Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue

In this investigation, the fatigue behaviour of a ductile cast iron with high content of silicon and molybdenum, was experimentally characterized by performing isothermal low cycle fatigue (LCF) tests as well as out-of-phase thermomechanical fatigue (OPTMF) tests within the temperature range RT – 50...

Full description

Bibliographic Details
Main Authors: Garcia Trelles Elena, Schweizer Christoph, Eckmann Stefan
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201816519006
id doaj-d3180683e8614e92b1d70a69445e38fb
record_format Article
spelling doaj-d3180683e8614e92b1d70a69445e38fb2021-03-02T09:58:44ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011651900610.1051/matecconf/201816519006matecconf_fatigue2018_19006Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigueGarcia Trelles ElenaSchweizer ChristophEckmann StefanIn this investigation, the fatigue behaviour of a ductile cast iron with high content of silicon and molybdenum, was experimentally characterized by performing isothermal low cycle fatigue (LCF) tests as well as out-of-phase thermomechanical fatigue (OPTMF) tests within the temperature range RT – 500 °C. The studied material shows an embrittlement at temperatures nearby 400 °C. A possible explanation for the observed lifetime reduction is intergranular embrittlement (IE). A mechanism based lifetime model is proposed for assessing the lifetime. The model is based on the assumption that the crack advance per cycle is correlated with the cyclic crack tip opening displacement (ΔCTOD) attributed to the crack tip blunting caused by accumulation of plastic and creep deformations ahead of the crack tip. Intergranular embrittlement is accounted for by introducing a temperature and strain rate dependent prefactor in the crack growth law, which only acts in a certain temperature range. The model is calibrated for a GJS material and successfully applied to predict the lifetime of this material when undergoing isothermal and non-isothermal mechanical loadings. A probabilistic interpretation of the scatter of the investigated material is presented in conjunction with the random nature of the initial defect size distribution.https://doi.org/10.1051/matecconf/201816519006
collection DOAJ
language English
format Article
sources DOAJ
author Garcia Trelles Elena
Schweizer Christoph
Eckmann Stefan
spellingShingle Garcia Trelles Elena
Schweizer Christoph
Eckmann Stefan
Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue
MATEC Web of Conferences
author_facet Garcia Trelles Elena
Schweizer Christoph
Eckmann Stefan
author_sort Garcia Trelles Elena
title Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue
title_short Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue
title_full Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue
title_fullStr Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue
title_full_unstemmed Towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue
title_sort towards a temperature dependent and probabilistic lifetime concept for nodular ductile cast iron materials undergoing isothermal and thermo-mechanical fatigue
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description In this investigation, the fatigue behaviour of a ductile cast iron with high content of silicon and molybdenum, was experimentally characterized by performing isothermal low cycle fatigue (LCF) tests as well as out-of-phase thermomechanical fatigue (OPTMF) tests within the temperature range RT – 500 °C. The studied material shows an embrittlement at temperatures nearby 400 °C. A possible explanation for the observed lifetime reduction is intergranular embrittlement (IE). A mechanism based lifetime model is proposed for assessing the lifetime. The model is based on the assumption that the crack advance per cycle is correlated with the cyclic crack tip opening displacement (ΔCTOD) attributed to the crack tip blunting caused by accumulation of plastic and creep deformations ahead of the crack tip. Intergranular embrittlement is accounted for by introducing a temperature and strain rate dependent prefactor in the crack growth law, which only acts in a certain temperature range. The model is calibrated for a GJS material and successfully applied to predict the lifetime of this material when undergoing isothermal and non-isothermal mechanical loadings. A probabilistic interpretation of the scatter of the investigated material is presented in conjunction with the random nature of the initial defect size distribution.
url https://doi.org/10.1051/matecconf/201816519006
work_keys_str_mv AT garciatrelleselena towardsatemperaturedependentandprobabilisticlifetimeconceptfornodularductilecastironmaterialsundergoingisothermalandthermomechanicalfatigue
AT schweizerchristoph towardsatemperaturedependentandprobabilisticlifetimeconceptfornodularductilecastironmaterialsundergoingisothermalandthermomechanicalfatigue
AT eckmannstefan towardsatemperaturedependentandprobabilisticlifetimeconceptfornodularductilecastironmaterialsundergoingisothermalandthermomechanicalfatigue
_version_ 1724238024132263936