TY - GEN A1 - Kashkarov, Egor B. A1 - Nikitenkov, Nikolay A1 - Sutygina, Alina A1 - Syrtanov, Maxim S. A1 - Zakharchenko, S. A1 - Obrosov, Aleksei T1 - Influence of Plasma-Immersion Titanium-Ion Implantation on the Kinetics of Hydrogen Penetration into E110 Zirconium Alloy T2 - Journal of Surface Investigation: X-ray, Synchrotron and Neutron Techniques N2 - The influence of plasma-immersion titanium-ion implantation on the hydrogen saturation of E110 zirconium alloy is described. Titanium ions are implanted from the metal plasma of an arc discharge at an accelerating-pulse bias potential of 1.5 kV (the pulse-repetition frequency is 100 kHz, and the pulse length is 5 μs) for 30 min. The phase composition, morphology, and valence state of the alloy surface layer are studied. Comparative analysis of changes in the hardness and wear resistance of the alloy subjected to implantation is performed. It is demonstrated that the rate of hydrogen penetration into the surface-doped alloy decreases substantially at a gas-phase hydrogenation temperature of 400°C. KW - ion implantation KW - zirconium KW - titanium KW - hydrogen sorption KW - wear resistance KW - X-ray photoelectron spectroscopy Y1 - 2018 UR - https://link.springer.com/journal/11700 U6 - https://doi.org/10.1134/S102745101803031X SN - 1819-7094 VL - 12 IS - 3 SP - 570 EP - 575 ER - TY - GEN A1 - Shulepov, Ivan A. A1 - Kashkarov, Egor B. A1 - Stepanov, Igor B. A1 - Syrtanov, Maxim S. A1 - Sutygina, Alina A1 - Shanenkov, Ivan A1 - Obrosov, Aleksei A1 - Weiß, Sabine T1 - The Formation of Composite Ti-Al-N Coatings Using Filtered Vacuum Arc Deposition with Separate Cathodes T2 - Metals N2 - Ti-Al-N coatings were deposited on high-speed steel substrates by filtered vacuum arc deposition (FVAD) during evaporation of aluminum and titanium cathodes. Distribution of elements, phase composition, and mechanical properties of Ti-Al-N coatings were investigated using Auger electron spectroscopy (AES), X-ray diffraction (XRD), transmission electron microscopy (TEM) and nanoindentation, respectively. Additionally, tribological tests and scratch tests of the coatings were performed. The stoichiometry of the coating changes from Ti0.6Al0.4N to Ti0.48Al0.52N with increasing aluminum arc current from 70 A to 90 A, respectively. XRD and TEM showed only face-centered cubic Ti-Al-N phase with preferred orientation of the crystallites in (220) direction with respect to the sample normal and without precipitates of AlN or intermetallics inside the coatings. Incorporation of Al into the TiN lattice caused shifting of the (220) reflex to a higher 2θ angle with increasing Al content. Low content and size of microdroplets were obtained using coaxial plasma filters, which provides good mechanical and tribological properties of the coatings. The highest value of microhardness (36 GPa) and the best wear-resistance were achieved for the coating with higher Al content, thus for Ti0.48Al0.52N. These coatings exhibit good adhesive properties up to 30 N load in the scratch tests. KW - filtered vacuum arc KW - deposition KW - TiAlN KW - separate cathodes KW - phase composition KW - hardness KW - wear-resistance Y1 - 2017 UR - http://www.mdpi.com/2075-4701/7/11/497/htm U6 - https://doi.org/10.3390/met7110497 SN - 2075-4701 VL - 7 IS - 11 ER - TY - GEN A1 - Kashkarov, Egor B. A1 - Ryabchikov, Alexander I. A1 - Kurochkin, Alexander A1 - Syrtanov, Maxim S. A1 - Shevelev, Alexey A1 - Obrosov, Aleksei A1 - Weiß, Sabine T1 - Hydrogen Interaction with Deep Surface Modified Zr-1Nb Alloy by High Intensity Ti Ion Implantation T2 - Metals N2 - A deep surface modified TiZr layer was fabricated by high-intensity low-energy titanium ion implantation into zirconium alloy Zr-1Nb. Gas-phase hydrogenation was performed to evaluate protective properties of the modified layer against hydrogen permeation into Zr-1Nb alloy. The effects of ion implantation and hydrogen on microstructure, phase composition and elemental distribution of TiZr layer were analyzed by scanning electron microscopy, X-ray diffraction, and glow-discharge optical emission spectroscopy, respectively. It was revealed that TiZr layer (~10 μm thickness) is represented by α′ + α(TiZr) lamellar microstructure with gradient distribution of Ti through the layer depth. It was shown that the formation of TiZr layer provides significant reduction of hydrogen uptake by zirconium alloy at 400 and 500 °C. Hydrogenation of the modified layer leads to refinement of lamellar plates and formation of more homogenous microstructure. Hydrogen desorption from Ti-implanted Zr-1Nb alloy was analyzed by thermal desorption spectroscopy. Hydrogen interaction with the surface modified TiZr layer, as well as its resistance properties, are discussed. KW - zirconium alloy KW - titanium KW - low energy ion implantation KW - hydrogen KW - sorption KW - microstructure KW - morphology KW - martensitic phase Y1 - 2018 UR - https://www.mdpi.com/2075-4701/8/12/1081/htm U6 - https://doi.org/10.3390/met8121081 SN - 2075-4701 VL - 8 IS - 12 ER - TY - GEN A1 - Kashkarov, Egor B. A1 - Syrtanov, Maxim S. A1 - Murashkina, Tatyana A1 - Kurochkin, Alexander A1 - Shanenkova, Yulia A1 - Obrosov, Aleksei T1 - Hydrogen Sorption Kinetics of SiC-Coated Zr-1Nb Alloy T2 - Coatings N2 - This paper describes the influence of silicon carbide (SiC) coating on hydrogen sorption kinetics of zirconium alloy E110 (Zr-1Nb). Amorphous SiC coating of 1.5-μm thickness was deposited on Zr-1Nb alloy substrate by direct current magnetron sputtering of composite cathode. Hydrogen absorption by SiC-coated Zr-1Nb alloy significantly decreased due to low hydrogen permeability of the coating. Hydrogenation tests show that SiC coating provides protective properties against hydrogen permeation in the investigated temperature range of 350–450 °C. It was shown that hydrogenation of uncoated Zr-1Nb leads to formation of δ hydrides at 350 °C and δ and γ hydrides at higher temperatures whereas in the SiC-coated Zr-1Nb alloy only δ hydrides formed. Gradient hydrogen distribution through the SiC coating and H trapping in the carbon-rich interface was observed. The adhesion strength of the coating was ~5 N. Hydrogenation up to 450 °C for 5 h does not degrade the adhesion properties during scratch testing. KW - hydrogen sorption KW - hydrogenation KW - zirconium alloys KW - E110 (Zr-1Nb) KW - SiC coating KW - magnetron sputtering KW - adhesion Y1 - 2019 UR - https://www.mdpi.com/2079-6412/9/1/31 U6 - https://doi.org/10.3390/coatings9010031 SN - 2079-6412 VL - 9 IS - 1 ER -