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Article Dans Une Revue Journal of Structural Engineering Année : 2012

Mechanism-based approach for the deployment of a tensegrity-ring module

Résumé

Tensegrity structures are spatial systems composed of tension and compression components in a self-equilibrated prestress stable state. Although the concept is over 60 years old, few tensegrity-based structures have been used for engineering purposes. Tensegrity-ring modules are deployable modules composed of a single strut circuit that, when combined, create a hollow rope. The "hollow-rope" concept was shown to be a viable system for a tensegrity footbridge. This paper focuses on the deployment of pentagonal ring modules for a deployable footbridge application. The deployment sequence of a module is controlled by adjusting cable lengths (cable actuation). The geometric study of the deployment for a single module identified the path space allowing deployment without strut contact. Additionally, a deployment path that reduces the number of actuated cables was found. The number of actuated cables is further reduced by employing continuous cables. A first generation prototype was used to verify experimentally both findings. The structural response during both unfolding and folding is studied numerically using the dynamic relaxation method. The deployment-analysis algorithm applies cable-length changes first to create finite mechanisms allowing deployment and then to find new equilibrium configurations. Therefore, the actuation-step size is identified as the most critical parameter for a successful deployment analysis. Finally, it is shown that the deployability of the footbridge does not affect its element sizing since stresses during deployment are lower than in-service values.
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Dates et versions

hal-00855809 , version 1 (30-08-2013)

Identifiants

Citer

Landolf Rhode-Barbarigos, C. Schulin, Nizar Bel Hadj Ali, René Motro, Ian F.C. Smith. Mechanism-based approach for the deployment of a tensegrity-ring module. Journal of Structural Engineering, 2012, 138 (4), pp.539-548. ⟨10.1061/(ASCE)ST.1943-541X.0000491⟩. ⟨hal-00855809⟩
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