Projects per year
Abstract
Computational multiscale methods for analyzing and deriving constitutive responses have been used as a tool in engineering problems because of their ability to combine information at different length scales. However, their application in a nonlinear framework can be limited by high computational costs, numerical difficulties, and/or inaccuracies. In this paper, a hybrid methodology is presented which combines classical constitutive laws (model-based), a data-driven correction component, and computational multiscale approaches. A model-based material representation is locally improved with data from lower scales obtained by means of a nonlinear numerical homogenization procedure, leading to a model-data-driven approach. Therefore, macroscale simulations explicitly incorporate the true microscale response, maintaining the same level of accuracy that would be obtained with online micro-macro simulations but with a computational cost comparable to classical model-driven approaches. In the proposed approach, both model and data play a fundamental role allowing for the synergistic integration between a physics-based response and a machine learning black-box. Numerical applications are implemented in two dimensions for different tests investigating both material and structural responses in large deformations. Overall, the presented model-data-driven methodology proves to be more versatile and accurate than methods based on classical model-driven, as well as pure data-driven techniques. In particular, a lower number of training samples is required and robustness is higher than for simulations which solely rely on data.
| Original language | English |
|---|---|
| Article number | 103522 |
| Journal | International Journal of Engineering Science |
| Volume | 167 |
| E-pub ahead of print | 9 Jul 2021 |
| DOIs | |
| Publication status | Published - 1 Oct 2021 |
Keywords
- Computational homogenization
- Machine-learning
- Model-data-driven
- Multiscale simulations
- Ordinary kriging
ASJC Scopus subject areas
- General Materials Science
- General Engineering
- Mechanics of Materials
- Mechanical Engineering
Projects
- 2 Finished
-
Collaborative Research Centre 1153/2: Process Chain for Manufacturing Hybrid High Performance Components by Tailored Forming
Behrens, B.-A. (Principal Investigator)
1 Jul 2019 → 30 Jun 2023
Project: Research
-
PhoenixD: Cluster of Excellence 2122/1: Photonics, Optics, and Engineering – Innovation Across Disciplines
Morgner, U. (Principal Investigator) & Overmeyer, L. (Co-Principal Investigator)
1 Jan 2019 → 31 Dec 2025
Project: Research
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