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Corrosion Fracture of Structural Metallic Materials: Effect of Electrochemical Conditions in Crack
Author(s) -
Dmytrakh I. M.
Publication year - 2011
Publication title -
strain
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.477
H-Index - 47
eISSN - 1475-1305
pISSN - 0039-2103
DOI - 10.1111/j.1475-1305.2010.00784.x
Subject(s) - materials science , corrosion , stress intensity factor , stress corrosion cracking , crack closure , stress concentration , stress (linguistics) , fracture (geology) , corrosion fatigue , metallurgy , fracture mechanics , electrochemistry , cracking , composite material , electrode , intensity (physics) , structural engineering , chemistry , linguistics , philosophy , physics , quantum mechanics , engineering
The work is a compressed review based on the summarised results and the original approach for study of corrosion crack growth, taking into account local electrochemical conditions in the crack tip, which was developed at the Karpenko Physico‐Mechanical Institute of NASU. The model scheme of the pre‐fracture zone in the corrosion crack tip, which can be defined by the local values of pH of solution, electrode potential of metal E and stress intensity factor K I is proposed. For its realisation, the special method and testing equipment for corrosion crack growth study and local electrochemical measurements in the crack were developed. The variation of the electrochemical conditions in corrosion cracks was studied, and it has been found that some stabilised levels of the pH and E values can be achieved in the tip of a non‐propagating and a propagating crack under static and cyclic loading during of exposure time. On this ground, the method for forecasting of the threshold stress intensity factor K ISCC under stress corrosion cracking was proposed using these characteristic values of pH and E . This method was also adopted for the determination of the threshold stress intensity factor K th under corrosion fatigue. The special method for determining corrosion fatigue crack growth rate diagrams based on consideration of extreme electrochemical conditions in the crack tip was developed. It has been proven that such diagrams reflect the extreme influence of the environmental factor on corrosion fracture of material, and they may be recommended as the base for the remaining lifetime calculation of the structural elements exploited under environmental conditions.