Spatial winding: cooperative heterogeneous multi-robot system for fibrous structures

Author:

Duque Estrada RebecaORCID,Kannenberg FabianORCID,Wagner Hans Jakob,Yablonina Maria,Menges Achim

Abstract

AbstractThis research presents a cooperative heterogeneous multi-robot fabrication system for the spatial winding of filament materials. The system is based on the cooperation of a six-axis robotic arm and a customized 2 + 2 axis CNC gantry system. Heterogeneous multi-robot cooperation allows to deploy the strategy of Spatial Winding: a new method of sequential spatial fiber arrangement, based on directly interlocking filament-filament connections, achieved through wrapping one filament around another. This strategy allows to create lightweight non-regular fibrous space frame structures. The new material system was explored through physical models and digital simulations prior to deployment with the proposed robotic fabrication process. An adaptable frame setup was developed which allows the fabrication of a variety of geometries within the same frame. By introducing a multi-step curing process that integrates with the adaptable frame, the iterative production of continuous large-scale spatial frame structures is possible. This makes the structure’s scale agnostic of robotic reach and reduces the necessary formwork to the bare minimum. Through leveraging the capacities of two cooperating machines, the system allows to counteract some of their limitations. A flexible, dynamic and collaborative fabrication system is presented as a strategy to tailor the fiber in space and expand the design possibilities of lightweight fiber structures. The artifact of the proposed fabrication process is a direct expression of the material tectonics and the robotic fabrication system.

Funder

Deutsche Forschungsgemeinschaft

Universität Stuttgart

Publisher

Springer Science and Business Media LLC

Subject

General Medicine

Reference27 articles.

1. Alvarez M, Wagner HJ, Groenewolt A, Krieg OD, Kyjanek O, Sonntag D, Bechert S, Aldinger L, Menges A, Knippers J (2019) The buga wood pavilion. In: ACADIA 19: Ubiquity and Autonomy-Proceedings of the 39th Annual Conference of the Association for Computer Aided Design in Architecture (ACADIA), The University of Texas at Austin School of Architecture, Austin, Texas, Acadia Publishing Company, pp. 490–499

2. Augugliaro F, Zarfati E, Mirjan A, D’Andrea R (2015) Knot-tying with flying machines for aerial construction. In: 2015 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS), pp. 5917–5922

3. Bock T, Linner T (2016) Construction robots: elementary technologies and single-task construction robots, vol 3. Cambridge University Press, Cambridge

4. Bodea S, Dambrosio N, Zechmeister C, Gil Pérez M, Koslowski V, Rongen B, Dörstelmann M, Kyjanek O, Knippers J, Menges A (2020) BUGA fibre pavilion: towards robotically-fabricated composite building structures. UCL Press, London, pp 234–243

5. Chilton J (2000) Space grid structures. Architectural Press, New York

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