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Rogozhkin SV, Klauz AV, Ke Y, Almásy L, Nikitin AA, Khomich AA, Bogachev AA, Gorshkova YE, Bokuchava GD, Kopitsa GP, Sun L. Study of Precipitates in Oxide Dispersion-Strengthened Steels by SANS, TEM, and APT. NANOMATERIALS (BASEL, SWITZERLAND) 2024; 14:194. [PMID: 38251158 PMCID: PMC11154373 DOI: 10.3390/nano14020194] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 12/09/2023] [Revised: 01/10/2024] [Accepted: 01/11/2024] [Indexed: 01/23/2024]
Abstract
In this work, the nanostructure of oxide dispersion-strengthened steels was studied by small-angle neutron scattering (SANS), transmission electron microscopy (TEM), and atom probe tomography (APT). The steels under study have different alloying systems differing in their contents of Cr, V, Ti, Al, and Zr. The methods of local analysis of TEM and APT revealed a significant number of nanosized oxide particles and clusters. Their sizes, number densities, and compositions were determined. A calculation of hardness from SANS data collected without an external magnetic field, or under a 1.1 T field, showed good agreement with the microhardness of the materials. The importance of taking into account two types of inclusions (oxides and clusters) and both nuclear and magnetic scattering was shown by the analysis of the scattering data.
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Affiliation(s)
- Sergey V. Rogozhkin
- Institute of Nuclear Physics and Engineering, National Research Nuclear University “MEPhI”, 115409 Moscow, Russia; (A.V.K.); (A.A.N.); (A.A.K.); (A.A.B.)
- National Research Center “Kurchatov Institute”, 123182 Moscow, Russia
| | - Artem V. Klauz
- Institute of Nuclear Physics and Engineering, National Research Nuclear University “MEPhI”, 115409 Moscow, Russia; (A.V.K.); (A.A.N.); (A.A.K.); (A.A.B.)
- National Research Center “Kurchatov Institute”, 123182 Moscow, Russia
| | - Yubin Ke
- Spallation Neutron Source Science Center, Dongguan 523803, China;
| | - László Almásy
- Institute for Energy Security and Environmental Safety, HUN-REN Centre for Energy Research, 1121 Budapest, Hungary;
| | - Alexander A. Nikitin
- Institute of Nuclear Physics and Engineering, National Research Nuclear University “MEPhI”, 115409 Moscow, Russia; (A.V.K.); (A.A.N.); (A.A.K.); (A.A.B.)
- National Research Center “Kurchatov Institute”, 123182 Moscow, Russia
| | - Artem A. Khomich
- Institute of Nuclear Physics and Engineering, National Research Nuclear University “MEPhI”, 115409 Moscow, Russia; (A.V.K.); (A.A.N.); (A.A.K.); (A.A.B.)
- National Research Center “Kurchatov Institute”, 123182 Moscow, Russia
| | - Aleksei A. Bogachev
- Institute of Nuclear Physics and Engineering, National Research Nuclear University “MEPhI”, 115409 Moscow, Russia; (A.V.K.); (A.A.N.); (A.A.K.); (A.A.B.)
- National Research Center “Kurchatov Institute”, 123182 Moscow, Russia
| | - Yulia E. Gorshkova
- Joint Institute for Nuclear Research, 141980 Dubna, Russia; (Y.E.G.); (G.D.B.)
- Institute of Physics, Kazan Federal University, 420008 Kazan, Russia
| | - Gizo D. Bokuchava
- Joint Institute for Nuclear Research, 141980 Dubna, Russia; (Y.E.G.); (G.D.B.)
| | - Gennadiy P. Kopitsa
- Petersburg Nuclear Physics Institute Named by B.P. Konstantinov of NRC “Kurchatov Institute”, 188300 Gatchina, Russia;
| | - Liying Sun
- Institute of New Materials, Guangdong Academy of Sciences, Guangzhou 510650, China;
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Kocich R, Opěla P, Marek M. Influence of Structure Development on Performance of Copper Composites Processed via Intensive Plastic Deformation. MATERIALS (BASEL, SWITZERLAND) 2023; 16:4780. [PMID: 37445093 DOI: 10.3390/ma16134780] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/20/2023] [Revised: 06/27/2023] [Accepted: 06/30/2023] [Indexed: 07/15/2023]
Abstract
Designing a composite, possibly strengthened by a dispersion of (fine) oxides, is a favorable way to improve the mechanical characteristics of Cu while maintaining its advantageous electric conductivity. The aim of this study was to perform mechanical alloying of a Cu powder with a powder of Al2O3 oxide, seal the powder mixture into evacuated Cu tubular containers, i.e., cans, and apply gradual direct consolidation via rotary swaging at elevated temperatures, as well as at room temperature (final passes) to find the most convenient way to produce the designed Al2O3 particle-strengthened Cu composite. The composites swaged with the total swaging degree of 1.83 to consolidated rods with a diameter of 10 mm were subjected to measurements of electroconductivity, investigations of mechanical behavior via compression testing, and detailed microstructure observations. The results revealed that the applied swaging degree was sufficient to fully consolidate the canned powders, even at moderate and ambient temperatures. In other words, the final structures, featuring ultra-fine grains, did not exhibit voids or remnants of unconsolidated powder particles. The swaged composites featured favorable plasticity regardless of the selected processing route. The flow stress curves exhibited the establishment of steady states with increasing strain, regardless of the applied strain rate. The electroconductivity of the composite swaged at elevated temperatures, featuring homogeneous distribution of strengthening oxide particles and the average grain size of 1.8 µm2, reaching 80% IACS (International Annealed Copper Standard).
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Affiliation(s)
- Radim Kocich
- Faculty of Materials Science and Technology, VŠB-Technical University of Ostrava, 17. Listopadu 2172/15, 70800 Ostrava-Poruba, Czech Republic
| | - Petr Opěla
- Faculty of Materials Science and Technology, VŠB-Technical University of Ostrava, 17. Listopadu 2172/15, 70800 Ostrava-Poruba, Czech Republic
| | - Martin Marek
- Department of Technical Studies, College of Polytechnics Jihlava, Tolsteho 16, 58601 Jihlava, Czech Republic
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Grain Refinement and Improved Mechanical Properties of EUROFER97 by Thermo-Mechanical Treatments. APPLIED SCIENCES-BASEL 2021. [DOI: 10.3390/app112210598] [Citation(s) in RCA: 4] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 11/17/2022]
Abstract
EUROFER97 steel plates for nuclear fusion applications are usually manufactured by hot rolling and subsequent heat treatments: (1) austenitization at 980 °C for 30 min, (2) rapid cooling and (3) tempering at 760 °C for 90 min. An extended experimental campaign was carried out with the scope of improving the strength of the steel without a loss of ductility. Forty groups of samples were prepared by combining cold rolling with five cold reduction ratios (20, 40, 50, 60 and 80%) and heat treatments at eight different temperatures in the range 400–750 °C (steps of 50 °C). This work reports preliminary results regarding the microstructure and mechanical properties of all the cold-rolled samples and the effects of heat treatments on the samples deformed with the greater CR ratio (80%). The strength of deformed samples decreased as heat treatment temperature increased and the change was more pronounced in the samples cold-rolled with greater CR ratios. After heat treatments at temperature up to 600 °C yield stress (YS) and ultimate tensile strength (UTS) of samples deformed with CR ratio of 80% were significantly larger than those of standard EUROFER97 but ductility was lower. On the contrary, the treatment at 650 °C produced a fully recrystallized structure with sub-micrometric grains which guarantees higher strength and comparable ductility. The work demonstrated that EUROFER97 steel can be strengthened without compromising its ductility; the most effective process parameters will be identified by completing the analyses on all the prepared samples.
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Fundamental Improvement of Creep Resistance of New-Generation Nano-Oxide Strengthened Alloys via Hot Rotary Swaging Consolidation. MATERIALS 2020; 13:ma13225217. [PMID: 33218194 PMCID: PMC7699154 DOI: 10.3390/ma13225217] [Citation(s) in RCA: 7] [Impact Index Per Article: 1.4] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 10/22/2020] [Revised: 11/13/2020] [Accepted: 11/16/2020] [Indexed: 12/05/2022]
Abstract
New-generation oxide dispersion-strengthened (ODS) alloys with a high volume fraction of nano-oxides of 5% are intended to become the leading creep- and oxidation-resistant alloys for applications at 1100–1300 °C. Hot consolidation of mechanically alloyed powders by intensive plastic deformation followed by heat treatment of the alloys are the key aspects for achieving top creep properties, typically ensured by a coarse-grained microstructure strengthened with homogeneously dispersed, very stable yttrium nano-oxides. The rotary swaging method proves to be favourable for hot consolidation of the new-generation ODS alloy presented. Compared to specimens consolidated by hot rolling, consolidation by hot rotary swaging predetermines the formation of coarse grains with a very high aspect ratio during subsequent secondary recrystallization. Such a grain morphology increases the creep strength of the new-generation ODS alloy considerably.
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