Numerical and Experimental Evaluation of Structured Material for Use in Multiscale Topology Optimization

Author:

Vaverka Ondřej1ORCID,Červinek Ondřej1ORCID,Jaroš Jan1ORCID,Koutný Daniel1ORCID,Pantělejev Libor2ORCID

Affiliation:

1. Institute of Machine and Industrial Design BUT Brno Technická 2896/2 Brno 616 69 Czech Republic

2. Institute of Materials Science and Engineering BUT Brno Technická 2896/2 Brno 616 69 Czech Republic

Abstract

Multiscale topology optimization is a powerful tool for engineers seeking a design with minimum weight and maximum stiffness, using a structured material in the form of a lattice structure. Furthermore, the current trend is to combine multiple lattice topologies in one component to achieve the best possible response to local loading conditions while minimizing weight. Therefore, herein, a numerical and experimental evaluation by compression tests in two directions is performed for six basic lattice topologies and two hypotheses are tested. The first hypothesis states that an additional weight saving of more than 30% can be achieved by a better choice of lattice topology. The second hypothesis is based on the manufacturing limitations of the laser powder bed fusion technology and the assumption that a favorable loading direction parallel to the building direction exists. The first hypothesis is only confirmed for loading in the direction parallel to the building direction and the second only for two lattice topologies. When both hypotheses are combined, the additional weight reduction of the multiscale topology optimization result is 44.5% according to the numerical results and 32.7% according to the experimental verification.

Funder

Ministerstvo Školství, Mládeže a Tělovýchovy

Publisher

Wiley

Reference51 articles.

1. Generating optimal topologies in structural design using a homogenization method

2. Topology optimization of multi-scale structures: a review

3. Hierarchical optimization of material and structure

4. D.Brackett I.Ashcroft R.Hague in22nd Annual Int. Solid Freeform Fabrication Symp. University of Texas at Austin Austin United States2011 p.348.

5. Cellular Solids

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