Micromechanical and tribological properties of nanocrystalline coatings of iron-tungsten alloys electrodeposited from citrate-ammonia solutions
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BOBANOVA, Zh., DIKUSAR, Aleksandr , CESIULIS, Henrikas, CELIS, Jean-Pierre, TSYNTSARU, Natalia, PROSYCEVAS, Igoris. Micromechanical and tribological properties of nanocrystalline coatings of iron-tungsten alloys electrodeposited from citrate-ammonia solutions. In: Russian Journal of Electrochemistry, 2009, vol. 45, pp. 895-901. ISSN 1023-1935. DOI: https://doi.org/10.1134/S1023193509080096
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Russian Journal of Electrochemistry
Volumul 45 / 2009 / ISSN 1023-1935 /ISSNe 1608-3342

Micromechanical and tribological properties of nanocrystalline coatings of iron-tungsten alloys electrodeposited from citrate-ammonia solutions

DOI:https://doi.org/10.1134/S1023193509080096

Pag. 895-901

Bobanova Zh.1, Dikusar Aleksandr 1, Cesiulis Henrikas2, Celis Jean-Pierre3, Tsyntsaru Natalia1, Prosycevas Igoris4
 
1 Institute of Applied Physics, Academy of Sciences of Moldova,
2 Vilnius University,
3 Catholic University of Leuven (KU Leuven),
4 Kaunas University of Tehnology
 
 
Disponibil în IBN: 16 ianuarie 2024


Rezumat

The correlation between the composition, morphology, and properties of Fe-W alloy coatings containing up to 29 at % tungsten was investigated by means of scanning electron microscopy, X-ray diffraction analysis, and the wear resistance and nanohardness measurements. The coatings were deposited from the citrate-ammonia bath at a direct current, the current densities were ranged from 10 to 100 mA/cm2. It is shown that, in contrast to metallurgical iron, the Fe-W coatings are nanocrystalline (amorphous, the grain size is 3.0-4.0 nm). This structure of alloys allows us to produce the coatings with a nanohardness of ∼ 13 GPa, which is comparable to the electrolytic chromium coatings. The study of wear resistance of thus obtained coatings reveals their oxidation in the course of dry friction; as a result, the oxygen content in the debris increases by 2-3 times, and the wear volume due to the tribooxidation exceeds that for similar hard Co-W and electrolytic chromium coatings. 

Cuvinte-cheie
Ammonia, Chromium, Curricula, Debris, Electrodeposition, Friction, Hard coatings, Iron alloys, microhardness, Nanohardness, oxygen, scanning electron microscopy, tribology, tungsten, Tungsten alloys, wear resistance, X ray diffraction analysis