Fabrication-Aware Design Method and Experimental Assessment of a Segmented Concrete Pedestrian Bridge Using SPI Technology. (2024-09)¶
, , , Asl Reza, , , , , , ,
Contribution - Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication, pp. 362-369
Abstract
This paper presents the experimental results of a 1:1 scale prototype of a segmented pedestrian bridge produced by the Additive Manufacturing (AM) technology Selective Paste Intrusion (SPI). SPI employs a technique where aggregates are selectively bound layer-by-layer in a particle bed with cement paste, enabling the 3D printing of large-scale, free-formed geometries with high shape accuracy and resolution while maintaining material properties comparable to conventionally cast unreinforced concrete. Traditional reinforced concrete structures, like bridges, often face challenges during their end-of-life phase, including limited potential for recoverability, reconstruction difficulties, or, if recycled, time-consuming material separation processes. This paper presents a novel methodology for the fabrication-aware design and additive manufacturing of a bridge structure using unreinforced concrete elements within a post-tensioned system to address these challenges. Leveraging SPI’s geometric versatility, mechanical properties, and material separability, a system of prefabricated, dry-assembled, and post-tensioned concrete elements is proposed, resulting in a bridge structure that is fully demountable, reusable, or recyclable at the end of its life cycle. While briefly outlining the fabrication-aware digital design workflow, this paper focuses on the material testing, the manufacturing process, and the experimental results of the assembly and disassembly workflow of the bridge structure. By presenting the potentials, challenges, and limitations of the proposed methods, this research aims to contribute to the understanding of SPI's applicability for automated building construction, offering insights into potential refinements and directions for future exploration.
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6 References
- Bhooshan Shajay, Dell’Endice Alessandro, Ranaudo Francesco, Mele Tom et al. (2024-02)
Unreinforced Concrete Masonry for Circular Construction - Dell’Endice Alessandro, Bouten Sam, Mele Tom, Block Philippe (2023-07)
Structural Design and Engineering of Striatus, an Unreinforced 3D Concrete Printed Masonry Arch Bridge - Fleckenstein Julia, Bertagna Federico, Piccioni Valeria, Fechner Mareen et al. (2023-09)
Revisiting Breuer Through Additive Manufacturing:
Passive Solar-Control-Design-Strategies for Bespoke Concrete Building Envelope Elements - Wangler Timothy, Lloret-Fritschi Ena, Reiter Lex, Hack Norman et al. (2016-10)
Digital Concrete:
Opportunities and Challenges - Weger Daniel, Gehlen Christoph (2021-01)
Particle-Bed Binding by Selective Paste-Intrusion:
Strength and Durability of Printed Fine-Grain Concrete Members - Weger Daniel, Pierre Alexandre, Perrot Arnaud, Kränkel Thomas et al. (2021-01)
Penetration of Cement-Pastes into Particle-Beds:
A Comparison of Penetration Models
2 Citations
- Dietrich Sebastian, Schneider Philip, Richter Christiane, Najian Asl Reza et al. (2025-08)
Multi-Fidelity Structural Design for 3D Concrete Printing with Selective Paste Intrusion - Keune Anna, Simšič Živa, Kloft Harald, Dörfler Kathrin (2025-06)
AMC Edu:
Lab Design to Learn About Additive Manufacturing in Construction
BibTeX
@inproceedings{schn_diet_rich_asl.2024.FADMaEAoaSCPBUST,
author = "Philip Schneider and Sebastian Dietrich and Christiane Richter and Reza Najian Asl and Alexander Straßer and Thomas Kränkel and Kai-Uwe Bletzinger and Christoph Gehlen and Harald Kloft and Pierluigi D'Acunto and Kathrin Dörfler",
title = "Fabrication-Aware Design Method and Experimental Assessment of a Segmented Concrete Pedestrian Bridge Using SPI Technology.",
doi = "10.1007/978-3-031-70031-6_42",
year = "2024",
volume = "53",
pages = "362--369",
booktitle = "Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication",
editor = "Dirk Lowke and Niklas Freund and David Böhler and Friedrich Herding",
}
Formatted Citation
P. Schneider, “Fabrication-Aware Design Method and Experimental Assessment of a Segmented Concrete Pedestrian Bridge Using SPI Technology.”, in Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication, 2024, vol. 53, pp. 362–369. doi: 10.1007/978-3-031-70031-6_42.
Schneider, Philip, Sebastian Dietrich, Christiane Richter, Reza Najian Asl, Alexander Straßer, Thomas Kränkel, Kai-Uwe Bletzinger, et al.. “Fabrication-Aware Design Method and Experimental Assessment of a Segmented Concrete Pedestrian Bridge Using SPI Technology.”. In Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication, edited by Dirk Lowke, Niklas Freund, David Böhler, and Friedrich Herding, 53:362–69, 2024. https://doi.org/10.1007/978-3-031-70031-6_42.