TU Darmstadt / ULB / TUprints

Boolean finite cell method for multi-material problems including local enrichment of the Ansatz space

Petö, Márton ; Eisenträger, Sascha ; Duvigneau, Fabian ; Juhre, Daniel (2025)
Boolean finite cell method for multi-material problems including local enrichment of the Ansatz space.
In: Computational Mechanics : Solids, Materials, Complex Fluids, Fluid-Structure-Interaction, Biological Systems, Micromechanics, Multiscale Mechanics, Additive Manufacturing, 2023, 72 (4)
doi: 10.26083/tuprints-00028570
Article, Secondary publication, Publisher's Version

[img] Text
s00466-023-02305-y.pdf
Copyright Information: CC BY 4.0 International - Creative Commons, Attribution.

Download (1MB)
Item Type: Article
Type of entry: Secondary publication
Title: Boolean finite cell method for multi-material problems including local enrichment of the Ansatz space
Language: English
Date: 15 January 2025
Place of Publication: Darmstadt
Year of primary publication: October 2023
Place of primary publication: Berlin ; Heidelberg
Publisher: Springer
Journal or Publication Title: Computational Mechanics : Solids, Materials, Complex Fluids, Fluid-Structure-Interaction, Biological Systems, Micromechanics, Multiscale Mechanics, Additive Manufacturing
Volume of the journal: 72
Issue Number: 4
DOI: 10.26083/tuprints-00028570
Corresponding Links:
Origin: Secondary publication DeepGreen
Abstract:

The Finite Cell Method (FCM) allows for an efficient and accurate simulation of complex geometries by utilizing an unfitted discretization based on rectangular elements equipped with higher-order shape functions. Since the mesh is not aligned to the geometric features, cut elements arise that are intersected by domain boundaries or internal material interfaces. Hence, for an accurate simulation of multi-material problems, several challenges have to be solved to handle cut elements. On the one hand, special integration schemes have to be used for computing the discontinuous integrands and on the other hand, the weak discontinuity of the displacement field along the material interfaces has to be captured accurately. While for the first issue, a space-tree decomposition is often employed, the latter issue can be solved by utilizing a local enrichment approach, adopted from the extended finite element method. In our contribution, a novel integration scheme for multi-material problems is introduced that, based on the B-FCM formulation for porous media, originally proposed by Abedian and Düster (Comput Mech 59(5):877–886, 2017), extends the standard space-tree decomposition by Boolean operations yielding a significantly reduced computational effort. The proposed multi-material B-FCM approach is combined with the local enrichment technique and tested for several problems involving material interfaces in 2D and 3D. The results show that the number of integration points and the computational time can be reduced by a significant amount, while maintaining the same accuracy as the standard FCM.

Uncontrolled Keywords: Finite cell method, Local enrichment, Material interfaces, Discontinuous integrals, Extended finite element method
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-285705
Classification DDC: 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: 15 Jan 2025 12:45
Last Modified: 15 Jan 2025 12:45
SWORD Depositor: Deep Green
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/28570
PPN:
Export:
Actions (login required)
View Item View Item