Magomed Ya. Deniev
Abstract The paper presents the results of thermal studies of carbonized composites based on carbon filled nitrile-butadiene rubber. It was shown that carbon fibers (CF) increase the thermal conductivity of the composites and reduce their linear expansion, whereas carbon nanotubes (CNTs) practically do not change the linear expansion of the composites; instead, they effectively increase their thermal conductivity. The thermal conductivity of the composites with 25 PHR of CNTs exceeds the thermal conductivity of the composites reinforced with 25 and 50 PHR of CF. Thus, CNTs more effectively increase thermal conductivity than CF due to the appearance of additional heat transfer bridges. It was found that the composites have very high values of the storage modulus at room temperature (16–20 GPa), and it is about 4–5 GPa at 300°C, which is almost impossible for traditional polymer matrix composites.
Composites Part B-engineering | 2015
D.I. Chukov; A.A. Stepashkin; A.V. Maksimkin; V.V. Tcherdyntsev; S.D. Kaloshkin; K.V. Kuskov; V.I. Bugakov
Journal of Alloys and Compounds | 2014
Ilya Mazov; Igor Ilinykh; V.L. Kuznetsov; A.A. Stepashkin; K.S. Ergin; Dmitry S. Muratov; V.V. Tcherdyntsev; Denis Kuznetsov; Jean-Paul Issi
Journal of Alloys and Compounds | 2014
D.I. Chukov; A.A. Stepashkin; M.V. Gorshenkov; V.V. Tcherdyntsev; S.D. Kaloshkin
Composites Part B-engineering | 2016
F.S. Senatov; K.V. Niaza; A.A. Stepashkin; S.D. Kaloshkin
Journal of Alloys and Compounds | 2014
Dmitry S. Muratov; Denis Kuznetsov; I.A. Il’inykh; I.N. Mazov; A.A. Stepashkin; V.V. Tcherdyntsev