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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. Bordusau
Belarusian State University of Informatics and Radioelectronics
Belarus

Bordusau Siarhei V., D.Sc., Professor, Professor at the Electronic Technique and Technology Department

Minsk



S. I. Madveika
Belarusian State University of Informatics and Radioelectronics
Belarus

Madveika Siarhei I., PhD, Assosiate Professor, Head of the Electronic Technique and Technology Department

Minsk



A. L. Barakhoyeu
Belarusian State University of Informatics and Radioelectronics
Belarus

Barakhoyeu Andrei L., Postgraduate student at the Electronic Technique and Technology Department

220013, Minsk, P. Brovky str., 6



O. I. Tsikhan
Belarusian State University of Informatics and Radioelectronics
Belarus

Tsikhan Oleg I., Postgraduate student at the Electronic Technique and Technology Department

Minsk



A. A. Maiseyeu
Belarusian State University of Informatics and Radioelectronics
Belarus

Maiseyeu Andrei A., Undergraduate student at the Electronic Technique and Technology Department

Minsk



References

1. Selwyn G.S., Herrmann H.W., Park J., & Henins I. Materials Processing Using an Atmospheric Pressure, RF-Generated Plasma Source. Contributions to Plasma Physics. 2001;41(6):610-619. DOI:10.1002/1521-3986(200111)41:6<610:aid-ctpp610>3.0.co;2-l.

2. Peran J., & Ercegović Ražić S. Application of atmospheric pressure plasma technology for textile surface modification. Textile Research Journal. 2019: 1-24. DOI:10.1177/0040517519883954.

3. d'Agostino R., Favia P., Kawai Y., Ikegami H., Sato N., Arefi-Khonsari F. Advanced plasma technology. Weinheim: Wiley-VCH Verlag GmbH & Co. KgaA; 2008.

4. Yamamoto T., Okubo M. Nonthermal Plasma Technology. In: Wang L.K., Hung YT., Shammas N.K. (Eds.) Advanced Physicochemical Treatment Technologies; 2017: 135-293. Humana Press. DOI:10.1007/978-1-59745-173-4_4

5. Johansson K.S. Surface Modification of Plastics. In: Applied Plastics Engineering Handbook (Second Edition): Processing, Materials, and Applications, 2017: 443-87. William Andrew Publishing. DOI: 10.1016/B978-0-323-39040-8.00020-1.

6. Meichsner J., Schmidt M., Schneider R., & Wagner H.-E. (Eds.). Nonthermal Plasma Chemistry and Physics (1st ed.). CRC Press; 2013. DOI:10.1201/b12956.

7. Ono R. Optical diagnostics of reactive species in atmospheric-pressure nonthermal plasma. Journal of Physics D: Applied Physics. 2016; 49(8), 083001. DOI:10.1088/0022-3727/49/8/083001.

8. Veldhuizen van E.M., Rutgers W.R. Corona discharges: fundamentals and diagnostics. In Frontiers in low temperature plasma diagnostics IV: papers, Rolduc Conference Centre, The Netherlands, 25.03–29.03.2001. Eindhoven: Eindhoven University of Technology; 2001: 40-49

9. Al-Abduly, Abdullah & Christensen P. An in situ and downstream study of non-thermal plasma chemistry in an air fed dielectric barrier discharge (DBD). Plasma Sources Science and Technology. 2015;24(6), 065006. DOI: 10.1088/0963-0252/24/6/065006.

10. Keller S., Rajasekaran P., Bibinov N., & Awakowicz P. Characterization of transient discharges under atmospheric-pressure conditions applying nitrogen photoemission and current measurements. Journal of Physics D: Applied Physics. 2012;45(12), 125202. DOI:10.1088/0022-3727/45/12/125202.


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

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ISSN 1729-7648 (Print)
ISSN 2708-0382 (Online)