ANSYS Creep-Fatigue Assessment tool for EUROFER97 components

The damage caused by creep-fatigue is an important factor for materials at high temperatures. For in-vessel components of fusion reactors the material EUROFER97 is a candidate for structural application where it is subjected to irradiation and cyclic thermo-mechanical loads. To be able to evaluate f...

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Main Authors: M. Mahler, F. Özkan, J. Aktaa
Format: Article
Language:English
Published: Elsevier 2016-12-01
Series:Nuclear Materials and Energy
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S235217911530020X
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spelling doaj-465724927e524f0799a855ef403d08922020-11-24T21:13:24ZengElsevierNuclear Materials and Energy2352-17912016-12-019C53553810.1016/j.nme.2016.05.017ANSYS Creep-Fatigue Assessment tool for EUROFER97 componentsM. MahlerF. ÖzkanJ. AktaaThe damage caused by creep-fatigue is an important factor for materials at high temperatures. For in-vessel components of fusion reactors the material EUROFER97 is a candidate for structural application where it is subjected to irradiation and cyclic thermo-mechanical loads. To be able to evaluate fusion reactor components reliably, creep-fatigue damage has to be taken into account. In the frame of Engineering Data and Design Integration (EDDI) in EUROfusion Technology Work Programme rapid and easy design evaluation is very important to predict the critical regions under typical fusion reactor loading conditions. The presented Creep-Fatigue Assessment (CFA) tool is based on the creep-fatigue rules in ASME Boiler Pressure Vessel Code (BPVC) Section 3 Division 1 Subsection NH which was adapted to the material EUROFER97 and developed for ANSYS. The CFA tool uses the local stress, maximum elastic strain range and temperature from the elastic analysis of the component performed with ANSYS. For the assessment design fatigue and stress to rupture curves of EUROFER97 as well as isochronous stress vs. strain curves determined by a constitutive model considering irradiation influence are used to deal with creep-fatigue damage. As a result allowable number of cycles based on creep-fatigue damage interaction under given hold times and irradiation rates is obtained. This tool can be coupled with ANSYS MAPDL and ANSYS Workbench utilizing MAPDL script files.http://www.sciencedirect.com/science/article/pii/S235217911530020XCreep damageFatigue damageASME BPVCEUROFER97
collection DOAJ
language English
format Article
sources DOAJ
author M. Mahler
F. Özkan
J. Aktaa
spellingShingle M. Mahler
F. Özkan
J. Aktaa
ANSYS Creep-Fatigue Assessment tool for EUROFER97 components
Nuclear Materials and Energy
Creep damage
Fatigue damage
ASME BPVC
EUROFER97
author_facet M. Mahler
F. Özkan
J. Aktaa
author_sort M. Mahler
title ANSYS Creep-Fatigue Assessment tool for EUROFER97 components
title_short ANSYS Creep-Fatigue Assessment tool for EUROFER97 components
title_full ANSYS Creep-Fatigue Assessment tool for EUROFER97 components
title_fullStr ANSYS Creep-Fatigue Assessment tool for EUROFER97 components
title_full_unstemmed ANSYS Creep-Fatigue Assessment tool for EUROFER97 components
title_sort ansys creep-fatigue assessment tool for eurofer97 components
publisher Elsevier
series Nuclear Materials and Energy
issn 2352-1791
publishDate 2016-12-01
description The damage caused by creep-fatigue is an important factor for materials at high temperatures. For in-vessel components of fusion reactors the material EUROFER97 is a candidate for structural application where it is subjected to irradiation and cyclic thermo-mechanical loads. To be able to evaluate fusion reactor components reliably, creep-fatigue damage has to be taken into account. In the frame of Engineering Data and Design Integration (EDDI) in EUROfusion Technology Work Programme rapid and easy design evaluation is very important to predict the critical regions under typical fusion reactor loading conditions. The presented Creep-Fatigue Assessment (CFA) tool is based on the creep-fatigue rules in ASME Boiler Pressure Vessel Code (BPVC) Section 3 Division 1 Subsection NH which was adapted to the material EUROFER97 and developed for ANSYS. The CFA tool uses the local stress, maximum elastic strain range and temperature from the elastic analysis of the component performed with ANSYS. For the assessment design fatigue and stress to rupture curves of EUROFER97 as well as isochronous stress vs. strain curves determined by a constitutive model considering irradiation influence are used to deal with creep-fatigue damage. As a result allowable number of cycles based on creep-fatigue damage interaction under given hold times and irradiation rates is obtained. This tool can be coupled with ANSYS MAPDL and ANSYS Workbench utilizing MAPDL script files.
topic Creep damage
Fatigue damage
ASME BPVC
EUROFER97
url http://www.sciencedirect.com/science/article/pii/S235217911530020X
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