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Mechanism-Based Approach for the Deployment of a Tensegrity-Ring Module
- Source :
- Journal of Structural Engineering, Journal of Structural Engineering, American Society of Civil Engineers, 2012, 138 (4), pp.539-548. ⟨10.1061/(ASCE)ST.1943-541X.0000491⟩
- Publication Year :
- 2012
- Publisher :
- American Society of Civil Engineers (ASCE), 2012.
-
Abstract
- 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 both findings experimentally. 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 because stresses during deployment are lower than in-service values. DOI:10.1061/(ASCE)ST.1943-541X.0000491. (C) 2012 American Society of Civil Engineers.
- Subjects :
- Deployable structures
0209 industrial biotechnology
Engineering
Design
Active structures
Mechanical engineering
020101 civil engineering
[SPI.MECA.MSMECA]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Materials and structures in mechanics [physics.class-ph]
02 engineering and technology
Vibration
0201 civil engineering
[PHYS.MECA.STRU]Physics [physics]/Mechanics [physics]/Structural mechanics [physics.class-ph]
020901 industrial engineering & automation
Dynamic relaxation
Tensegrity
Architecture
General Materials Science
Civil and Structural Engineering
[SHS.ARCHI]Humanities and Social Sciences/Architecture, space management
Dynamic relaxation method
business.industry
Tension (physics)
Mechanical Engineering
Tensegrity structures
Building and Construction
Structural engineering
Folding (DSP implementation)
[PHYS.MECA.MSMECA]Physics [physics]/Mechanics [physics]/Materials and structures in mechanics [physics.class-ph]
[SPI.GCIV]Engineering Sciences [physics]/Civil Engineering
[SPI.MECA.STRU]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Structural mechanics [physics.class-ph]
Mechanics of Materials
Software deployment
Path (graph theory)
business
Rope
Subjects
Details
- ISSN :
- 1943541X and 07339445
- Volume :
- 138
- Database :
- OpenAIRE
- Journal :
- Journal of Structural Engineering
- Accession number :
- edsair.doi.dedup.....d1b945c15876436e4dc3a7d9b582ea3f