Topology and fibre orientation simultaneous optimisation: A design methodology for fibre-reinforced composite components

Author:

Caivano R1ORCID,Tridello A1,Paolino D1ORCID,Chiandussi G1

Affiliation:

1. Department of Mechanical and Aerospace Engineering, Politecnico di Torino, Turin, Italy

Abstract

Additive manufacturing for fibre-reinforced composite structures is rapidly diffusing, since it enables the production of lightweight structural parts characterized by complex geometries and tailored fibre orientations. Therefore, the development of design methodologies capable to simultaneously optimize the shape of the fibre-reinforced composite part and the fibre orientation in the additive manufacturing process is, at present, of utmost interest among industries and research centres. In this paper, a novel simultaneous optimisation method capable to optimise the topology and the local fibre orientation is proposed. The method is computationally cheap, fast convergent and permits to avoid stress peaks, working efficiently on 2D and on 3D models. The analytical formulation of the problem and the optimisation algorithm are at first described. The optimisation criteria are based on the uniform strain energy density distribution and the fibre alignement along the principal stress direction. The proposed method is then verified with several benchmarks from the literature and with a 3D illustrative example, confirming that it can be effectively and efficiently employed for the optimisation of composite components to be produced through additive manufacturing.

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

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1. Topology Optimization and Efficiency Evaluation of Short-Fiber-Reinforced Composite Structures Considering Anisotropy;Computation;2024-02-12

2. Tribological, mechanical, and metallurgical performance of natural fiber-reinforced composites: A comprehensive review;Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology;2023-11-07

3. More Stiffness with Less Fiber: End-to-End Fiber Path Optimization for 3D-Printed Composites;Proceedings of the 8th ACM Symposium on Computational Fabrication;2023-10-08

4. Spatially optimised fibre-reinforced composites with isosurface-controlled additive manufacturing constraints;Structural and Multidisciplinary Optimization;2023-05-23

5. Finite element simulation of additive manufacturing process of carbon allotropes;International Journal on Interactive Design and Manufacturing (IJIDeM);2023-03-05

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