Title
An Experimental Approach For Delayed Stress Corrosion
Abstract
Failures of structural and mechanical components have long been attributed to environmentally assisted cracking (EAC). the umbrella of EAC encompasses several phenomena, including stress corrosion cracking (SCC), corrosion fatigue (CF), hydrogen embrittlement (HE) and liquid metal embrittlement (LME). the latter, LME, has resulted in the failure of components in petrochemical and aeronautical industries, among others. the effects are detrimental, with crack tip velocities on the order of centimeters per second and failures occurring rapidly. Previous research has provided numerous underlying microstructural failure mechanisms aimed at identifying the true failure mode. Conflicting experimental data has extended the debate over the true mechanism promoting renewed interest in novel experimental regimes. Utilizing fracture mechanics specimens, the solid-liquid Al-Hg couple was analyzed to extend or reject current theories. Through the implementation of an original environmental chamber capable of testing notched and pre-cracked components in corrosive environments, C(T) specimens were subjected to experiments submersed in liquid mercury. Upon the application of an initially applied stress intensity factor (under load-control), incubation periods preceding failure were observed. Crack initiation and propagation were observed to occur along the starter notch, as well as other regions on the specimen. Results provided evidence that additional factors, such as a critical load or critical microstructural orientation, were factors in crack initiation and propagation. In the quest to observe the influence of these additional factors, a variation of the experimental setup was implemented and initial tests have begun. Copyright © 2010 by ASME.
Publication Date
12-1-2010
Publication Title
American Society of Mechanical Engineers, Pressure Vessels and Piping Division (Publication) PVP
Volume
6
Number of Pages
685-692
Document Type
Article; Proceedings Paper
Personal Identifier
scopus
DOI Link
https://doi.org/10.1115/PVP2010-25814
Copyright Status
Unknown
Socpus ID
80155145720 (Scopus)
Source API URL
https://api.elsevier.com/content/abstract/scopus_id/80155145720
STARS Citation
Keller, Scott G. and Gordon, Ali P., "An Experimental Approach For Delayed Stress Corrosion" (2010). Scopus Export 2010-2014. 547.
https://stars.library.ucf.edu/scopus2010/547