Fiber-Reinforcement of 3D Printed Concrete by Material-Extrusion-Tool-Paths Aligned to Principal Stress-Trajectories (2023-10)¶
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Contribution - Visions and Strategies for Reinforcing Additively Manufactured Constructions
Abstract
Additive manufacturing of cementitious materials is a rapidly growing branch of manufacturing both in research and industry, particularly the variant of material deposition by extrusion. This process results in a strong anisotropy in mechanical properties, owing largely to the interfaces between adjacent filaments. This anisotropy is even more pronounced when fiber reinforced mortars or continuous entrained reinforcement components such as cables are used. To exploit orientation-dependent performance, the print path can be designed to align with the principal (tensile) stress trajectories. However, obtaining an appropriate print path based on this concept poses several challenges, related to the filling of intermediate spaces between two trajectories. In this paper, an approach for planning such a robot toolpath is presented, elaborated, and illustrated by means of a case study on a well-known reference case. The main features of the tool planning method are the relaxation of the offset width, the avoidance of toolpaths with acute angles by intersecting offset curves, and a continuous toolpath.
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23 References
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3DLightBeam+:
Design, Simulation, and Testing of Carbon-Efficient Reinforced 3D Concrete Printed Beams - Breseghello Luca, Naboni Roberto (2022-05)
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Mechanical Behavior of Printed Strain-Hardening Cementitious Composites - Gantner Stefan, Rennen Philipp, Rothe Tom, Hühne Christian et al. (2022-06)
Core Winding:
Force-Flow-Oriented Fiber-Reinforcement in Additive Manufacturing with Concrete - Hack Norman, Mai (née Dressler) Inka, Brohmann Leon, Gantner Stefan et al. (2020-03)
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A Study on Impact-Resistance - Lowke Dirk, Vandenberg Aileen, Pierre Alexandre, Thomas Amaury et al. (2021-07)
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A Global Snapshot of 3D Concrete Printing and the Frontiers for Development - Mechtcherine Viktor, Buswell Richard, Kloft Harald, Bos Freek et al. (2021-02)
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Hardened Properties of 3D Printed Concrete:
The Influence of Process Parameters on Inter-Layer Adhesion
3 Citations
- Slepicka Martin, Borrmann André (2024-09)
Fabrication Information Modeling for Closed-Loop Design and Quality Improvement in Additive Manufacturing for Construction - Kloft Harald, Sawicki Bartłomiej, Bos Freek, Dörrie Robin et al. (2024-09)
Interaction of Reinforcement, Process, and Form in Digital Fabrication with Concrete - Nefs Karsten, Kroon Kim, Sloots Joes, Bos Freek et al. (2024-03)
Orientation-Dependency of 3D Printed SHCC at Increasing Length Scale
BibTeX
@inproceedings{auer_bos_olab_fisc.2023.FRo3PCbMETPAtPST,
author = "Daniel Auer and Freek Paul Bos and Mohammad Olabi and Oliver Fischer",
title = "Fiber-Reinforcement of 3D Printed Concrete by Material-Extrusion-Tool-Paths Aligned to Principal Stress-Trajectories",
doi = "10.52825/ocp.v3i.759",
year = "2023",
volume = "3",
booktitle = "Visions and Strategies for Reinforcing Additively Manufactured Constructions",
editor = "Asko Fromm and Norman Peter Hack",
}
Formatted Citation
D. Auer, F. P. Bos, M. Olabi and O. Fischer, “Fiber-Reinforcement of 3D Printed Concrete by Material-Extrusion-Tool-Paths Aligned to Principal Stress-Trajectories”, in Visions and Strategies for Reinforcing Additively Manufactured Constructions, 2023, vol. 3. doi: 10.52825/ocp.v3i.759.
Auer, Daniel, Freek Paul Bos, Mohammad Olabi, and Oliver Fischer. “Fiber-Reinforcement of 3D Printed Concrete by Material-Extrusion-Tool-Paths Aligned to Principal Stress-Trajectories”. In Visions and Strategies for Reinforcing Additively Manufactured Constructions, edited by Asko Fromm and Norman Peter Hack, Vol. 3, 2023. https://doi.org/10.52825/ocp.v3i.759.