Realization of Topology Optimized Concrete Structures Using Robotic Abrasive Wire-Cutting of Expanded Polystyrene Formwork (2018-09)¶
Søndergaard Asbjørn, Feringa Jelle, Stan Florin, Maier Dana
Contribution - Robotic Fabrication in Architecture, Art and Design 2018, pp. 473-488
Abstract
This paper presents a new method for cost-effective realization of topology optimized structures using robotic abrasive wire-cutting of expanded polystyrene formwork. Topology optimization has shown potential for generating material efficient designs and increasing performance in architectural structures. However, the method results in complex, structural morphologies which frustrate efficient construction of said structures. To overcome this, and make the realization of the potential of topology optimization feasible in general construction, new approaches are needed. We propose an integrated method of ruled surface rationalization and robotically controlled abrasive wire-cutting of formwork parts in Expanded Polystyrene. The method is demonstrated through robotic production of EPS formwork using a pilot abrasive wire-cutting end-effector on a containerized robotic work cell with an ABB IRB 6700 industrial manipulator, extended with external rotary axis. The usability of the formwork is demonstrated through the construction of a 21 m, prefabricated demonstrator structure using Ultra High Performance Concrete.
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4 References
- Hack Norman, Lauer Willi (2014-04)
Mesh Mould:
Robotically Fabricated Spatial Meshes as Reinforced Concrete Formwork - Khoshnevis Behrokh (2003-11)
Automated Construction by Contour Crafting:
Related Robotics and Information Technologies - Lim Sungwoo, Buswell Richard, Le Thanh, Austin Simon et al. (2011-07)
Developments in Construction-Scale Additive Manufacturing Processes - Lloret-Fritschi Ena, Shahab Amir, Linus Mettler, Flatt Robert et al. (2014-03)
Complex Concrete Structures:
Merging Existing Casting Techniques with Digital Fabrication
3 Citations
- Najm-Eddine Asmae, Abouelmajd Mohamed, Najm-Eddine Youssef, Erritali Ilham et al. (2025-11)
Topological Optimization in 3D Concrete Printing Structures:
A Review - Bi Minghao, Tran Jonathan, Xia Lingwei, Ma Guowei et al. (2022-06)
Topology-Optimization for 3D Concrete Printing with Various Manufacturing-Constraints - Hack Norman, Lindemann Hendrik, Kloft Harald (2019-05)
Adaptive Modular Spatial Structures for Shotcrete 3D Printing
BibTeX
@inproceedings{snd_feri_stan_maie.2019.RoTOCSURAWCoEPF,
author = "Asbjørn Søndergaard and Jelle Feringa and Florin Stan and Dana Maier",
title = "Realization of Topology Optimized Concrete Structures Using Robotic Abrasive Wire-Cutting of Expanded Polystyrene Formwork",
doi = "10.1007/978-3-319-92294-2_36",
year = "2019",
pages = "473--488",
booktitle = "Robotic Fabrication in Architecture, Art and Design 2018: Radical Cross-Disciplinarity",
editor = "Jan Willmann and Philippe Block and Marco Hutter and Kendra Byrne and Tim Schork",
}
Formatted Citation
A. Søndergaard, J. Feringa, F. Stan and D. Maier, “Realization of Topology Optimized Concrete Structures Using Robotic Abrasive Wire-Cutting of Expanded Polystyrene Formwork”, in Robotic Fabrication in Architecture, Art and Design 2018: Radical Cross-Disciplinarity, 2019, pp. 473–488. doi: 10.1007/978-3-319-92294-2_36.
Søndergaard, Asbjørn, Jelle Feringa, Florin Stan, and Dana Maier. “Realization of Topology Optimized Concrete Structures Using Robotic Abrasive Wire-Cutting of Expanded Polystyrene Formwork”. In Robotic Fabrication in Architecture, Art and Design 2018: Radical Cross-Disciplinarity, edited by Jan Willmann, Philippe Block, Marco Hutter, Kendra Byrne, and Tim Schork, 473–88, 2019. https://doi.org/10.1007/978-3-319-92294-2_36.