Добірка наукової літератури з теми "Nickel sublayer"

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Статті в журналах з теми "Nickel sublayer"

1

Vikulova, Evgeniia S., Ksenya I. Karakovskaya, Ilya V. Korolkov, et al. "Application of Biocompatible Noble Metal Film Materials to Medical Implants: TiNi Surface Modification." Coatings 13, no. 2 (2023): 222. http://dx.doi.org/10.3390/coatings13020222.

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Анотація:
Recently, film materials based on the combination of noble metals have showed promising results for surface modification of medical implants, allowing both to improve biocompatibility and to acquire the increased antibacterial effect. An important challenge here is to combine the developed coating morphology, which is favorable for biological response, with a high protective function, which, on the contrary, requires a compact coating microstructure. In this work, we aimed to solve this problem with respect to the TiNi implant material. We have tested two types of compact thin sublayers: Iridi
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2

Buchanan, Jacob D., Vamsi Borra, Md Maidul Islam, Daniel G. Georgiev, and Srikanth Itapu. "Tin Whisker Growth Suppression Using NiO Sublayers Fabricated by Dip Coating." Condensed Matter 7, no. 1 (2022): 7. http://dx.doi.org/10.3390/condmat7010007.

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Whiskers are small crystalline growths, which can grow from certain metals or alloys. Reaching up to several millimeters long, whiskers have the potential to cause device failures due to short circuits and contamination by debris. Tin (Sn) is one such metal that is particularly prone to whisker development. Until the 2006 RoHS Initiative, lead (Pb) was added to tin in small amounts (up to 2%) to greatly reduce the growth of whiskers. Since then, however, industry has switched to lead-free tin solders and coatings, and the issue of whisker growth on tin has attracted new interest. A reactive-sp
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3

Jikan, S. S., S. S. Abdullah, M. H. Ismail, N. A. Ismail, and Nur Azam Badarulzaman. "Multilayer of Ni/Cu Coating Produced via Electroplating Process." Applied Mechanics and Materials 465-466 (December 2013): 891–95. http://dx.doi.org/10.4028/www.scientific.net/amm.465-466.891.

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Анотація:
Nickel (Ni)/ Copper (Cu) multilayer were deposited on Cu substrate by electroplating process using dual bath technique. Individual sample of multilayer with sublayer thicknesses of 1 μm, 5 μm, 10 μm and 50 μm have been produced. The structure of the multilayer was characterized by X-Ray Diffraction and Scanning Electron Microscopy whereas one of the mechanical properties of the samples was investigated by means of Vickers Hardness. The results showed that the surface hardness of the coated Cu substrate increases if compared to that of pure Cu substrate. Additionally, these values increased whe
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4

Parkin, A. A., S. S. Zhatkin, E. A. Minakov, and A. B. Semin. "Structure and wear resistance of carbide-containing multilayer coating after oxyacetylene welding." Izvestiya MGTU MAMI 8, no. 4-2 (2014): 34–43. http://dx.doi.org/10.17816/2074-0530-67634.

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Анотація:
The paper is devoted to study of structure, mechanical properties and wear resistance of multilayer coating formed by oxyacetylene welding carbide-containing rods, powder material with nickel sublayer. The amount of wear depends on the structure of the deposited material and welding conditions.
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5

Kudryashov, A.E., E.I. Zamulaeva, E.A. Levashov, F.V. Kiryukhantsev-Korneev, A.N. Sheveiko, and N.V. Shvyndina. "Application of Electrospark Deposition Technology and Electrode Materials Modified by Self-Propagating High-Temperature Synthesis to Improve Resistance of Hot-Rolling Mill Forming Rolls. Part 2. Structure and Properties of Coatings Formed." Elektronnaya Obrabotka Materialov 55(2) (April 15, 2019): 10–22. https://doi.org/10.5281/zenodo.2629552.

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Electrospark deposition of coatings onto the SPKhN-60 white cast iron samples involved two stages. A barrier sublayer was deposited at the first stage and a multi-functional protective coating was deposited at the second stage. The effect of the sublayer on coating properties upon application of STIM-40NAOKn (TiC&ndash;NiAl+ZrO<sub>2</sub><sup>nano</sup>) and STIM-11OKn (TiB<sub>2</sub>&ndash;NiAl+ZrO<sub>2</sub><sup>nano</sup>) electrodes was studied. The coating structures were investigated. The grain size of the refractory phase was found to be smaller than 100 nm. Application of double-lay
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6

Guzanov, B. N., N. B. Pugacheva, and T. M. Bykova. "Erosion resistance of a combined multilayer coating protecting critical parts of modern gas turbine engines." Diagnostics, Resource and Mechanics of materials and structures, no. 2 (April 2021): 6–21. http://dx.doi.org/10.17804/2410-9908.2021.2.006-021.

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Анотація:
Comprehensive studies of the chemical composition, microstructure, and thickness of a combined multilayer coating on a heat-resistant nickel alloy are presented. The distribution pat-tern of chemical elements over the coating thickness for all the layers, namely the inner aluminosili-cated layer, the plasma sublayer, and the outer heat-insulating layer, has been established. Surface roughness was determined at all the stages of coating application and after testing. The results of comparative tests of corrosion-erosion resistance and resistance to burn-through of a diffusion aluminosilicide co
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7

Gierczak, Mirosław Gracjan, Eugeniusz Prociów, and Andrzej Dziedzic. "Fabrication and characterization of mixed thin-/thick-film thermoelectric microgenerator based on constantan/chromium and silver arms." Microelectronics International 37, no. 2 (2020): 109–14. http://dx.doi.org/10.1108/mi-12-2019-0081.

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Анотація:
Purpose This paper aims to focus on the fabrication and characterization of mixed thin-/thick-film thermoelectric microgenerators, based on magnetron sputtered constantan (copper–nickel alloy) and screen-printed silver. To improve the adhesion of the constantan layer to the applied substrates, the additional chromium sublayer was used. The aim of the study was to investigate the influence of chromium sublayer on the electrical and thermoelectric properties of such hybrid microgenerators. Design/methodology/approach Fabrication of such structures consisted of several steps – magnetron sputterin
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8

Kravchenko, D. V., I. A. Kozlov, and A. A. Nikiforov. "METHODS FOR PREPARING THE SURFACE OF ALUMINUM ALLOYS FOR ELECTROPLATING (review)." Proceedings of VIAM, no. 6 (2021): 82–99. http://dx.doi.org/10.18577/2307-6046-2021-0-6-82-99.

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Анотація:
A review of modern scientific publications in the field of methods for preparing the surface of aluminum alloys for electroplating is presented. It is shown that the most widely used methods of preparation are: zinc treatment, high-porosity anodic oxidation and immersion nickel plating. A number of combined methods for preparing the surface of aluminum alloys for electroplating are given. Methods of direct application of electroplating coatings on aluminum and its alloys without the use of a sublayer, both by electrolytic and chemical methods, are considered.
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9

Karaś, M., M. Nowak, M. Opyrchał, M. Bigaj, and A. Najder. "Influence of the Zinc Sublayer Method Production and Heat Treatment on the Microhardness of the Composite Ni-Al2O3 Coating Deposited on the 5754 Aluminium Alloy." Archives of Metallurgy and Materials 59, no. 1 (2014): 355–58. http://dx.doi.org/10.2478/amm-2014-0059.

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Анотація:
Abstract In this study, the effect of zinc interlayer on the adhesion of nickel coatings reinforced with micrometric Al2O3 particles was examined. Nickel coating was applied by electroplating on EN AW - 5754 aluminium alloy using Watts bath at a concentration of 150 g/l of nickel sulphate with the addition of 50 g/l of Al2O3. The influence of zinc intermediate coating deposited in single, double and triple layers on the adhesion of nickel coating to aluminium substrate was also studied. The adhesion was measured by the thermal shock technique in accordance with PN-EN ISO 2819. The microhardnes
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10

Meuleman, W. R. A., S. Roy, L. Péter, and I. Varga. "Effect of Current and Potential Waveforms on Sublayer Thickness of Electrodeposited Copper-Nickel Multilayers." Journal of The Electrochemical Society 149, no. 10 (2002): C479. http://dx.doi.org/10.1149/1.1503812.

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