Preview

ELECTROLYTE-PLASMA POLISHING OF TITANIUM AND NIOBIUM ALLOYS

https://doi.org/10.21122/2227-1031-2018-17-3-211-219

Abstract

Titanium and niobium alloys are widely used at present in aircraft, nuclear energy, microwave technology, space and ultrasonic technology, as well as in manufacture of medical products. In most cases production technology of such products involves an implementation of a quality polishing surface. Mechanical and electrochemical methods are conventionally used for polishing products made of titanium and niobium alloys. Disadvantages of mechanical methods are low productivity, susceptibility to introduction of foreign particles, difficulties in processing complex geometric shapes. These materials are hard-to-machine for electrochemical technologies and processes of their polishing require the use of toxic electrolytes. Traditionally, electrochemical polishing of titanium and niobium alloys is carried out in acid electrolytes consisting of toxic hydrofluoric (20–25 %), sulfuric nitric and perchloric acids. The disadvantage of such solutions is their high aggressiveness and harmful effects for production personnel and environment. This paper proposes to use fundamentally new developed modes of electrolytic-plasma treatment for electrolyte-plasma polishing and cleaning products of titanium and niobium alloys while using simple electrolyte composition based on an aqueous ammonium fluoride solution providing a significant increase in surface quality that ensures high reflectivity. Due to the use of aqueous electrolyte the technology has a high ecological safety in comparison with traditional electrochemical polishing. The paper presents results of the study pertaining to the effect of titanium and niobium electrolytic-plasma polishing characteristics using the developed mode for productivity, processing efficiency, surface quality, and structure and properties of the surface to be treated. Based on the obtained results, processes of electrolytic-plasma polishing of a number of products made of titanium alloys BT6 (Grade 5), used in medicine and aircraft construction, have been worked out in the paper.

About the Authors

Yu. G. Aliakseyeu
Belarusian National Technical University
Belarus


A. Yu. Korolyov
Belarusian National Technical University
Belarus

Address for correspondence: Korolyov Aleksandr Yu. – Belarusian National Technical University, 24 Ya. Kolasa str., 220013, Minsk, Republic of Belarus. Tel: +375 17 292-25-98    korolyov@park.bntu.by



V. S. Niss
Belarusian National Technical University
Belarus


A. E. Parshuto
Belarusian National Technical University
Belarus


A. S. Budnitskiy
Belarusian National Technical University
Belarus


References

1. Inagaki I., Takechi T., Shirai Y., Ariyasu N. (2014) Application and Features of Titanium for the Aerospace Industry. Nippon Steel & Sumitomo Metal Technical Report, 106, 22–27.

2. Nikishina E. E., Drobot D. V., Lebedeva E. N. (2013) Niobium and Tantalum: State of the World Market, Fields of Application, and Raw Sources. Part I. Russian Journal of Non-Ferrous Metals, 54 (6), 446–452. https://doi.org/10. 3103/s1067821213060187.

3. Froes F. H., Imam A. M. (2010) Cost Affordable Developments in Titanium Technology and Applications. Key Engineering Materials, 436, 1–11. https://doi.org/10.4028/www.scientific.net/kem.436.1.

4. Zardiackas L. D., Kraay M. J., Freese H. L. (2006) Titanium, Niobium, Zirconium, and Tantalum for Medical and Surgical Applications. ASTM International. 265. https://doi.org/10.1520/stp1471-eb.

5. Veiga C., Davim J. P., Loureiro A. J. R. (2012) Properties and Applications of Titanium Alloys: a Brief Review. Reviews on Advanced Materials Science, 32 (2), 133–148.

6. Axinte D. A., Kwong J., Kong M. C. (2009) Workpiece Surface Integrity of Ti-6-4 Heat-Resistant Alloy when Employing Different Polishing Methods. Journal of Materials Processing Technology, 209 (4), 1843–1852. https://doi.org/10.1016/j.jmatprotec.2008.04.046.

7. Tian H., Corcoran S. G., Reece C. E., Kelley M. J. (2008) The Mechanism of Electropolishing of Niobium in Hydrofluoric-Sulfuric Acid Electrolyte. Journal of the Electrochemical Society, 155 (9), D563–D568. https://doi.org/10. 1149/1.2945913.

8. Tajima K., Hironaka M., Chen K.-K., Nagamatsu Y., Kakigawa H., Kozono Y. (2008) Electropolishing of CP Titanium and its Alloys in an Alcoholic Solution-Based Electrolyte. Dental Materials Journal, 27 (2), 258–265. https://doi.org/10.4012/dmj.27.258.

9. Zeidler H., Boettger-Hiller F., Edelmann J., Schubert A. (2016) Surface Finish Machining of Medical Parts using Plasma Electrolytic Polishing. Procedia CIRP, 49, 83–87. https://doi.org/10.1016/j.procir.2015.07.038.

10. Alekseev Yu. G., Niss V. S., Korolev A. Yu., Parshuto A. E. (2013) Peculiar Features of Electrolytic-Plasma Heating at Electrochemical-Heat Treatment of Steel. Nauka i Tekhnika = Science & Technique, (6), 20–24.

11. Aliakseyeu Yu., Korolyov A., Bezyazychnaya A. (2006) Electrolyte-Plasma Treatment of Metal Materials Surfaces. CO-MAT-TECH-2006: Proceeding of the Abstracts of 14th International Scientific Conference, Slovak University of Technology, 19–20 October 2006. Slovakia, Trnava, 6.

12. Fomikhina I. V., Litovskaya Yu. O., Alekseev Yu. G., Korolev A. Yu., Niss V. S. (2008). Influence of Electrolytic-Plasma Treatment on Structure and Properties in Surface Layer of Authentic Stainless 12?18?10? – Steel. Vestsi Natsionalnoy Akademii Navuk Belarusi. Ser. Fiz.Tekhn. Navuk = Bulletin of National Academy of Science of Belarus. Series of Physical and Technical Sciences, (3), 24–29 (in Russian).

13. Alekseev Yu., Korolev A., Parshuta A., Niss V. (2012). Model for Metal Removal in Electrolyte-Plazma Treatment of Cylindrical Surfaces. Nauka i Tekhnika = Science & Technique, (3), 3–6 (in Russian).

14. Aliakseyeu Y. G., Korolyov A. Y., Parshuto A. E., Niss V. S. (2017) Electrolyte-Plasma Treatment under Non-Stationary Mode in a High-Gradient Electric Field. Nauka i Tekhnika = Science & Technique, 16 (5), 391–399 (in Russian). https://doi.org/10.21122/2227-1031-2017-16-5-391399.

15. Smyslov A. M., Smyslova M. K., Mingazhev A. D., Selivanov K. S. (2009) Multistage Electrolytic-Plasma Treatment of Products from Titan and Titanic Alloys. Vestnik Ufimskogo Gosudarstvennogo Aviatsionnogo Tekhnicheskogo Universiteta [Bulletin of Ufa State Aviation Technical University], 13 (1), 141–145 (in Russian).

16. Amitan G. L., Baisupov I. A., Baron Yu. M., Volosatov V. A. (ed.) (1988) Reference Book on Electrochemical and Electro-Physical Processing Methods. Leningrad, Mashinostroenie Publ., Leningrad Branch. 719 (in Russian).


Review

For citations:


Aliakseyeu Yu.G., Korolyov A.Yu., Niss V.S., Parshuto A.E., Budnitskiy A.S. ELECTROLYTE-PLASMA POLISHING OF TITANIUM AND NIOBIUM ALLOYS. Science & Technique. 2018;17(3):211-219. (In Russ.) https://doi.org/10.21122/2227-1031-2018-17-3-211-219

Views: 2470


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2227-1031 (Print)
ISSN 2414-0392 (Online)