Please use this identifier to cite or link to this item:
doi:10.22028/D291-35103
Title: | Microstructure-Based Lifetime Assessment of Austenitic Steel AISI 347 in View of Fatigue, Environmental Conditions and NDT |
Author(s): | Acosta, Ruth Heckmann, Klaus Sievers, Jürgen Schopf, Tim Bill, Tobias Starke, Peter Donnerbauer, Kai Lücker, Lukas Walther, Frank Boller, Christian |
Language: | English |
Title: | Applied Sciences |
Volume: | 11 |
Issue: | 23 |
Publisher/Platform: | MDPI |
Year of Publication: | 2021 |
Free key words: | nuclear engineering microstructure analysis damage fatigue corrosion non-destructive testing fatigue life evaluation structural mechanics numerical modeling AISI 347 |
DDC notations: | 500 Science |
Publikation type: | Journal Article |
Abstract: | The assessment of metallic materials used in power plants’ piping represents a big challenge due to the thermal transients and the environmental conditions to which they are exposed. At present, a lack of information related to degradation mechanisms in structures and materials is covered by safety factors in its design, and in some cases, the replacement of components is prescribed after a determined period of time without knowledge of the true degree of degradation. In the collaborative project “Microstructure-based assessment of maximum service life of nuclear materials and components exposed to corrosion and fatigue (MibaLeb)”, a methodology for the assessment of materials’ degradation is being developed, which combines the use of NDT techniques for materials characterization, an optimized fatigue lifetime analysis using short time evaluation procedures (STEPs) and numerical simulations. In this investigation, the AISI 347 (X6CrNiNb18-10) is being analyzed at different conditions in order to validate the methodology. Besides microstructural analysis, tensile and fatigue tests, all to characterize the material, a pressurized hot water pipe exposed to a series of flow conditions will be evaluated in terms of full-scale testing as well as prognostic evaluation, where the latter will be based on the materials’ data generated, which should prognose changes in the material’s condition, specifically in a pre-cracked stage. This paper provides an overview of the program, while the more material’s related aspects are presented in the subsequent paper. |
DOI of the first publication: | 10.3390/app112311214 |
Link to this record: | urn:nbn:de:bsz:291--ds-351030 hdl:20.500.11880/32136 http://dx.doi.org/10.22028/D291-35103 |
ISSN: | 2076-3417 |
Date of registration: | 6-Jan-2022 |
Faculty: | NT - Naturwissenschaftlich- Technische Fakultät |
Department: | NT - Materialwissenschaft und Werkstofftechnik |
Professorship: | NT - Prof. Dr. Christian Boller |
Collections: | SciDok - Der Wissenschaftsserver der Universität des Saarlandes |
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applsci-11-11214-v4.pdf | 7,02 MB | Adobe PDF | View/Open |
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