作者的详细信息

Popov, V.

栏目 标题 文件
卷 117, 编号 12 (2016) Electrical and Magnetic Properties Study of the structure of interlayer boundaries in [Co/Cu]10 superlattices by methods of NMR and X-ray reflectometry
卷 117, 编号 12 (2016) Structure, Phase Transformations, and Diffusion Calculations of the influence of alloying elements (Al, Cr, Mn, Ni, Si) on the Solubility of carbonitrides in low-carbon low-alloy steels
卷 118, 编号 4 (2017) Structure, Phase Transformations, and Diffusion Emission Mössbauer spectroscopy of grain boundaries in ultrafine-grained W and Mo produced by severe plastic deformation
卷 118, 编号 9 (2017) Structure, Phase Transformations, and Diffusion Evolution of the structure of tin bronze under dynamic channel-angular pressing
卷 118, 编号 11 (2017) Structure, Phase Transformations, and Diffusion Structure of nickel–copper alloys subjected to high-pressure torsion to saturation stage
卷 118, 编号 11 (2017) Structure, Phase Transformations, and Diffusion Grain-boundary diffusion of cobalt in submicrocrystalline molybdenum obtained by high-pressure torsion
卷 119, 编号 4 (2018) Electrical and Magnetic Properties Influence of the Interface State on the Magnetoresistive Properties of Co/Cu Superlattices
卷 119, 编号 4 (2018) Structure, Phase Transformations, and Diffusion Evolution of the Structure of Cu–1% Sn Bronze under High Pressure Torsion and Subsequent Annealing
卷 119, 编号 6 (2018) Structure, Phase Transformations, and Diffusion Simulation of the Effect of Hot Deformation on the Austenite Grain Size of Low-Alloyed Steels with Carbonitride Hardening
卷 119, 编号 8 (2018) Structure, Phase Transformations, and Diffusion Simulation of the Evolution of Carbonitride Particles of Complex Composition upon Hot Deformation of a Low-Alloyed Steel
卷 119, 编号 13 (2018) Structure, Phase Transformations, and Diffusion Computer Simulation for the Prediction of Phase Composition and Structure of Low-Alloyed Steels with Carbonitride Hardening
卷 120, 编号 4 (2019) Structure, Phase Transformations, and Diffusion Prediction of the Phase Composition of High-Entropy Аlloys Based on Cr–Nb–Ti–V–Zr Using the Calphad Method