Non-destructive testing derived parameters for microstructure-based residual service life assessment of aging metallic materials in nuclear engineering: Dedicated to Professor Dr. Dietmar Eifler on the occasion of his 70 th birthday

Metallic components in nuclear engineering are exposed to extensive loads such as pressurization and temperature changes which can affect the properties of the material significantly depending on the load spectrum applied. In view of developing a procedure to evaluate the residual service life of me...

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Veröffentlicht in:Materialprüfung 2019-11, Vol.61 (11), p.1029-1038
Hauptverfasser: Acosta, Ruth, Boller, Christian, Starke, Peter, Jamrozy, Michael, Knyazeva, Marina, Walther, Frank, Heckmann, Klaus, Sievers, Jürgen, Schopf, Tim, Weihe, Stefan
Format: Artikel
Sprache:eng
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Zusammenfassung:Metallic components in nuclear engineering are exposed to extensive loads such as pressurization and temperature changes which can affect the properties of the material significantly depending on the load spectrum applied. In view of developing a procedure to evaluate the residual service life of metallic components in nuclear power plants aged during service, metastable austenitic steel AISI 347 (German designation: X6CrNiNb18−10) has been considered as an example. To this purpose, total strain-controlled fatigue tests were carried out under different environmental conditions and monitored by continuously measuring thermometric, resistometric, electromagnetic and electrochemical parameters. These parameters provide an information gain in terms of material characterization when compared to conventional strain measurements. Based on these parameters, the short time evaluation procedure StrainLife has been developed, which allows the determination of local S-N curves with a significantly reduced effort as compared with traditional procedures. This method has been implemented into the structural simulation program PROST for the integrity assessment of the components while considering local fatigue properties. This very effective method allows for the determination of local fatigue properties including the strain-specific local scatter of the metallic microstructure properties of the material which has not been possible by traditional means.
ISSN:0025-5300
2195-8572
DOI:10.3139/120.111417