Effect of solution aggressiveness on the crack growth resistance and cracking mechanism of AA2024-T3

dc.contributor.authorCharalampidou, Christina Margarita
dc.contributor.authorPretorius, Christiaan C.E.
dc.contributor.authorMostert, Roelf Johannes
dc.contributor.authorAlexopoulos, Nikolaos D.
dc.contributor.emailroelf.mostert@up.ac.zaen_US
dc.date.accessioned2022-05-18T10:18:25Z
dc.date.available2022-05-18T10:18:25Z
dc.date.issued2021-09
dc.description.abstractAluminum alloy 2024-T3 was examined using a range of microscopy techniques at the early stages of corrosion attack to investigate the corrosion-induced cracking mechanism. Two different corrosive environments—exfoliation corrosion (EXCO) and 3.5 wt% NaCl—were used for the exposure of tensile and prenotched compact-tension C(T) specimens of AA2024-T3. Different embrittlement mechanisms are noticed for the two investigated corrosive environments. Significant intergranular corrosion (IGC) and grain boundary embrittlement are evident in the specimens exposed to EXCO solution, whilethis was not the case for the milder solution comprising of 3.5 wt% NaCl. With regard to the milder solution, the corrosion attack is not only restricted to the grain boundary, but evolves transgranularly to the neighboring grains of the IGC attacked region and, consequently, the grain boundary strength in the direct vicinity is not notably affected. The extent of secondary cracks, after the exposure of C(T) specimens to EXCO solution and the subsequent crack-growth resistance evaluation, were found to correlate with the diameter of the plastically affected zone (≈3.78±0.04 mm). Additionally, the depth of these cracks was found to correlate well with the thickness of the intergranular fracture surface, giving evidence that the secondary cracks form due to grain boundary embrittlement; probably attributed to hydrogen embrittlement phenomena.en_US
dc.description.departmentMaterials Science and Metallurgical Engineeringen_US
dc.description.librarianhj2022en_US
dc.description.librarianmi2025en
dc.description.sdgSDG-09: Industry, innovation and infrastructureen
dc.description.sdgSDG-12: Responsible consumption and productionen
dc.description.sponsorshipThe South African Department of Science and Innovation’s Light Metal Development Networken_US
dc.description.urihttps://meridian.allenpress.com/corrosionen_US
dc.identifier.citationCharalampidou, C.M., Pretorius, C.C.E., Mostert, R.J. & Alexopoulos, N.D. 2021, 'Effect of solution aggressiveness on the crack growth resistance and cracking mechanism of AA2024-T3', Corrosion, vol. 77, no. 9, pp. 1029-1040.en_US
dc.identifier.issn0010-9312 (print)
dc.identifier.issn1938-159X (online)
dc.identifier.urihttps://repository.up.ac.za/handle/2263/85568
dc.language.isoenen_US
dc.publisherNACE Internationalen_US
dc.rights© 2021 AMPPen_US
dc.subjectCrack growthen_US
dc.subjectExfoliation corrosionen_US
dc.subjectFracture toughnessen_US
dc.subjectPitting corrosionen_US
dc.subject.otherEngineering, built environment and information technology articles SDG-09
dc.subject.otherSDG-09: Industry, innovation and infrastructure
dc.subject.otherEngineering, built environment and information technology articles SDG-12
dc.subject.otherSDG-12: Responsible consumption and production
dc.titleEffect of solution aggressiveness on the crack growth resistance and cracking mechanism of AA2024-T3en_US
dc.typePostprint Articleen_US

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