Preview

Voprosy Materialovedeniya

Advanced search
Open Access Open Access  Restricted Access Subscription Access

Investigation of corrosion damage of wrought aluminium alloys at full-scale accelerated tests. Part 2. Pitting corrosion

https://doi.org/10.22349/1994-6716-2019-97-1-00-00

Abstract

The paper presents the results of a study of pitting corrosion of aluminum alloys of seven doping systems after testing by the full-scale accelerated method. The advantages of the method of laser scanning microscopy in the analysis of pitting corrosion are shown, which makes it possible to improve significantly the accuracy of measurements in comparison with the metallographic method. Peculiarities of the kinetics of pitting growth under long-term, accelerated tests were studied, the role of pitting corrosion in the part of characterizing the alloy’s susceptibility to local corrosion failure was shown.

 

About the Authors

M. Kurs
Federal State Unitary Enterprise “All-Russian Scientific Research Institute of Aviation Materials” (FSUE VIAM)
Russian Federation
Cand Sc. (Eng)


A. Goncharov
Federal State Unitary Enterprise “All-Russian Scientific Research Institute of Aviation Materials” (FSUE VIAM)
Russian Federation


References

1. Kablov, E.N., Innovatsionnye razrabotki VIAM po realizatsii “Strategicheskikh napravlenii razvitiya materialov i tekhnologii ikh pererabotki na period do 2030 goda” [Innovate developments of the All-Russian Scientific Research Institute of Aviation Materials within the project “Strategic development of materials and technologies of their recycling until 2030”], Aviatsionnye Materialy i Tekhnologii, 2015, No 1, pp. 3–33, DOI: 10.18577/2071-9140-2015-0-1-3-33

2. Kablov, E.N., Startsev, O.V., Medvedev, I.M., Obzor zarubezhnogo opyta issledovanii korrozii i sredstv zashchity ot korrozii [Review of foreign experience of corrosion study and facilities for corrosion-protection], Aviatsionnye Materialy i Tekhnologii, 2015, No 2, pp. 76–87.

3. Kablov, E.N., Startsev, O.V., Medvedev, I.M., Panin, S.V., Korrozionnaya agressivnost primorskoi atmosfery. Ch. 1: Faktory vliyaniya (obzor) [Corrosion aggressive of Primorye atmosphere. Part 1: Factors of influence (review)], Korroziya: materialy, zashchita, 2013, No 12, pp. 6–18.

4. Antipov, V.V., Strategiya razvitiya titanovykh, magnievykh, berillievykh i alyuminievykh splavov [Strategy of development of titanium, magnesium, beryllium, and aluminum alloys], Aviatsionnye Materialy i Tekhnologii, 2012, No 5, pp. 157–167.

5. Kablov, E.N., Iz chego sdelat budushchee? Materialy novogo pokoleniya, tekhnologii ikh sozdaniya i pererabotki – osnova innovatsii [What is future made of? Materials of the new generation, technologies of its creation and processing as the basis of innovations], Krylya Rodiny, 2016, No 5, pp. 8–18.

6. Soltis, J., Passivity breakdown, pit initiation and propagation of pits in metallic materials, Corrosion Science, 2015, No 90, pp. 5–22.

7. Vinogradova, S.S., Tazieva, R.F., Parametry matematicheskikh modelei pittingovoi korrozii [Options of mathematically models of pitting corrosion], Vestnik Kazanskogo tekhnologicheskogo universiteta, 2012, V. 15, No 20, pp. 66–68.

8. Vinogradova, S.S., Tazieva, R.F., Kaidrikov, R.A., Obzor stokhasticheskikh modelei pittingovoi korrozii [Review of stochastic models of pitting corrosion], Vestnik Kazanskogo tekhnologicheskogo universiteta, 2012, V. 15, No 8, pp. 313–318.

9. Szklarska-S mialowska, Z., Pitting corrosion of aluminum, Corrosion Science, 1999, No 41, p. 1743–1767.

10. Zhilikov, V.P., Karimova, S.A., Leshko, S.S., Chesnokov, D.V., Issledovanie dinamiki korrozii aliuminievykh splavov pri ispytanii v kamere solevogo tumana [Research of aluminum alloys corrosion dynamic at tests in salt fog chamber], Aviatsionnye Materialy i Tekhnologii, 2012, No 4, pp. 18–22.

11. Knight, S.P., Salsgaras, M., True man, A.R., The study of intergranular corrosion in aircraft aluminum alloys using X-ray tomography, Corrosion science, 2011, No 53, pp. 727–734.

12. Kolobnev, N.I., Makhsidov, V.V., Samokhvalov, S.V., Sbitneva, S.V., Popov, V.I., Kurs, M.G., Vliyanie deformatsii posle zakalki I rezhimov stareniya na mekhanicheskie I korrozionnye svoistva splava sistemy Al–Mg–Si–Cu–Zn [Influence of deformation after quenching and aging modes on mechanical and corrosion properties of Al–Mg–Si–Cu–Zn system alloy], Aviatsionnye Materialy i Tekhnologii, 2011, No 1, pp. 12–15.

13. Kurs, M.G., Laptev, A.B., Kutyrev, A.E., Morozova, L.V., Issledovanie korrozionnogo razrusheniya deformiruemykh alyuminievykh splavov pri naturno-uskorennykh ispytaniyakh. Chast 1 [Study of corrosion destruction of deformable aluminum alloys at natured accelerated tests. Part 1], Voprosy Materialovedeniya, 2016, No 1 (85), pp. 116–126.

14. Skripchenko, Yu.S., Sherokhovatost obrabotannoi poverkhnosti [Roughness of treated surface], Vestnik Voronezhskogo gosudarstvennogo tekhnicheskogo universiteta, 2011, V. 7, No 12–2, pp. 99–100.

15. Aliev, A.A., Bulgakov, V.P., Prikhodko, B.S., Kachestvo poverkhnosti i svoistva detalei mashin [Quality of surface and properties of machine details], Vestnik Astrakhanskogo gosudarstvennogo universiteta, 2004, No 1, pp. 8–12.

16. Vilner, A.Yu., Fiziko-khimicheskaya obrabotka krupnogabaritnykh detalei letatelnykh apparatov [Physical and chemical treatment of large-sized details of aircraft], Nauka i sovremennost, 2010, No 2–2, pp. 309–314.

17. State Standard GOST 2789-73: Sherokhovatost poverkhnosti. Parametry i kharakteristiki [Roughness of surface. Options and specifications].

18. State Standard GOST 9.908-85: Edinaya sistema zashchity ot korrozii I stareniya. Metally I splavy. Metody opredeleniya pokazatelei korrozii i korrozionnoi stoikosti [Uniform corrosion and aging protection system. Metals and alloys. Methods of definitions of corrosion and corrosion durability indicators].

19. ASTM G46-94 (2013). Standard Guide for Examination and Evaluation of Pitting Corrosion.

20. Iskhodzhanova, I.V., Orlov, M.R., Grigorenko, V.B., Lapteva, M.A., Primenenie metoda konfokalnoi lazernoi skaniruyushchei mikroskopii dlya issledovaniya korrozionnykh povrezhdenii [Applying of confocal laser scanning microscopy method for researches of corrosion damage], Trudy VIAM, 2015, No 4, article 11, URL: http://www.viam-works.ru (reference date 18/01/2016). DOI: 10.18577/2307-6046-2015-0-4-11-11.

21. Sinyavsky, V.S., Valkov, V.D., Kalinin, V.D., Korroziya i zashchita alyuminievykh splavov [Corrosion and protection of aluminum alloys], Moscow: Metallurgy, 1986, 2nd ed.

22. Kurs, M.G., Antipov, V.V., Lutsenko, A.N., Kutyrev, A.E., Integralnyi koeffitsent korrozionnogo razrusheniya deformiruemykh alyuminievykh splavov [Integral coefficient of corrosion destruction of deformable aluminum alloys], Aviatsionnye Materialy i Tekhnologii, 2016, No 3, pp. 24–32, DOI: 10.18577/2071-9140-2016-0-3-24-32.

23. Kurs, M.G., Kutyrev, A.E., Primenenie integralnogo koeffitsenta korrozionnogo razrusheniya dlya prognozirovaniya izmeneniya prochnostnykh svoistv deformiruemykh alyuminievykh splavov (Application of integral coefficient of corrosion destruction for forecasting of strength properties changes in deformable aluminum alloys), Modern material science: traditions of native schools and innovation approach, Moscow: VIAM, 2017, pp. 132–142.


Review

For citations:


Kurs M., Goncharov A. Investigation of corrosion damage of wrought aluminium alloys at full-scale accelerated tests. Part 2. Pitting corrosion. Voprosy Materialovedeniya. 2019;(1(97)):175-187. (In Russ.) https://doi.org/10.22349/1994-6716-2019-97-1-00-00

Views: 326


ISSN 1994-6716 (Print)