Synthesis of Frame Field-Aligned Multi-Laminar Structures
Florian Cyril Stutz (1), Tim Felle Olsen (1), Jeroen Peter Groen (1),, Niels Aage (1), Ole Sigmund (1), Justin Solomon (2), Jakob Andreas, B{\ae}rentzen (1) ((1) Technical University of Denmark, (2) Massachusetts, Institute of Technology)

TL;DR
This paper introduces a novel method for generating multi-laminar microstructures aligned with frame fields in topology optimization, using stream surfaces and optimization to produce detailed, well-structured designs.
Contribution
It proposes a new approach to create multi-laminar structures from frame fields without relying on traditional parametrization or combing techniques.
Findings
Effective generation of multi-laminar structures from frame fields.
Robust stream surface tracing unaffected by singularities.
Two methods for converting stream surfaces into volumetric and hexahedral structures.
Abstract
In the field of topology optimization, the homogenization approach has been revived as an important alternative to the established, density-based methods because it can represent the microstructural design at a much finer length-scale than the computational grid. The optimal microstructure for a single load case is an orthogonal rank-3 laminate. A rank-3 laminate can be described in terms of frame fields, which are also an important tool for mesh generation in both 2D and 3D. We propose a method for generating multi-laminar structures from frame fields. Rather than relying on integrative approaches that find a parametrization based on the frame field, we find stream surfaces, represented as point clouds aligned with frame vectors, and we solve an optimization problem to find well-spaced collections of such stream surfaces. The stream surface tracing is unaffected by the presence of…
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