Small punch investigation of the dynamic strain aging behaviour and intermediate temperature embrittlement of Inconel 625

In this study, the deformation behaviour and mechanical property evolution of Inconel 625 were studied at different temperatures and deformation rates by using small punch test (SPT). With the increase in the temperature, small punch characteristic parameters decreased, and an approximate platform w...

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Veröffentlicht in:Materials today communications 2023-06, Vol.35, p.106368, Article 106368
Hauptverfasser: Shi, Shuaichen, Shu, Haitao, Li, Changjian, Wei, Yugao, Yang, Sisheng
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Sprache:eng
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Zusammenfassung:In this study, the deformation behaviour and mechanical property evolution of Inconel 625 were studied at different temperatures and deformation rates by using small punch test (SPT). With the increase in the temperature, small punch characteristic parameters decreased, and an approximate platform was found in the temperature range of 300–600 ℃. The dynamic strain aging (DSA) characteristics were observed in the load-displacement curves over a similar temperature range. To analyse the small punch DSA behaviour, the serration types, critical displacement, and maximum load drop were examined. The serration types changed from Type A to Type C when the temperature increased or the deformation rate decreased. The abnormal DSA was proven at around 600 ℃. Then, the influence of the strain rate was analysed and the intermediate temperature embrittlement was found at 600–700 ℃ as the strain rates decreased. Considering the difference between the SPT and the uniaxial tensile test, the influence of stress triaxiality on DSA was discussed. The similar change rule of serration types was presented. SPT was proven to be a reasonable method to evaluate the DSA behaviour which could replace uniaxial tensile test. [Display omitted] •Normal and abnormal dynamic strain aging can be evaluated by small punch test.•Intermediate temperature embrittlement were discussed by small punch test.•Serration type is related to stress triaxiality, temperature and deformation rate.
ISSN:2352-4928
2352-4928
DOI:10.1016/j.mtcomm.2023.106368