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A cohesive zone framework for environmentally assisted fatigue

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Title: A cohesive zone framework for environmentally assisted fatigue
Authors: Del Busto, S
Betegon, C
Martinez-Paneda, E
Item Type: Journal Article
Abstract: We present a compelling finite element framework to model hydrogen assisted fatigue by means of a hydrogen- and cycle-dependent cohesive zone formulation. The model builds upon: (i) appropriate environmental boundary conditions, (ii) a coupled mechanical and hydrogen diffusion response, driven by chemical potential gradients, (iii) a mechanical behavior characterized by finite deformation J2 plasticity, (iv) a phenomenological trapping model, (v) an irreversible cohesive zone formulation for fatigue, grounded on continuum damage mechanics, and (vi) a traction-separation law dependent on hydrogen coverage calculated from first principles. The computations show that the present scheme appropriately captures the main experimental trends; namely, the sensitivity of fatigue crack growth rates to the loading frequency and the environment. The role of yield strength, work hardening, and constraint conditions in enhancing crack growth rates as a function of the frequency is thoroughly investigated. The results reveal the need to incorporate additional sources of stress elevation, such as gradient-enhanced dislocation hardening, to attain a quantitative agreement with the experiments.
Issue Date: 1-Nov-2017
Date of Acceptance: 16-May-2017
URI: http://hdl.handle.net/10044/1/73443
DOI: https://doi.org/10.1016/j.engfracmech.2017.05.021
ISSN: 0013-7944
Publisher: Elsevier
Start Page: 210
End Page: 226
Journal / Book Title: Engineering Fracture Mechanics
Volume: 185
Copyright Statement: © 2017 Elsevier Ltd. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/.
Keywords: Science & Technology
Technology
Mechanics
Hydrogen embrittlement
Cohesive zone models
Hydrogen diffusion
Finite element analysis
Fatigue crack growth
STRAIN GRADIENT PLASTICITY
CRACK-PROPAGATION
HYDROGEN DIFFUSION
FINITE-ELEMENT
STRENGTH
FRACTURE
GROWTH
NUCLEATION
TRANSPORT
Science & Technology
Technology
Mechanics
Hydrogen embrittlement
Cohesive zone models
Hydrogen diffusion
Finite element analysis
Fatigue crack growth
STRAIN GRADIENT PLASTICITY
CRACK-PROPAGATION
HYDROGEN DIFFUSION
FINITE-ELEMENT
STRENGTH
FRACTURE
GROWTH
NUCLEATION
TRANSPORT
cond-mat.mtrl-sci
cond-mat.mtrl-sci
Mechanical Engineering & Transports
Publication Status: Published
Conference Place: Gijon, SPAIN
Online Publication Date: 2017-05-27
Appears in Collections:Civil and Environmental Engineering