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dc.creatorKermanidis, A. T.en
dc.creatorPantelakis, S.en
dc.date.accessioned2015-11-23T10:34:44Z
dc.date.available2015-11-23T10:34:44Z
dc.date.issued2011
dc.identifier10.1016/j.engfracmech.2011.05.005
dc.identifier.issn137944
dc.identifier.urihttp://hdl.handle.net/11615/29387
dc.description.abstractThe fatigue crack growth behavior under constant amplitude and under single overload of 2024 aluminum alloy in sheet and plate product form has been investigated. Constant amplitude fatigue crack growth tests showed superior crack growth resistance of the plate attributed to a pronounced roughness induced crack closure as a result of the coarse and elongated grain structure. Crack growth tests with single overload showed that the retardation effect caused by the overload is not primarily influenced by roughness crack closure at the crack path. In this case, the sheet material with lower yield strength revealed a higher retardation effect than the plate material. The observed crack growth behavior has been simulated with the LTSM-F model, which accounts for retardation of crack growth after an overload due to material strain hardening at the crack front. Dissimilar strain hardening at the crack tip due to different yield strength for the sheet and plate has been considered by means of strength gradients inside the overload plastic zone. The analytical results confirmed the observed material crack growth trends. © 2011 Elsevier Ltd.en
dc.source.urihttp://www.scopus.com/inward/record.url?eid=2-s2.0-79959509248&partnerID=40&md5=4b1c8e92e27e25242d95f9a02cc12d30
dc.subjectAluminum alloyen
dc.subjectFatigue crack growth analysisen
dc.subjectOverload effecten
dc.subjectPlate microstructureen
dc.subjectSheet microstructureen
dc.subject2024 aluminum alloyen
dc.subjectAnalytical resultsen
dc.subjectConstant amplitudeen
dc.subjectCrack frontsen
dc.subjectCrack growth behavioren
dc.subjectCrack growth testsen
dc.subjectCrack pathsen
dc.subjectCrack-growth resistanceen
dc.subjectElongated grainsen
dc.subjectFatigue crack growth behavioren
dc.subjectFatigue-crack-growth testsen
dc.subjectOverload effectsen
dc.subjectPlastic zonesen
dc.subjectProduct formsen
dc.subjectRetardation effecten
dc.subjectRoughness induced crack closureen
dc.subjectSheet materialen
dc.subjectSingle overloadsen
dc.subjectAluminumen
dc.subjectAluminum alloysen
dc.subjectAluminum metallurgyen
dc.subjectComputer simulationen
dc.subjectCrack tipsen
dc.subjectFatigue crack propagationen
dc.subjectFatigue of materialsen
dc.subjectGrain growthen
dc.subjectMicrostructureen
dc.subjectPlasticityen
dc.subjectPlates (structural components)en
dc.subjectStrain hardeningen
dc.subjectYield stressen
dc.subjectCrack closureen
dc.titlePrediction of crack growth following a single overload in aluminum alloy with sheet and plate microstructureen
dc.typejournalArticleen


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