superhard coatings
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Wear ◽  
2021 ◽  
pp. 203835
Author(s):  
Evgeny V. Kharanzhevskiy ◽  
Aleksey G. Ipatov ◽  
Aleksey V. Makarov ◽  
Faat Z. Gil`mutdinov ◽  
Natalia N. Soboleva ◽  
...  

Author(s):  
М.Х. Гаджиев ◽  
Р.М. Эмиров ◽  
А.Э. Муслимов ◽  
М.Г. Исмаилов ◽  
В.М. Каневский

Results of the formation of superhard coatings in the low-temperature nitrogen plasma treatment process in the open atmosphere of titanium films on sapphire substrates are given. It is shown that during plasma treatment a coating of nitrogen-containing TiO2 with rutile structure is formed with a double increase (in comparison with rutile TiO2) of microhardness (up to 27 GPa). The application of this coating leads to hardening of the surface of sapphire plates by 22-23%. High productivity and implementation of synthesis in an open atmosphere make it possible to consider the proposed procedure is promising for the production of superhard coatings with high resistance to oxygen.


Author(s):  
Alexander Sivkov ◽  
Artur Nassyrbayev ◽  
Dmitriy Nikitin ◽  
Alexander Tsimmerman ◽  
Yuliya Vympina ◽  
...  

2020 ◽  
Vol 42 (5) ◽  
pp. 323-327
Author(s):  
V. F. Gorban’ ◽  
A. A. Andreev ◽  
M. O. Krapivka ◽  
V. A. Stolbovoy ◽  
M. V. Karpets ◽  
...  

Author(s):  
Dinh Nguyen ◽  
Patrick Kwon ◽  
Vadim Voznyuk ◽  
Dave Kim

In the aerospace industry, titanium (Ti) alloys, especially Ti6Al4V, has been extensively used over other light weight alloys due to their high strength-to-weight ratio. However, the material and production costs have been major obstacles in the adoption of Ti alloys for a wide variety of applications. The machining of Ti alloys is one of the most time consuming and expensive mechanical processes in aerospace manufacturing. Based on previous literature on the topic, coated drills have had some degree of success in the drilling of Ti. To further the work, this paper conducts a comparative study in which Ti6Al4V plates are drilled with super hard coated drills such as Diamond-like-Carbon (DLC), AlMgB14 (BAM) and nanocomposite AlCrSiN. The results are compared with those of an uncoated drill bit. Working with a coating supplier, several variations of BAM coating have been applied and used in our drilling experiments. To evaluate the performance of these drills, scanning electron microscopy and confocal laser microscopy were used to assess the wear progress of each drill qualitatively and quantitatively. In drilling Ti alloys, the primary mechanisms of flank wear are abrasion, microscopic fracture (chipping) and attrition, which result in the detachment of the adhesion layer located at the cutting edge. For all the drills, the predominant wear occurs near the margin. From our drilling experiments, it has been observed that AlCrSiN and BAM drills have survived up to 58 holes and over 80 holes, respectively, while both uncoated and DLC drills have experienced catastrophic fracture at less than 40 holes.


2016 ◽  
Vol 152 ◽  
pp. 608-612 ◽  
Author(s):  
E.N. Eremin ◽  
V.M. Yurov ◽  
S.A. Guchenko ◽  
V.Ch. Laurynas ◽  
S.S. Kasymov

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