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Investigation of the influence of thermal overloads on mechanical properties of S500 high-strength structural steel using electromagnetic testing technology
Citation Link: https://doi.org/10.15480/882.16415
Publikationstyp
Journal Article
Date Issued
2025-04-12
Sprache
English
TORE-DOI
Volume
36
Start Page
4020
End Page
4030
Citation
Journal of Materials Research and Technology 36: 4020–4030 (2025)
Publisher DOI
Scopus ID
Publisher
Elsevier
High-strength steels are mostly realized via a very fine-grained microstructure by a thermomechanical manufacturing process. If the temperature of the steels exceeds a critical range, e.g., due to a fire or inappropriate flame straightening, coarse grain formation, and thus local damage in the form of softening of the structure can occur. This results in a lower fatigue strength. Currently, there is no possibility to inspect the mechanical properties directly on the structure after thermal exposure. To investigate the influence of thermal overloads on mechanical properties and the qualification of non-destructive electromagnetic testing technology for the detection of thermal damage, tensile and fatigue specimens of S500G1+M high-strength structural steel were subjected to different heat treatments in a preheated chamber furnace at temperatures of 550, 1000 and 1300 °C. The resulting changes in microstructure, hardness, yield strength, tensile strength, elastic modulus, fatigue strength and electromagnetic signals were compared to the initial state. The combined results show that thermal damage leading to a degradation of the mechanical properties can be detected using harmonic analysis of eddy current signals. Referencing the initial state in the impedance plane of the third harmonic, a deviation can be detected directly on the component or structure using rapid and non-destructive testing, thus indicating a change in the fatigue strength. In addition, the amplitudes of the first and third harmonics show an inverse correlation to hardness, yield strength and tensile strength.
Subjects
Eddy current testing
Fatigue strength
Heat treatment
High-strength steel
Non-destructive testing
DDC Class
620.11: Engineering Materials
Publication version
publishedVersion
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Adobe PDF