Crafting Plaster through Continuous Mobile Robotic Fabrication On-Site (2020-11)¶
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Journal Article - Construction Robotics, Vol. 4, Iss. 3-4, pp. 261-271
Abstract
Industrialization of architectural components and technological advances have had a significant impact on how we design and build. These developments, resulting in mass-produced and panelized architectural components, have rationalized building construction. However, they often do not reveal the true potential of the inherent qualities of malleable materials. This research investigates the bespoke design potentials of combining a cementitious plaster, with a robotic spraying and forming process, and proposes an adaptive thin-layer additive manufacturing method for plasterwork. Research goals address an onsite construction system that is capable of performing continuous robotic plaster spraying on building elements. To support the understanding of the complex-to-simulate material behavior in this process, systematic studies and physical testing are proposed to be conducted to collect empirical knowledge and data. The goal is to explore bespoke surface qualities, with minimal waste, moving away from the modular and standardized form of the material. The paper presents the preliminary results and findings of the method that aims addressing the challenge of an adaptive construction system capable of performing continuous fabrication, for which mobile robots are proposed to be deployed.
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7 References
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Hold Up:
Machine Delay in Architectural Design - Helm Volker, Jenny Ercan, Gramazio Fabio, Kohler Matthias (2012-10)
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Robotic AeroCrete:
A Novel Robotic Spraying and Surface Treatment Technology for the Production of Slender Reinforced Concrete Elements - Zhang Xu, Li Mingyang, Lim Jian, Weng Yiwei et al. (2018-08)
Large-Scale 3D Printing by a Team of Mobile Robots
14 Citations
- Gantner Stefan, Rennen Philipp, Amiri Fatemeh, Rothe Tom et al. (2025-05)
Robotic Frame Winding:
Prefabricated Fiber Structures as Formwork and Reinforcement for Digitally Fabricated Shell-Like Concrete Elements - Chadha Kunaljit, Vasey Lauren, Gramazio Fabio, Kohler Matthias (2025-02)
Adaptive Robotic Tamping:
A Novel Robotic Method for Formative Surface Finishing in Earth-Based Additive Manufacturing - Çapunaman Özgüç, Farrokhsiar Paniz, Bilén Sven, Duarte José et al. (2025-01)
Vision-Based Sensing and Digital Twin-Technologies in Conformal 3D Concrete Printing:
Exploring Operational Accuracy, Adaptability, and Scalability, and Investigating Monitoring-Capabilities in Large-Scale Applications - Dörfler Kathrin, Dielemans Gido, Leutenegger Stefan, Jenny Ercan et al. (2024-09)
Advancing Construction in Existing Contexts:
Prospects and Barriers of 3D Printing with Mobile Robots for Building Maintenance and Repair - Zamani Alireza, Mohseni Alale, Çapunaman Özgüç (2023-09)
Reconfigurable Formwork System for Vision-Informed Conformal Robotic 3D Printing - Çapunaman Özgüç, Iseman Emily, Gürsoy Benay (2023-07)
Material in the Loop Fabrication:
A Vision-Based Adaptive Clay 3D Printing Workflow on Indeterminate Sand Surfaces - Lloret-Fritschi Ena, Choma Joseph, Scotto Fabio, Szabó Anna et al. (2023-02)
In-Crease:
Less Concrete More Paper - Jenny Ercan, Pietrasik Lukasz, Sounigo Eliott, Tsai Ping-Hsun et al. (2022-11)
Continuous Mobile Thin-Layer On-Site Printing - Frangez Valens, Taha Nizar, Feihl Nicolas, Lloret-Fritschi Ena et al. (2022-10)
Geometric Feedback System for Robotic Spraying - Jenny Ercan, Mitterberger Daniela, Lloret-Fritschi Ena, Vasey Lauren et al. (2022-09)
Robotic On-Site Adaptive Thin-Layer Printing:
Challenges and Workflow for Design and Fabrication of Bespoke Cementitious Plasterwork at Full-Architectural-Scale - Jenny Ercan, Lloret-Fritschi Ena, Jenny David, Sounigo Eliott et al. (2022-06)
Robotic Plaster Spraying:
Crafting Surfaces with Adaptive Thin-Layer Printing - Placzek Gerrit, Brohmann Leon, Mawas Karam, Schwerdtner Patrick et al. (2021-11)
A Lean-Based Production Approach for Shotcrete 3D Printed Concrete Components - Frangez Valens, Lloret-Fritschi Ena, Taha Nizar, Gramazio Fabio et al. (2021-10)
Depth-Camera-Based Rebar Detection and Digital Reconstruction for Robotic Concrete Spraying - Bedarf Patrick, Dutto Alessandro, Zanini Michele, Dillenburger Benjamin (2021-08)
Foam 3D Printing for Construction:
A Review of Applications, Materials, and Processes
BibTeX
@article{jenn_llor_gram_kohl.2020.CPtCMRFOS,
author = "Ercan Selen Jenny and Ena Lloret-Fritschi and Fabio Gramazio and Matthias Daniel Kohler",
title = "Crafting Plaster through Continuous Mobile Robotic Fabrication On-Site",
doi = "10.1007/s41693-020-00043-8",
year = "2020",
journal = "Construction Robotics",
volume = "4",
number = "3-4",
pages = "261--271",
}
Formatted Citation
E. S. Jenny, E. Lloret-Fritschi, F. Gramazio and M. D. Kohler, “Crafting Plaster through Continuous Mobile Robotic Fabrication On-Site”, Construction Robotics, vol. 4, no. 3–4, pp. 261–271, 2020, doi: 10.1007/s41693-020-00043-8.
Jenny, Ercan Selen, Ena Lloret-Fritschi, Fabio Gramazio, and Matthias Daniel Kohler. “Crafting Plaster Through Continuous Mobile Robotic Fabrication On-Site”. Construction Robotics 4, no. 3-4 (2020): 261–71. https://doi.org/10.1007/s41693-020-00043-8.