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Thermodynamically consistent concurrent material and structure optimization of elastoplastic multiphase hierarchical systems

Gangwar, Tarun ; Schillinger, Dominik (2025)
Thermodynamically consistent concurrent material and structure optimization of elastoplastic multiphase hierarchical systems.
In: Structural and Multidisciplinary Optimization, 2023, 66 (9)
doi: 10.26083/tuprints-00028349
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Item Type: Article
Type of entry: Secondary publication
Title: Thermodynamically consistent concurrent material and structure optimization of elastoplastic multiphase hierarchical systems
Language: English
Date: 16 January 2025
Place of Publication: Darmstadt
Year of primary publication: September 2023
Place of primary publication: Berlin ; Heidelberg ; New York
Publisher: Springer
Journal or Publication Title: Structural and Multidisciplinary Optimization
Volume of the journal: 66
Issue Number: 9
Collation: 31 Seiten
DOI: 10.26083/tuprints-00028349
Corresponding Links:
Origin: Secondary publication DeepGreen
Abstract:

The concept of concurrent material and structure optimization aims at alleviating the computational discovery of optimum microstructure configurations in multiphase hierarchical systems, whose macroscale behavior is governed by their microstructure composition that can evolve over multiple length scales from a few micrometers to centimeters. It is based on the split of the multiscale optimization problem into two nested sub-problems, one at the macroscale (structure) and the other at the microscales (material). In this paper, we establish a novel formulation of concurrent material and structure optimization for multiphase hierarchical systems with elastoplastic constituents at the material scales. Exploiting the thermomechanical foundations of elastoplasticity, we reformulate the material optimization problem based on the maximum plastic dissipation principle such that it assumes the format of an elastoplastic constitutive law and can be efficiently solved via modified return mapping algorithms. We integrate continuum micromechanics based estimates of the stiffness and the yield criterion into the formulation, which opens the door to a computationally feasible treatment of the material optimization problem. To demonstrate the accuracy and robustness of our framework, we define new benchmark tests with several material scales that, for the first time, become computationally feasible. We argue that our formulation naturally extends to multiscale optimization under further path-dependent effects such as viscoplasticity or multiscale fracture and damage.

Uncontrolled Keywords: Multiphase topology optimization, Concurrent design, Continuum micromechanics, Homogenization, Elastoplasticity, Path-dependent optimization
Identification Number: Artikel-ID: 195
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-283498
Classification DDC: 000 Generalities, computers, information > 004 Computer science
500 Science and mathematics > 510 Mathematics
600 Technology, medicine, applied sciences > 624 Civil engineering and environmental protection engineering
Divisions: 13 Department of Civil and Environmental Engineering Sciences > Mechanics > Numerical Mechanics
Date Deposited: 16 Jan 2025 13:42
Last Modified: 16 Jan 2025 13:42
SWORD Depositor: Deep Green
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/28349
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