Tension/compression anisotropy enhanced topology design

authored by
Georgios Gaganelis, Dustin Roman Jantos, Peter Mark, Philipp Junker
Abstract

A strategy for tension/compression anisotropy enhancement of topology optimization approaches is presented. To this end, a spectral decomposition of stresses and strains into tension and compression contributions allows for a multi-material optimization that favors tension or compression affine materials, dependent on the predominant local state. Numerical computations hence yield the topology of a construction part with maximum stiffness at constraint design volume. Additionally, the spatial distribution of a tension affine and a compression affine material is optimized, which is motivated by concrete engineering: financially cheap material, for example concrete, is applied in compression dominant regions in favor of stiffer but more expensive material, which is applied only in tension dominant regions, for example steel. The enhancement is applied both to a classical (mathematical) optimization method and the thermodynamic topology optimization. Several numerical examples are investigated and yield design suggestions for tension/compression sensitive construction parts, e.g., for future lightweight structures made of reinforced concrete.

Organisation(s)
Institute of Continuum Mechanics
External Organisation(s)
Ruhr-Universität Bochum
Type
Article
Journal
Structural and Multidisciplinary Optimization
Volume
59
Pages
2227-2255
No. of pages
29
ISSN
1615-147X
Publication date
15.02.2019
Publication status
Published
Peer reviewed
Yes
ASJC Scopus subject areas
Software, Control and Systems Engineering, Computer Science Applications, Computer Graphics and Computer-Aided Design, Control and Optimization
Electronic version(s)
https://doi.org/10.1007/s00158-018-02189-0 (Access: Closed)
 

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