Morph & Slerp (2020-11)¶
Bhooshan Shajay, ,
Contribution - Proceedings of the 5th Annual ACM Symposium on Computational Fabrication
Abstract
Synthesis of shapes that are guaranteed to be physically produced by Robotic 3D printing of concrete, needs research attention. This is necessitated by the rapid development of the hardware, commercial availability of and interest in concrete printing. Further the need is amplified by the lack of easy-to-implement-and-use shape-design tools. Together, they provide the context of the proposed work. A necessary feature for geometries to be printable' is that each consecutive layer onto which material is deposited should change gradually such that it has sufficient overlap with the preceding layer (spatial coherence of print paths). The computational handling of these aspects have been introduced by Bhooshan et al. (2018) including the use of a time evolving scalar-field to represent the shape to be designed - the so-called Function Representation (FRep). This paper significantly extends the previous work by (a) fully parametrising the shape description for 3D printing of concrete by decomposing the shape as a combination of shape interpolation (Morph) and affine interpolation (Slerp), and (b) replacing the linear, cross-fading interpolation scheme resulting in physically problematic artefacts with a scheme that produces smooth, spatially coherent outcomes. An easy-to-implement software application has been prototyped. It couples the shape description with a guiding heuristic to design topologically complex, physically plausible shapes with relative ease. Thecoupling significantly reduces the effort and expertise needed to produce shapes that are printablewhilst also providing intuitive, visual feedback to designers. This is particularly useful in the current context where computer simulation of the stability of the layers during printing is activelybeing developed, experimental in nature and still computationally expensive. The presented approachdoes not, however, automatically guarantee printable outputs. The shape description and outputs may, nonetheless, be readily used as good candidates for further optimisation to guarantee print readiness.
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5 References
- Bhooshan Shajay, Ladinig Johannes, Mele Tom, Block Philippe (2018-09)
Function Representation for Robotic 3D Printed Concrete - Bhooshan Shajay, Mele Tom, Block Philippe (2017-09)
Equilibrium-Aware Shape Design for Concrete Printing - Carneau Paul, Mesnil Romain, Roussel Nicolas, Baverel Olivier (2020-04)
Additive Manufacturing of Cantilever:
From Masonry to Concrete 3D Printing - Suiker Akke (2018-01)
Mechanical Performance of Wall Structures in 3D Printing Processes:
Theory, Design Tools and Experiments - Wangler Timothy, Lloret-Fritschi Ena, Reiter Lex, Hack Norman et al. (2016-10)
Digital Concrete:
Opportunities and Challenges
8 Citations
- Chovghi Frederic, Richter Christiane, D'Acunto Pierluigi (2025-07)
Fabrication-Aware Structural Form-Finding for Additive Manufacturing:
An Equilibrium-Based Approach - Li Shuai, Lan Tian, Nguyen Hung-Xuan, Tran Jonathan (2024-10)
Frontiers in Construction 3D Printing:
Self-Monitoring, Multi-Robot, Drone-Assisted Processes - Chovghi Frederic, Richter David, Dörfler Kathrin, D'Acunto Pierluigi (2024-08)
Reconsidering the Historical Cap Ceiling:
Layerwise Form-Finding of Self-Supporting Vaulted Structures for In-Situ 3D Printing - Bhooshan Shajay, Dell’Endice Alessandro, Ranaudo Francesco, Mele Tom et al. (2024-02)
Unreinforced Concrete Masonry for Circular Construction - Breseghello Luca, Hajikarimian Hamed, Jørgensen Henrik, Naboni Roberto (2023-07)
3DLightBeam+:
Design, Simulation, and Testing of Carbon-Efficient Reinforced 3D Concrete Printed Beams - Bhooshan Shajay, Bhooshan Vishu, Megens Johannes, Casucci Tommaso et al. (2022-09)
Print-Path Design for Inclined-Plane Robotic 3D Printing of Unreinforced Concrete - Bhooshan Shajay, Bhooshan Vishu, Dell’Endice Alessandro, Chu Jianfei et al. (2022-06)
The Striatus Bridge - Breseghello Luca, Naboni Roberto (2022-05)
Tool-Path -Based Design for 3D Concrete Printing of Carbon-Efficient Architectural Structures
BibTeX
@inproceedings{bhoo_mele_bloc.2020.MS,
author = "Shajay Bhooshan and Tom van Mele and Philippe Block",
title = "Morph & Slerp: Shape Description for 3D Printing of Concrete",
doi = "10.1145/3424630.3425413",
year = "2020",
booktitle = "Proceedings of the 5th Annual ACM Symposium on Computational Fabrication",
editor = "Emily Whiting",
}
Formatted Citation
S. Bhooshan, T. van Mele and P. Block, “Morph & Slerp: Shape Description for 3D Printing of Concrete”, in Proceedings of the 5th Annual ACM Symposium on Computational Fabrication, 2020. doi: 10.1145/3424630.3425413.
Bhooshan, Shajay, Tom van Mele, and Philippe Block. “Morph & Slerp: Shape Description for 3D Printing of Concrete”. In Proceedings of the 5th Annual ACM Symposium on Computational Fabrication, edited by Emily Whiting, 2020. https://doi.org/10.1145/3424630.3425413.