Počet záznamů: 1  

The Effect of Temperature and Phase Shift on the Thermomechanical Fatigue of Nickel-Based Superalloy

  1. 1.
    SYSNO ASEP0558952
    Druh ASEPJ - Článek v odborném periodiku
    Zařazení RIVJ - Článek v odborném periodiku
    Poddruh JČlánek ve WOS
    NázevThe Effect of Temperature and Phase Shift on the Thermomechanical Fatigue of Nickel-Based Superalloy
    Tvůrce(i) Šulák, Ivo (UFM-A) ORCID
    Hrbáček, Karel (UFM-A)
    Obrtlík, Karel (UFM-A) RID, ORCID
    Celkový počet autorů3
    Číslo článku993
    Zdroj.dok.Metals. - : MDPI
    Roč. 12, č. 6 (2022)
    Poč.str.12 s.
    Jazyk dok.eng - angličtina
    Země vyd.CH - Švýcarsko
    Klíč. slovanickel-based superalloy ; high-temperature fatigue ; in-phase ; out-of-phase ; cyclic stress-strain curves ; fatigue life curves
    Vědní obor RIVJL - Únava materiálu a lomová mechanika
    Obor OECDAudio engineering, reliability analysis
    Způsob publikováníOpen access
    Institucionální podporaUFM-A - RVO:68081723
    UT WOS000816317300001
    EID SCOPUS85131562462
    DOI10.3390/met12060993
    AnotaceIn this paper, the minimum temperature and phase shift effects on the thermo-mechanical fatigue (TMF) behavior of Inconel 713LC are investigated. TMF tests were performed under 0 degrees (in-phase-IP) and +180 degrees (out-of-phase-OP) phase shifts between mechanical strain and temperature. Cylindrical specimens were cycled at constant mechanical strain amplitude with a strain ratio of R-epsilon =1. Tests were performed with temperature ranges of 300-900 degrees C and 500-900 degrees C. The heating and cooling rate was 5 degrees C/s. Fatigue hardening/softening curves and fatigue life data were assessed. Results show that out-of-phase loading was less damaging than in-phase loading. Scanning electron microscopy (SEM) examination of metallographic sections indicated that the life-reducing damage mechanism was intergranular cavitation under in-phase loading. Transmission electron microscopy (TEM) revealed honeycomb structures for IP loading. The plastic strain localization into persistent slip bands was typical for OP loading. For out-of-phase loading, fatigue damage appeared to be dominant. The increase in the temperature range led to a significant decrease in fatigue life. The reduction of fatigue life was far more pronounced for out-of-phase loading. This can be ascribed to the accelerated crack propagation at high tensile stress under out-of-phase loading as well as the amount of accommodated plastic strain deformation. Based on the SEM scrutiny of metallographic sections and TEM observations of dislocation arrangement, the prevailing damage mechanisms were documented and the lifetime behavior was accordingly discussed.
    PracovištěÚstav fyziky materiálu
    KontaktYvonna Šrámková, sramkova@ipm.cz, Tel.: 532 290 485
    Rok sběru2023
    Elektronická adresahttps://www.mdpi.com/2075-4701/12/6/993
Počet záznamů: 1  

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