Research stand for microplasma surface treatment of materials at atmospheric pressure
https://doi.org/10.35596/1729-7648-2021-19-6-66-73
Abstract
A research stand for microplasma treatment of object surfaces with the ability to move the discharge zone along the object using a program-controlled linear stepper motor has been developed. The design of the stand allows the use of different types of plasma generation systems, as well as processing with feeding of various gases such as air, nitrogen, oxygen, etc. into the discharge zone. The research bench is equipped with measuring equipment for monitoring the electrical and physical characteristics of the discharge (digital oscilloscopes, optical emission spectrometer, air ion meter, etc.). A microhardness tester, goniometer, interference microscope, tribometer, tensile testing machine, etc. can be used to further evaluate the quality and characteristics of the treated surfaces. Examples of the electrical characteristics of discharge devices tested as part of the research stand, optical emission spectroscopy of plasma, and results of measurements of the contact angle of treated objects surfaces are given.
About the Authors
S. V. BordusauBelarus
Bordusau Siarhei V., D.Sc., Professor, Professor at the Electronic Technique and Technology Department
Minsk
S. I. Madveika
Belarus
Madveika Siarhei I., PhD, Assosiate Professor, Head of the Electronic Technique and Technology Department
Minsk
A. L. Barakhoyeu
Belarus
Barakhoyeu Andrei L., Postgraduate student at the Electronic Technique and Technology Department
220013, Minsk, P. Brovky str., 6
O. I. Tsikhan
Belarus
Tsikhan Oleg I., Postgraduate student at the Electronic Technique and Technology Department
Minsk
A. A. Maiseyeu
Belarus
Maiseyeu Andrei A., Undergraduate student at the Electronic Technique and Technology Department
Minsk
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Review
For citations:
Bordusau S.V., Madveika S.I., Barakhoyeu A.L., Tsikhan O.I., Maiseyeu A.A. Research stand for microplasma surface treatment of materials at atmospheric pressure. Doklady BGUIR. 2021;19(6):66-73. (In Russ.) https://doi.org/10.35596/1729-7648-2021-19-6-66-73