A multiaxial incremental fatigue damage formulation using nested damage surfaces

Multiaxial fatigue damage calculations under non-proportional variable amplitude loadings still remains a quite challenging task in practical applications, in part because most fatigue models require cycle identification and counting to single out individual load events before quantifying the damag...

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Main Authors: Marco Antonio Meggiolaro, Jaime Tupiassú Pinho de Castro, Hao Wu
Format: Article
Language:English
Published: Gruppo Italiano Frattura 2016-06-01
Series:Frattura ed Integrità Strutturale
Subjects:
Online Access:https://www.fracturae.com/index.php/fis/article/view/1730
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spelling doaj-578dad02893142dda8973e471cdca8f22021-01-27T17:15:59ZengGruppo Italiano FratturaFrattura ed Integrità Strutturale1971-89932016-06-011037A multiaxial incremental fatigue damage formulation using nested damage surfacesMarco Antonio MeggiolaroJaime Tupiassú Pinho de CastroHao Wu Multiaxial fatigue damage calculations under non-proportional variable amplitude loadings still remains a quite challenging task in practical applications, in part because most fatigue models require cycle identification and counting to single out individual load events before quantifying the damage induced by them. Moreover, to account for the non-proportionality of the load path of each event, semi-empirical methods are required to calculate path-equivalent ranges, e.g. using a convex enclosure or the MOI (Moment Of Inertia) method. In this work, a novel Incremental Fatigue Damage methodology is introduced to continuously account for the accumulation of multiaxial fatigue damage under service loads, without requiring rainflow counters or path-equivalent range estimators. The proposed approach is not based on questionable Continuum Damage Mechanics concepts or on the integration of elastoplastic work. Instead, fatigue damage itself is continuously integrated, based on damage parameters adopted by traditional fatigue models well tested in engineering practice. A framework of nested damage surfaces is introduced, allowing the calculation of fatigue damage even for general 6D multiaxial load histories. The proposed approach is validated by non-proportional tensiontorsion experiments on tubular 316L stainless steel specimens. https://www.fracturae.com/index.php/fis/article/view/1730Multiaxial fatigueVariable amplitude loadsNon-proportional multiaxial loadsNested fatigue damage surfacesIncremental damage calculation
collection DOAJ
language English
format Article
sources DOAJ
author Marco Antonio Meggiolaro
Jaime Tupiassú Pinho de Castro
Hao Wu
spellingShingle Marco Antonio Meggiolaro
Jaime Tupiassú Pinho de Castro
Hao Wu
A multiaxial incremental fatigue damage formulation using nested damage surfaces
Frattura ed Integrità Strutturale
Multiaxial fatigue
Variable amplitude loads
Non-proportional multiaxial loads
Nested fatigue damage surfaces
Incremental damage calculation
author_facet Marco Antonio Meggiolaro
Jaime Tupiassú Pinho de Castro
Hao Wu
author_sort Marco Antonio Meggiolaro
title A multiaxial incremental fatigue damage formulation using nested damage surfaces
title_short A multiaxial incremental fatigue damage formulation using nested damage surfaces
title_full A multiaxial incremental fatigue damage formulation using nested damage surfaces
title_fullStr A multiaxial incremental fatigue damage formulation using nested damage surfaces
title_full_unstemmed A multiaxial incremental fatigue damage formulation using nested damage surfaces
title_sort multiaxial incremental fatigue damage formulation using nested damage surfaces
publisher Gruppo Italiano Frattura
series Frattura ed Integrità Strutturale
issn 1971-8993
publishDate 2016-06-01
description Multiaxial fatigue damage calculations under non-proportional variable amplitude loadings still remains a quite challenging task in practical applications, in part because most fatigue models require cycle identification and counting to single out individual load events before quantifying the damage induced by them. Moreover, to account for the non-proportionality of the load path of each event, semi-empirical methods are required to calculate path-equivalent ranges, e.g. using a convex enclosure or the MOI (Moment Of Inertia) method. In this work, a novel Incremental Fatigue Damage methodology is introduced to continuously account for the accumulation of multiaxial fatigue damage under service loads, without requiring rainflow counters or path-equivalent range estimators. The proposed approach is not based on questionable Continuum Damage Mechanics concepts or on the integration of elastoplastic work. Instead, fatigue damage itself is continuously integrated, based on damage parameters adopted by traditional fatigue models well tested in engineering practice. A framework of nested damage surfaces is introduced, allowing the calculation of fatigue damage even for general 6D multiaxial load histories. The proposed approach is validated by non-proportional tensiontorsion experiments on tubular 316L stainless steel specimens.
topic Multiaxial fatigue
Variable amplitude loads
Non-proportional multiaxial loads
Nested fatigue damage surfaces
Incremental damage calculation
url https://www.fracturae.com/index.php/fis/article/view/1730
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