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A large strain gradient-enhanced ductile damage model : finite element formulation, experiment and parameter identification

Sprave, L. and Menzel, A. LU (2020) In Acta Mechanica 231(12). p.5159-5192
Abstract

A gradient-enhanced ductile damage model at finite strains is presented, and its parameters are identified so as to match the behaviour of DP800. Within the micromorphic framework, a multi-surface model coupling isotropic Lemaitre-type damage to von Mises plasticity with nonlinear isotropic hardening is developed. In analogy to the effective stress entering the yield criterion, an effective damage driving force—increasing with increasing plastic strains—entering the damage dissipation potential is proposed. After an outline of the basic model properties, the setup of the (micro)tensile experiment is discussed and the importance of including unloading for a parameter identification with a material model including damage is emphasised.... (More)

A gradient-enhanced ductile damage model at finite strains is presented, and its parameters are identified so as to match the behaviour of DP800. Within the micromorphic framework, a multi-surface model coupling isotropic Lemaitre-type damage to von Mises plasticity with nonlinear isotropic hardening is developed. In analogy to the effective stress entering the yield criterion, an effective damage driving force—increasing with increasing plastic strains—entering the damage dissipation potential is proposed. After an outline of the basic model properties, the setup of the (micro)tensile experiment is discussed and the importance of including unloading for a parameter identification with a material model including damage is emphasised. Optimal parameters, based on an objective function including measured forces and the displacement field obtained from digital image correlation, are identified. The response of the proposed model is compared to a tensile experiment of a specimen with a different geometry as a first approach to validate the identified parameters.

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author
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organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
DIC measurements, Ductile damage, Gradient-enhanced formulation, Micromorphic model, Multi-surface formulation, Parameter identification
in
Acta Mechanica
volume
231
issue
12
pages
34 pages
publisher
Springer
external identifiers
  • scopus:85091733413
ISSN
0001-5970
DOI
10.1007/s00707-020-02786-5
language
English
LU publication?
yes
id
15d79c31-8dcd-4551-9896-6b03eafcfc40
date added to LUP
2020-10-28 13:43:39
date last changed
2022-04-19 01:26:49
@article{15d79c31-8dcd-4551-9896-6b03eafcfc40,
  abstract     = {{<p>A gradient-enhanced ductile damage model at finite strains is presented, and its parameters are identified so as to match the behaviour of DP800. Within the micromorphic framework, a multi-surface model coupling isotropic Lemaitre-type damage to von Mises plasticity with nonlinear isotropic hardening is developed. In analogy to the effective stress entering the yield criterion, an effective damage driving force—increasing with increasing plastic strains—entering the damage dissipation potential is proposed. After an outline of the basic model properties, the setup of the (micro)tensile experiment is discussed and the importance of including unloading for a parameter identification with a material model including damage is emphasised. Optimal parameters, based on an objective function including measured forces and the displacement field obtained from digital image correlation, are identified. The response of the proposed model is compared to a tensile experiment of a specimen with a different geometry as a first approach to validate the identified parameters.</p>}},
  author       = {{Sprave, L. and Menzel, A.}},
  issn         = {{0001-5970}},
  keywords     = {{DIC measurements; Ductile damage; Gradient-enhanced formulation; Micromorphic model; Multi-surface formulation; Parameter identification}},
  language     = {{eng}},
  number       = {{12}},
  pages        = {{5159--5192}},
  publisher    = {{Springer}},
  series       = {{Acta Mechanica}},
  title        = {{A large strain gradient-enhanced ductile damage model : finite element formulation, experiment and parameter identification}},
  url          = {{http://dx.doi.org/10.1007/s00707-020-02786-5}},
  doi          = {{10.1007/s00707-020-02786-5}},
  volume       = {{231}},
  year         = {{2020}},
}