Generation of planar tensegrity structures through cellular multiplication
Omar Aloui, David Orden, Landolf Rhode-Barbarigos

TL;DR
This paper introduces a bio-inspired cellular multiplication method for designing planar tensegrity structures, enabling integrated topology and form finding with controllable structural characteristics.
Contribution
It presents a novel cellular multiplication approach for combined topology identification and form finding in planar tensegrity structures, incorporating adhesion and fusion mechanisms.
Findings
The method allows control over the self-stress space through cellular steps.
It provides a basis for integrating design considerations into tensegrity structure generation.
The approach enables development of tensegrity systems with customizable properties.
Abstract
Tensegrity structures are frameworks in a stable self-equilibrated prestress state that have been applied in various fields in science and engineering. Research into tensegrity structures has resulted in reliable techniques for their form finding and analysis. However, most techniques address topology and form separately. This paper presents a bio-inspired approach for the combined topology identification and form finding of planar tensegrity structures. Tensegrity structures are generated using tensegrity cells (elementary stable self-stressed units that have been proven to compose any tensegrity structure) according to two multiplication mechanisms: cellular adhesion and fusion. Changes in the dimension of the self-stress space of the structure are found to depend on the number of adhesion and fusion steps conducted as well as on the interaction among the cells composing the system. A…
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