Персона: Никитин, Александр Александрович
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Институт ядерной физики и технологий
Цель ИЯФиТ и стратегия развития - создание и развитие научно-образовательного центра мирового уровня в области ядерной физики и технологий, радиационного материаловедения, физики элементарных частиц, астрофизики и космофизики.
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Александр Александрович
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- ПубликацияТолько метаданныеIon Radiation Impact on Microstructure and Mechanical Properties of W-6Re Alloy at 500 degrees C(2020) Nikitin, A. А.; Bobyr, N. P.; Rogozhkin, S. V.; Fedin, P. A.; Никитин, Александр Александрович; Рогожкин, Сергей ВасильевичThe paper reports the results of the ion irradiation impact on a monocrystalline tungsten alloy, W-6Re. This material is considered for use in the design of fusion reactors. Irradiation was carried out in order to simulate radiation effects and analyze the radiation resistance of the fusion reactor material. Specimens were irradiated with 5.6 MeV Fe ions at 500 degrees C up to a maximum damage dose of 8 dpa. Microstructure of W-6Re was analyzed before and after irradiation. It is shown with transmission electron microscopy that the formation of structural defects, dislocation loops with sizes of 2-15 nm and a number density of 1.2 x 10(23) m(-3) occurs as a result of irradiation. Detailed analysis by atomic probe tomography microscope revealed the decomposition of the solid solution with the formation of nanoscale segregations enriched in rhenium by 18 at %. The radiation-induced hardening of the irradiated layer is determined by nanoindentation. The strength increment was 1.6 GPa.
- ПубликацияТолько метаданныеNanostructure Evolution of Oxide Dispersion Strengthened Steels under Fe Ion Irradiation at 350°C(2020) Khomich, A. A.; Khoroshilov, V. V.; Kulevoy, T. V.; Fedin, P. A.; Rogozhkin, S. V.; Bogachev, A. А.; Nikitin, A. A.; Zaluzhnyi, A. G.; Рогожкин, Сергей Васильевич; Богачев, Алексей Александрович; Никитин, Александр Александрович; Залужный, Александр Георгиевич© 2020, Pleiades Publishing, Ltd.Abstract: Improved mechanical properties of oxide dispersion strengthened (ODS) steels, the advanced materials for the reactor core, are due to the high density of uniformly distributed nanosized oxide inclusions. Transformation of the nanostructure of ODS steels under irradiation determines their stability during operation in the reactor conditions. In this work, three ODS steels are studied: Eurofer ODS, 10Cr ODS, and KP-3 ODS with different alloying systems. In these steels, the chromium content varies from 9 to 14 at %; such alloying elements as V, Ti, Al, W, and Mn are present in different proportions. The effect of irradiation with iron ions up to 3, 6, and 30 dpa at a temperature of 350°C was studied. The radiation-induced changes were analyzed by transmission electron microscopy and atom probe tomography. Although the sizes of oxide inclusions remained almost without change under irradiation, a decrease in their number density was observed in 10Cr ODS and KP-3 ODS steels, while the number density of oxides in Eurofer ODS steel did not change under the irradiation to 30 dpa. On the whole, the strengthening of the ODS steels due to inclusions during the irradiation to 30 dpa at 350°C changed insignificantly, which indicates their radiation resistance and their low propensity for low-temperature radiation strengthening and embrittlement.
- ПубликацияТолько метаданныеSimulation of Ion Paths in the Target Material for the Injection Complex of the BELA Facility(2019) Ziiatdinova, A. V.; Fedin, P. A.; Nikitin, A. A.; Rogozhkin, S. V.; Kulevoy, T. V.; Федин, Петр Алексеевич; Никитин, Александр Александрович; Рогожкин, Сергей Васильевич; Кулевой, Тимур Вячеславович© 2019, Pleiades Publishing, Ltd.To realize the simulation experiments with the use of two ion beams at the injection complex of the BELA accelerator (Based on ECR ion source Linear Accelerator), it is necessary to determine the energy and irradiation angle of the beam of light ions which will be implanted into the region of radiation damage induced by heavy-ion beam. The depth of light-ion implantation is determined by the energy and kind of particles initiating the damage, as well as by their incidence angle. It is supposed that the incidence direction of heavy ions will coincide with the normal to the specimen surface. In our work, the necessary implantation zone for the iron ion beam with an energy of 3.2 MeV is located at depths of 300–800 nm. The simulation of the hydrogen and helium ion paths in the material of the iron target in the energy range from 150 to 600 keV at the angle to the normal from 0° to 65° is performed. The range of energies and irradiation angles for the hydrogen and helium ions are determined for the implantation into the radiation-induced defect-formation zone.
- ПубликацияТолько метаданныеStudy of Silicon and the Transition Layer between Titanium and Titanium Oxide by Laser-Assisted Atom Probe Tomography(2020) Raznitsyna, I. A.; Raznitsyn, O. A.; Lukyanchuk, A. A.; Shutov, A. S.; Khomich, A. A.; Khoroshilov, V. V.; Nikitin, A. A.; Aleev, A. A.; Rogozhkin, S. V.; Разницын, Олег Анатольевич; Лукьянчук, Антон Алексеевич; Шутов, Антон Сергеевич; Никитин, Александр Александрович; Алеев, Андрей Аскольдович; Рогожкин, Сергей Васильевич© 2020, Pleiades Publishing, Ltd.Abstract: Monitoring the characteristics of nanoscale objects is a necessary step in the development of new materials and complex low-dimensional systems. Atom-probe tomography is among the few methods that allow one to study nanoscale objects with a complex chemical composition. However, preliminary optimization of the instrument parameters is necessary for each speciment to obtain the most accurate characteristics of the materials. In this study, the results of optimization of conditions for the analysis of silicon and the titanium–titanium-oxide transition layer on a APPLE-3D atom-probe tomograph with the purpose of refining the atom-probe-tomography technique for metal–semiconductor structures are presented. The optimal laser-pulse power for studying mixtures of these materials is determined. The atomic structure of the titanium–titanium-oxide interface layer is visualized, and the concentration profiles of evaporated Ti and TiOx ions in the transition layer are obtained.
- ПубликацияТолько метаданныеStudy of Microscopic Origins of Radiation Hardening of Eurofer 97 in Simulation Experiment with Ion Irradiation(2019) Khomich, A. A.; Iskandarov, N. A.; Khoroshilov, V. V.; Lukyanchuk, A. A.; Rogozhkin, S. V.; Nikitin, A. A.; Bogachev, A. A.; Рогожкин, Сергей Васильевич; Никитин, Александр Александрович; Богачев, Алексей Александрович© 2019, Pleiades Publishing, Ltd.Abstract: Low-temperature radiation hardening of prospective structural steel Eurofer 97 as the material for the first wall of the DEMO fusion reactor is studied in this work. Specimens of Eurofer 97 steel were irradiated with Fe ions up to 10 dpa at temperatures of 250, 300 and 400°C. Irradiated samples were studied by transmission electron microscopy and atom probe tomography. TEM study of irradiated samples showed preferential formation of dislocation loops at all temperatures of irradiation. Pair-correlation function analysis detected the initial stage of matrix solid solution decomposition of Eurofer 97 steel only at the temperature of 400°C. Detected microscopic changes and calculated hardening in the framework of the DBH (dispersed barrier hardening) model have shown that formation of dislocation loops is the main origin of low temperature radiation hardening of Eurofer 97 under irradiation with Fe ions with fluence up to 10 dpa.
- ПубликацияТолько метаданныеQuantitative Analysis of Carbide Phases in Medium-Carbon Steel After Low-Temperature Tempering(2019) Ryabov, V. V.; Khlusova, E. I.; Zisman, A. A.; Luk'yanchuk, A. A.; Rogozhkin, S. V.; Nikitin, A. A.; Рогожкин, Сергей Васильевич; Никитин, Александр Александрович© 2019, Springer Science+Business Media, LLC, part of Springer Nature. Structural features of high-strength wear-resistant steel formed after tempering at different temperatures are investigated. Temperature dependences are determined for steel hardness and impact strength. Temperature ranges are recorded for intermediate carbide formation, cementite particle formation, and residual austenite decomposition. The lath structure and carbide particle distribution are analyzed using transmission electron microscopy. Neutron diffraction is used to study the dependence of the proportion of retained austenite on temperature. Atom probe tomography is used to analyze micro-inhomogeneity in carbon and alloying element distribution.
- ПубликацияТолько метаданныеAtom Probe Tomography of the VV751P Nickel-Based Superalloy(2020) Ber, L. B.; Khomich, A. A.; Raznitsyn, O. A.; Lukyanchuk, A. A.; Rogozhkin, S. V.; Nikitin, A. A.; Zaluzhny, A. G.; Рогожкин, Сергей Васильевич; Никитин, Александр Александрович; Залужный, Александр Георгиевич© 2020, Pleiades Publishing, Ltd.Abstract: This work presents the results of the study of three different blanks used for the production of disks for gas-turbine engines made of a granular Ni-based superalloy. The blanks differed in the heat treatments performed and in the complexes of mechanical characteristics. The scanning electron microscopy of the studied materials showed that the size of the γ-matrix grains was 30–50 micrometers. In addition, particles of the γ and γ' phases with a size from 10 to 70 nm were revealed in the volumes of all blanks. The morphology of these particles has been studied. Within the particles of the γ' phase, homogeneously distributed equiaxed clusters of atoms of γ-forming elements were revealed with a size of 1–4 nm and flattened clusters of the same size and the same chemical composition aligned into chains. In the particles of both phases and in the transition layers between them, concentrations of the alloying components and impurities have been determined. In the studied volumes of the three different blanks of the disks, the volume fractions of the γ' phase were found to be 68 ± 1, 61 ± 2, and 62 ± 4%.
- ПубликацияТолько метаданныеComprehensive Analysis of Nanostructure of Oxide Dispersion Strengthened Steels as Prospective Materials for Nuclear Reactors(2020) Khomich, A. A.; Lukyanchuk, A. A.; Raznitsyn, O. A.; Shutov, A. S.; Rogozhkin, S. V.; Bogachev, A. А.; Nikitin, A. A.; Рогожкин, Сергей Васильевич; Богачев, Алексей Александрович; Никитин, Александр Александрович© 2020, Pleiades Publishing, Ltd.Abstract: The enhanced mechanical properties of oxide dispersion-strengthened (ODS) steels are mainly due to the high density of homogeneously distributed oxide inclusions. It is well known that some alloying elements, such as Ti, V, and Al, play an important role in the formation of oxides/nanoclusters and influence the density and size of these inclusions. In this paper, a wide range of ODS steels containing different alloying elements were studied. The microstructural analysis was performed using transmission electron microscopy and atom probe tomography. Different types of inclusions were found in the steels: oxides of the Y–Ti–O or Y–Al–O types with sizes of ~2–15 nm, and nanoclusters (2–5 nm) enriched in Y, O, and Cr, as well as Ti, V, and Al, when these elements were present in the material. It was shown that oxides made the main contribution to the steel strengthening, while the cluster contribution was comparable with that of oxides only in Austenitic ODS and 14Cr ODS steels.
- ПубликацияТолько метаданныеSimulation Experiments at the Heavy Ion Accelerator HIPr(2022) Fedin, P. A.; Pryanishnikov, K. E.; Kulevoy, T. V.; Abin, D. A.; Rudnev, I. A.; Nikitin, A. A.; Rogozhkin, S. V.; Кулевой, Тимур Вячеславович; Абин, Дмитрий Александрович; Руднев, Игорь Анатольевич; Никитин, Александр Александрович; Рогожкин, Сергей Васильевич
- ПубликацияТолько метаданныеNanostructure of Oxide Dispersion-Strengthened Steel Mechanically Alloyed with Intermetallic Fe3Y(2024) Rogozhkin, S. V.; Klauz, A. V.; Nikitin, A. A.; Khalyavina, A. A.; Raznitsyn, O. A.; Bogachev, A. А.; Iskandarov, N. A.; Zaluzhny, A. G.; Рогожкин, Сергей Васильевич; Клауз, Артём Вадимович; Никитин, Александр Александрович; Халявина, Алена Андреевна; Разницын, Олег Анатольевич; Богачев, Алексей Александрович; Искандаров, Насиб Амирхан-Оглы; Залужный, Александр Георгиевич