Predicting the complete tensile properties of additively manufactured Ti-6Al-4V by integrating three-dimensional microstructure statistics with a crystal plasticity model. (January 2022)
- Record Type:
- Journal Article
- Title:
- Predicting the complete tensile properties of additively manufactured Ti-6Al-4V by integrating three-dimensional microstructure statistics with a crystal plasticity model. (January 2022)
- Main Title:
- Predicting the complete tensile properties of additively manufactured Ti-6Al-4V by integrating three-dimensional microstructure statistics with a crystal plasticity model
- Authors:
- Azhari, Fatemeh
Wallbrink, Chris
Sterjovski, Zoran
Crawford, Bruce R.
Menzel, Adrian
Agius, Dylan
Wang, Chun H.
Schaffer, Graham - Abstract:
- Highlights: The complete stress-strain response of SLM Ti-6–4 was predicted by a CP-FE model. Crack band theory was used to eliminate mesh-sensitivity of the model. A statistically equivalent RVE was created from three orthogonal EBSD images. The CP-FE model was validated against unseen experimental data. Abstract: A multiscale finite element model integrating microstructure statistics with an enhanced three-dimensional (3D) crystal plasticity model including damage has been developed to predict the complete tensile stress-strain response of Ti-6Al-4V manufactured by selective laser melting. A statistically equivalent representative volume element (SERVE) was constructed from an orthogonal set of electron backscatter diffraction (EBSD) images capturing key statistical information such as the spatial distribution of the grain size and the crystallographic and morphological orientation of the grains. Working from this 3D SERVE as a statistical model of the real microstructure, the crystal plasticity finite element (CP-FE) method was then used to predict the complete tensile stress-strain response of the material, including damage post necking. For the first time, crack-band theory (CBT) was incorporated into the CP-FF model to accurately predict ductility and to minimize mesh size sensitivity, which is a common issue in existing models. The effects of the 3D SERVE size on the stress-strain response was investigated through a rigorous sensitivity analysis. The model wasHighlights: The complete stress-strain response of SLM Ti-6–4 was predicted by a CP-FE model. Crack band theory was used to eliminate mesh-sensitivity of the model. A statistically equivalent RVE was created from three orthogonal EBSD images. The CP-FE model was validated against unseen experimental data. Abstract: A multiscale finite element model integrating microstructure statistics with an enhanced three-dimensional (3D) crystal plasticity model including damage has been developed to predict the complete tensile stress-strain response of Ti-6Al-4V manufactured by selective laser melting. A statistically equivalent representative volume element (SERVE) was constructed from an orthogonal set of electron backscatter diffraction (EBSD) images capturing key statistical information such as the spatial distribution of the grain size and the crystallographic and morphological orientation of the grains. Working from this 3D SERVE as a statistical model of the real microstructure, the crystal plasticity finite element (CP-FE) method was then used to predict the complete tensile stress-strain response of the material, including damage post necking. For the first time, crack-band theory (CBT) was incorporated into the CP-FF model to accurately predict ductility and to minimize mesh size sensitivity, which is a common issue in existing models. The effects of the 3D SERVE size on the stress-strain response was investigated through a rigorous sensitivity analysis. The model was calibrated using one sample and validated against a second sample with a different microstructure and properties. The new multiscale model provides a basis for a comprehensive Integrated Computational Materials Engineering (ICME) tool to enable the rational design of new high-performance materials. … (more)
- Is Part Of:
- International journal of plasticity. Volume 148(2022)
- Journal:
- International journal of plasticity
- Issue:
- Volume 148(2022)
- Issue Display:
- Volume 148, Issue 2022 (2022)
- Year:
- 2022
- Volume:
- 148
- Issue:
- 2022
- Issue Sort Value:
- 2022-0148-2022-0000
- Page Start:
- Page End:
- Publication Date:
- 2022-01
- Subjects:
- Crystal plasticity based finite element modeling -- Additive manufacturing -- Titanium alloy -- Stress-strain response -- Crack-band theory
Plasticity -- Periodicals
Plasticité -- Périodiques
Plasticity
Periodicals
620.11233 - Journal URLs:
- http://www.sciencedirect.com/science/journal/07496419 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.ijplas.2021.103127 ↗
- Languages:
- English
- ISSNs:
- 0749-6419
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4542.470000
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British Library HMNTS - ELD Digital store - Ingest File:
- 20077.xml