ISSN 0430-6252. Physicochemical Mechanics of Materials. 2022.
Volume 58, Issue 6

Corrosion-active non-metallic inclusions in deposited metal from powder-coated 30Kh20MN wire under AN-26 flux

Keywords

arc surfacing, stainless steel, non-metallic inclusions, corrosion resistance.

Cite as

Kuskov Yu. M., Student M. M., Bohaichuk I. L., Kaida T. V., Zadorozhna Kh. R., and Veselivska H. H. Corrosion-active non-metallic inclusions in deposited metal from powder-coated 30Kh20MN wire under AN-26 flux   . Physicochemical Mechanics of Materials. 2022. 58(6), 070-075.

Abstract

The influence of non-metallic inclusions on the corrosion resistance of austenitic-martensitic stainless steel deposited in one layer with PP-Nd-30Kh20MN flux-cored wire under AN-26 flux has been studied. It has been established that in the deposited metal there are non-metallic inclusions of complex composition and structure, including those containing calcium and its compounds with other elements, which are classified as corrosive, accelerating the course of corrosion phenomena.

References

  1. Ya. M. Kolotyrkin, “Electrochemical aspect of metal corrosion,” Zashchita Metallov, XI, Is. 6, 675–686 (1975).
  2. Ya. M. Kolotyrkin, L. I. Freiman, G. S. Raskin, and Zh. O. Goinatskaya, “Local dissolution of stainless steel near non-metallic inclusions,” Doklady Academii Nauk of USSR, 220, Is. 1, 156–159 (1975).
  3. Yu. A. Popov, “Electrochemical theory of pitting development,” Zashchita Metallov, 37, Is. 5, 504–510 (2001).
  4. I. M. Zin, H. H. Veselivska, M. B. Tymus, Z. M. Il’nyts’kyi, F. I. Tsyupko, and A. I. Hladii, “Corrosion inhibition of steel by polycarboxylates,” Mater. Sci., 50, No. 6, 903-907 (2015).
  5. M. M. Student, H. V. Pokhmurska, K. R. Zadorozhna, H. H. Veselivska, V. M. Hvozdetskyi, and Y. Y. Sirak, “Corrosion resistance of VC–FeCr and VC–FeCrCo coatings obtained by supersonic gas-flame spraying,” Mater. Sci., 54, No. 4, 535–541 (2019).
  6. V. I. Kovalenko, V. Ye. Permitin, K. B. Katsov, and I. P. Pistun, “Corrosion and mechanical properties of 12Kh4MDA steel remelted under flux based on REM compounds,” Metally, Is. 1, 129–132 (1986).
  7. I. I. Reformatskaya, and L. I. Freiman, “Formation of sulfide inclusions in the steel structure and their role in local corrosion processes,” Zashchita Metallov, 37, Is. 5, 511–516 (2001).
  8. A. I. Zaitsev, I. G. Rodionova, and V. V. Maltsev, The Nature and Mechanisms of the Corrosion-Active Non-Metallic Inclusions Formation in Steel. The Ways of Ensuring the Steel Cleanliness Concerning these Inclusions. Corrosion-Active Non-Metallic Inclusions in Carbon and Low-Alloy Steels [in Russian], Metallurgizdat, Moscow (2005).
  9. M. Khoma, “Influence of static and cyclic tensions on corrosion-mechanical destruction of steels in hydrogensulfide environment,” in: Black Sea Energy Resource Development and Hydrogen Energy Problems. NATO Science for Peace and Security Series. C. Environmental security, Springer (2013) pp. 343–350.
  10. G. A. Fillipov, I. G. Rodionova, O. N. Baklanova, L. M. Lamukhin, S. D. Zinchenko, I. I. Reformatskaya, and Ye. Ya. Kuznetsova, “Corrosion resistance of steel pipelines,” Tekhnologiya Metallov, Is. 2, 24–27 (2004).
  11. I. I. Reformatskaya, I. G. Rodionov, Yu. A. Beilin, L. A. Niselson, and A. N. Podobaev, “The role of non-metallic inclusions and microstructure in the process of local corrosion of carbon and low-alloy steels,” Zashchita Metallov, 40, Is. 5, 498–504 (2004).
  12. I. G. Rodionova, O. N. Baklanova, and A. I. Zaitsev, “On the role of non-metallic inclusions in the process of local corrosion acceleration of oil pipelines of carbon and low-allot steels,” Metally, Is. 5, 13–18 (2004).
  13. O. N. Baklanova, A. V. Golovanov, A. V. Yemelyanov, S. V. Yefimov, S. D. Zinchenko, Ye. Ya. Kuznetsova, A. N. Podobaev, I. I. Reformatskaya, I. G. Rodionov, V. I. Stolyarov, V. Ya. Tishkov, M. V. Filatov, and G. A. Fillipov, “Role of non-metallic inclusions in the process of local corrosion acceleration of carbon and low-alloy steels metalware,” Metallurgiya, Is. 4, 58–61 (2005).
  14. I. G. Rodionova, O. N. Baklanov, Ye. T. Shapovalov, N. I. Endel, I. I. Reformatskaya, A. A. Podobaev, S. D. Zinchenko, S. V. Yefimov, Ye. Ya. Kuznetsova, L. A. Malyshkina, and A. V. Drandusov, “On the methods of assessing the corrosion resistance of carbon and low-alloy pipe steels under operation of oil pipelines,” Metallurgiya, Is. 5, 44–50 (2005).
  15. Ye. N. Golovkova, G. I. Kotelnikov, A. A. Tolstolutskii, K. L. Kosyrev, N. I. Farttushnii, S. A. Motrenko, and I. G. Pogorelova, “Analysis of steel refining processes from corrosion-active non-metallic inclusions regarding the conditions of “Tagmet” Corporation,” Metallurgiya, Is. 5, 51–54 (2005).
  16. Y. M. Kuskov, V. A. Zhdanov, I. O. Ryabtsev, M. M. Student, and H. H. Veselivs’ka, “Methods for increasing the corrosion resistance of coatings deposited under a flux layer from high-chromium powder wires,” Mater. Sci.55, No. 5, 710–715 (2020).
  17. Yu. M. Kuskov, Kh. R. Zadorozhna, V. D. Makarenko, G. N. Gordan, I. L. Bohaychuk, and T. V. Kaida, “Pulse-arc surfacing of corrosion-resistant austenitic-martensitic steel,” Mater. Sci., 58, No. 1, 29–34 (2022).