The interest on fatigue assessment of steel and other alloys at high temperature has increasedcontinuously in the last years. However, high cycle fatigue of notched components at high temperaturehas not been deeply investigated experimentally and theoretically. The present paper investigates theaccuracy of Strain Energy Density (SED) averaged over a control volume approach when applied tohigh-temperature fatigue data from notched components. In the present work, a large bulk of high-temperature fatigue data, taken from the literature and regarding notched components made ofdifferent advanced materials, is reanalyzed. In detail: C45 carbon steel at 250° C, Inconel 718 at 500° C,and directionally solidified superalloy DZ125 at 850° C are considered. The main advantage of SEDaveraged over a control volume is that different geometries can be summarized in a single narrowscatter band. From an industrial viewpoint, the use of a geometry-independent parameter (and fatiguecurve) leads to a considerable advantage in terms of time and cost.

Advanced Materials for Applications at High Temperature: Fatigue Assessment by Means of Local Strain Energy Density / Gallo, Pasquale; Berto, Filippo. - In: ADVANCED ENGINEERING MATERIALS. - ISSN 1527-2648. - 18:12(2016), pp. 2010-2017. [10.1002/adem.201500547]

Advanced Materials for Applications at High Temperature: Fatigue Assessment by Means of Local Strain Energy Density

Gallo, Pasquale
Primo
;
2016-01-01

Abstract

The interest on fatigue assessment of steel and other alloys at high temperature has increasedcontinuously in the last years. However, high cycle fatigue of notched components at high temperaturehas not been deeply investigated experimentally and theoretically. The present paper investigates theaccuracy of Strain Energy Density (SED) averaged over a control volume approach when applied tohigh-temperature fatigue data from notched components. In the present work, a large bulk of high-temperature fatigue data, taken from the literature and regarding notched components made ofdifferent advanced materials, is reanalyzed. In detail: C45 carbon steel at 250° C, Inconel 718 at 500° C,and directionally solidified superalloy DZ125 at 850° C are considered. The main advantage of SEDaveraged over a control volume is that different geometries can be summarized in a single narrowscatter band. From an industrial viewpoint, the use of a geometry-independent parameter (and fatiguecurve) leads to a considerable advantage in terms of time and cost.
2016
12
Gallo, Pasquale; Berto, Filippo
Advanced Materials for Applications at High Temperature: Fatigue Assessment by Means of Local Strain Energy Density / Gallo, Pasquale; Berto, Filippo. - In: ADVANCED ENGINEERING MATERIALS. - ISSN 1527-2648. - 18:12(2016), pp. 2010-2017. [10.1002/adem.201500547]
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