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A mechanism-based multi-trap phase field model for hydrogen assisted fracture

Title: A mechanism-based multi-trap phase field model for hydrogen assisted fracture
Authors: Isfandbod, M
Martinez-Paneda, E
Item Type: Journal Article
Abstract: We present a new mechanistic, phase field-based formulation for predicting hydrogen embrittlement. The multi-physics model developed incorporates, for the first time, a Taylor-based dislocation model to resolve the mechanics of crack tip deformation. This enables capturing the role of dislocation hardening mechanisms in elevating the tensile stress, hydrogen concentration and dislocation trap density within tens of microns ahead of the crack tip. The constitutive strain gradient plasticity model employed is coupled to a phase field formulation, to simulate the fracture process, and to a multi-trap hydrogen transport model. The analysis of stationary and propagating cracks reveals that the modelling framework presented is capable of adequately capturing the sensitivity to the hydrogen concentration, the loading rate, the material strength and the plastic length scale. In addition, model predictions are compared to experimental data of notch tensile strength versus hydrogen content on a high-strength steel; a very good agreement is attained. We define and implement both atomistic-based and phenomenological hydrogen degradation laws and discuss similarities, differences and implications for the development of parameter-free hydrogen embrittlement models.
Issue Date: 1-Sep-2021
Date of Acceptance: 24-May-2021
URI: http://hdl.handle.net/10044/1/90724
DOI: 10.1016/j.ijplas.2021.103044
ISSN: 0749-6419
Publisher: Elsevier
Journal / Book Title: International Journal of Plasticity
Volume: 144
Copyright Statement: © 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/
Sponsor/Funder: Engineering & Physical Science Research Council (EPSRC)
Funder's Grant Number: EP/V009680/1
Keywords: Science & Technology
Technology
Engineering, Mechanical
Materials Science, Multidisciplinary
Mechanics
Engineering
Materials Science
Phase field fracture
Strain gradient plasticity
Hydrogen embrittlement
Finite element analysis
Fracture mechanics
STRAIN-GRADIENT PLASTICITY
CRACK-GROWTH RESISTANCE
BRITTLE-FRACTURE
INTERGRANULAR FRACTURE
CONVENTIONAL THEORY
DUCTILE FRACTURE
DIFFUSION
STRENGTH
EMBRITTLEMENT
FORMULATION
Science & Technology
Technology
Engineering, Mechanical
Materials Science, Multidisciplinary
Mechanics
Engineering
Materials Science
Phase field fracture
Strain gradient plasticity
Hydrogen embrittlement
Finite element analysis
Fracture mechanics
STRAIN-GRADIENT PLASTICITY
CRACK-GROWTH RESISTANCE
BRITTLE-FRACTURE
INTERGRANULAR FRACTURE
CONVENTIONAL THEORY
DUCTILE FRACTURE
DIFFUSION
STRENGTH
EMBRITTLEMENT
FORMULATION
0905 Civil Engineering
0912 Materials Engineering
0913 Mechanical Engineering
Mechanical Engineering & Transports
Publication Status: Published online
Article Number: 103044
Online Publication Date: 2021-05-29
Appears in Collections:Civil and Environmental Engineering



This item is licensed under a Creative Commons License Creative Commons