volume 138 pages 101129

Holistic computational design within additive manufacturing through topology optimization combined with multiphysics multi-scale materials and process modelling

Mohamad Bayat 1
Olga L. Zinovieva 2
Federico Ferrari 1
C Ayas 3
Matthijs Langelaar 3
Jon Spangenberg 1
Roozbeh Salajeghe 1
Konstantinos Poulios 1
Sankhya Mohanty 1
Ole Sigmund 1
J. Hattel 1
Publication typeJournal Article
Publication date2023-09-01
scimago Q1
wos Q1
SJR8.566
CiteScore70.0
Impact factor40.0
ISSN00796425, 18732208
General Materials Science
Abstract
Additive manufacturing (AM) processes have proven to be a perfect match for topology optimization (TO), as they are able to realize sophisticated geometries in a unique layer-by-layer manner. From a manufacturing viewpoint, however, there is a significant likelihood of process-related defects within complex geometrical features designed by TO. This is because TO seldomly accounts for process constraints and conditions and is typically perceived as a purely geometrical design tool. On the other hand, advanced AM process simulations have shown their potential as reliable tools capable of predicting various process-related conditions and defects hence serving as a second-to-none material design tool for achieving targeted properties. Thus far, these two geometry and material design tools have been traditionally viewed as two entirely separate paradigms, whereas one must conceive them as a holistic computational design tool instead. More specifically, AM process models provide input to physics-based TO, where consequently, not only the designed component will function optimally, but also will have near-to-minimum manufacturing defects. In this regard, we aim at giving a thorough overview of holistic computational design tool concepts applied within AM. The paper is arranged in the following way: first, literature on TO for performance optimization is reviewed and then the most recent developments within physics-based TO techniques related to AM are covered. Process simulations play a pivotal role in the latter type of TO and serve as additional constraints on top of the primary end-user optimization objectives. As a natural consequence of this, a comprehensive and detailed review of non-metallic and metallic additive manufacturing simulations is performed, where the latter is divided into micro-scale and deposition-scale simulations. Material multi-scaling techniques which are central to the process-structure-property relationships, are reviewed next followed by a subsection on process multi-scaling techniques which are reduced-order versions of advanced process models and are incorporable into physics-based TO due to their lower computational requirements. Finally the paper is concluded and suggestions for further research paths discussed.
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Bayat M. et al. Holistic computational design within additive manufacturing through topology optimization combined with multiphysics multi-scale materials and process modelling // Progress in Materials Science. 2023. Vol. 138. p. 101129.
GOST all authors (up to 50) Copy
Bayat M., Zinovieva O. L., Ferrari F., Ayas C., Langelaar M., Spangenberg J., Salajeghe R., Poulios K., Mohanty S., Sigmund O., Hattel J. Holistic computational design within additive manufacturing through topology optimization combined with multiphysics multi-scale materials and process modelling // Progress in Materials Science. 2023. Vol. 138. p. 101129.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.pmatsci.2023.101129
UR - https://doi.org/10.1016/j.pmatsci.2023.101129
TI - Holistic computational design within additive manufacturing through topology optimization combined with multiphysics multi-scale materials and process modelling
T2 - Progress in Materials Science
AU - Bayat, Mohamad
AU - Zinovieva, Olga L.
AU - Ferrari, Federico
AU - Ayas, C
AU - Langelaar, Matthijs
AU - Spangenberg, Jon
AU - Salajeghe, Roozbeh
AU - Poulios, Konstantinos
AU - Mohanty, Sankhya
AU - Sigmund, Ole
AU - Hattel, J.
PY - 2023
DA - 2023/09/01
PB - Elsevier
SP - 101129
VL - 138
SN - 0079-6425
SN - 1873-2208
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2023_Bayat,
author = {Mohamad Bayat and Olga L. Zinovieva and Federico Ferrari and C Ayas and Matthijs Langelaar and Jon Spangenberg and Roozbeh Salajeghe and Konstantinos Poulios and Sankhya Mohanty and Ole Sigmund and J. Hattel},
title = {Holistic computational design within additive manufacturing through topology optimization combined with multiphysics multi-scale materials and process modelling},
journal = {Progress in Materials Science},
year = {2023},
volume = {138},
publisher = {Elsevier},
month = {sep},
url = {https://doi.org/10.1016/j.pmatsci.2023.101129},
pages = {101129},
doi = {10.1016/j.pmatsci.2023.101129}
}