Infill topology and shape optimisation of lattice-skin structures
Xiao Xiao, Fehmi Cirak

TL;DR
This paper introduces a gradient-based method for optimizing the shape and infill of lattice-skin structures, considering their coupling, to enhance efficiency and mechanical performance, enabled by advanced additive manufacturing techniques.
Contribution
It presents a novel sequential optimization approach that jointly considers lattice topology, shape, and skin form, incorporating a penalization method and stability techniques for non-uniform structures.
Findings
Effective optimization of lattice-skin structures demonstrated through numerical examples.
The method improves structural efficiency and mechanical properties.
Stability and elimination of small struts achieved with new filtering techniques.
Abstract
Lattice-skin structures composed of a thin-shell skin and a lattice infill are widespread in nature and large-scale engineering due to their efficiency and exceptional mechanical properties. Recent advances in additive manufacturing, or 3D printing, make it possible to create lattice-skin structures of almost any size with arbitrary shape and geometric complexity. We propose a novel gradient-based approach to optimising both the shape and infill of lattice-skin structures to improve their efficiency further. The respective gradients are computed by fully considering the lattice-skin coupling while the lattice topology and shape optimisation problems are solved in a sequential manner. The shell is modelled as a Kirchhoff-Love shell and analysed using isogeometric subdivision surfaces, whereas the lattice is modelled as a pin-jointed truss. The lattice consists of many cells, possibly of…
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Taxonomy
TopicsTopology Optimization in Engineering · Advanced Numerical Analysis Techniques · 3D Shape Modeling and Analysis
