MUTUAL INFLUENCE OF EARTH ELECTROLYTE AND CARBON STEEL IN THE PROCESS OF BIOLOGICAL CORROSION UNDER THE APPLICATION OF ULTRASONIC VIBRATIONS
https://doi.org/10.57070/2304-4497-2023-2(44)-51-59
Abstract
The mutual influence of water taken from real stagnant reservoirs and samples of unalloyed steel has been experimentally studied on the acidity and microbiological population of water and on the general corrosion of unalloyed steel, including in the presence of low-frequency ultrasonic vibrations. The competitive activity of microorganisms, during long exposures, leads to fluctuations in the acidity of the medium, followed by alkalization, which increases the likelihood of pitting corrosion and stress-corrosion cracking. Changes in the acidity of the medium upon contact with steel and exposure to low-frequency ultrasound have not been identified, however, such contact suppresses the vital activity of bacteria present in the water. It is shown that the impact of low-frequency ultrasonic vibrations and residual mechanical stresses contribute to the development of corrosion processes.
About the Authors
Tatyana IstominaRussian Federation
Senior Lecturer of the Depart-ment of Physics
Dmitry Kaputkin
Russian Federation
Dr. Sci. (Eng.), Prof. of Department of Physics
Dmitry Polyakov
Junior Researcher
Daniil Preferansov
student
Valentina Stepanova
Cand. Sci. (Eng.), Associate Professor
References
1. Koch G.H. et. al. Corrosion costs and preventive strategies in the United States. Washington D.C.: FHWA, 2001, pp. 1–36.
2. Gerasimenko A.A. Protection against corro-sion, aging and biological damage of ma-chines, equipment and structures. Vol. 1 / Gerasimenko A.A. ed. Moscow: Mashinostroenie, 1987, 688 p. (In Russ.).
3. Gerasimenko A.A. Biocorrosia and protection of metal structures. 2. Oil Industry Equipment Micro Corrosion. Praktika protivokorrozionnoj zashchity. 2001, no. 2, pp. 35–36. (In Russ.).
4. Akhiyarov R.Zh., Laptev A.B., Ibragimov I.G. Improving the Industrial Safety of Oil Production Facilities during Biological Contamination and Salt Deposition by Complex Formation Water Treatment. Neftepromyslovoe delo. 2009, no. 3, pp. 44–46. (In Russ.).
5. Singh A.K. Mitigation of microbial induced corrosion. Springer Briefs in Materials. 2020, pp. 107–129. https://doi.org/10.1007/978-981-15-8019-2_6
6. Kaputkina L.M., Smarygina I.V. at al. Influence of nitrogen additive on physical and chemical properties and corrosion resistance of corrosion-resistant steels. Metallovedenie i termicheskaya obrabotka metallov. 2015, no. 7 (721), pp. 29–35. (In Russ.).
7. Svyazhin A., Kaputkina L., et al. Nitrogen Steels and High-Nitrogen Steels. Industrial Technologies and Properties. Steel Research International. 2022, pp. 2200160–2200190. https://doi.org/10.1002/srin.202200160
8. Rosenfeld I.L., Rubinstein F.I. Anticorrosive primers and in-hybrid paint coatings. Moscow: Himiya, 1980, 200 p. (In Russ.).
9. Shiibashi M., Deng X., Miran W., Okamoto A. Mechanism of anaerobic microbial corrosion sup-pression by mild negative cathodic polarization on carbon steel. Environmental Science and Technology Letters. 2020, vol. 7, no. 9, pp. 690–694. https://doi.org/10.1021/ acs.estlett.0c00383
10. Samedov A.M., Aliyeva L.I., Abbasov V.M. Inhibition and bactericidal effect of salts of natural naphthenic acids during steel corrosion in seawater. Fizikohimiya poverhnosti i zashchita materialov. 2008, vol. 44, no 4, pp. 427–431. (In Russ.).
11. Bogdanova T.I., Shechter J.N. Inhibited petroleum compositions for corrosion protection. Moscow: Himiya, 1984, 248 p. (In Russ.).
12. Gribankova A.A., Myamina M.A., Beloglazov S.M. Microbiological corrosion of soft steel in water-salt media containing sulphate-curing bacteria. Vestnik baltijskogo federal'nogo universiteta im. I. Kanta. 2011, no 7, pp. 23–29. (In Russ.).
13. Lavanya M. A brief insight into microbial corrosion and its mitigation with eco-friendly inhibitors. Journal of Bio- and Tribo-Corrosion. 2021, vol. 7, no. 3. https://doi.org/ 10.1007/s40735-021-00563-y
14. Zavyalov V.V., Zavyalova N.V., etc. Bactericidal properties of modular protective materials. Vestnik vojsk RHB zashchity. 2022, vol. 6, no. 2, pp. 123–136. (In Russ.). https://doi.org/10.35825/2587-5728-2022-6-2-123-136
15. GOST 18963 – 73. Drinking water. Methods of sanitary and bacteriological analysis. Moscow: Standartinform, 2008, 21 p. (In Russ.).
16. Zhang L., Li X.G., Du C.W., Cheng Y.F. Corrosion and stress corrosion cracking behavior of X70 pipeline steel in a CO 2-containing solution. Journal of Materials Engineering and Performance. 2009, vol. 18, no. 3, pp. 319–323. https://doi.org/10.1007/s11665-008-9282-9
17. Liang P., Li X., Du C., Chen X. Stress corro-sion cracking of X80 pipeline steel in simulated alkaline soil solution. Materials and Design. 2009, vol. 30, no. 5, pp. 1712–1717. https://doi.org/10.1016/j.matdes.2008.07.012
18. Amor D.R., Ratzke C., Gore J. Transient in-vaders can induce shifts between alternative stable states of microbial communities. Science advances. 2020, vol. 6, no. 8. https://doi.org/10.1126/sciadv.aay8676
19. Kotova I.B., Taktarova Yu.V., et al. Microbial degradation of plastic and ways of its intensification. Mikrobiologiya. 2021, vol. 90, no. 6, pp. 627–659. (In Russ.). https://doi.org/10.31857/S0026365621060082
20. Cherkasov S.V. Zhelezobacteria in drinking water supply systems. Website of the company "World Water Technologies". URL: https://wwtec.ru/index.php?id=418 (date of appeal: 03.02.2023). (In Russ.).
21. Yang G., Gong M. et. al. A review of microbial corrosion in reclaimed water pipelines: challenges and mitigation strategies. Water Practice and Technology. 2022, vol. 17, no. 3, pp. 731–748. https://doi.org/10.2166/wpt.2022.007
22. Zhou E., Xu D., et. al. Direct microbial electron uptake as a mechanism for stainless steel corrosion in aerobic environments. Water Research. 2022, vol. 219, article 118553. https://doi.org/10.1016/j.watres.2022.118553
Review
For citations:
Istomina T., Kaputkin D., Polyakov D., Preferansov D., Stepanova V. MUTUAL INFLUENCE OF EARTH ELECTROLYTE AND CARBON STEEL IN THE PROCESS OF BIOLOGICAL CORROSION UNDER THE APPLICATION OF ULTRASONIC VIBRATIONS. Bulletin of the Siberian State Industrial University. 2023;(2):51-59. (In Russ.) https://doi.org/10.57070/2304-4497-2023-2(44)-51-59