Reinforced Particle-Bed Printing by Combination of the Selective Paste-Intrusion Method with Wire and Arc Additive Manufacturing (2020-07)¶
, , , Prottung Sophia, , , ,
Contribution - Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication, pp. 978-987
Abstract
The selective paste intrusion (SPI) is a particle-bed based Additive Manufacturing technology, which spreads particles in small layers and bonds them locally with cement paste. One advantage of this technology compared to other AM processes is that no support structures for cantilevers are required. Furthermore, SPI-made components achieve almost isotropic compressive strength (>70 MPa), high durability, and shape accuracy. However, to qualify the SPI process for the production of structural concrete elements, the inclusion of reinforcement is necessary. This paper presents an approach to print the reinforcement during SPI simultaneously by using Wire and Arc Additive Manufacturing (WAAM). WAAM enables the fabrication of geometrically complex steel reinforcement structures with high build-up rates, whereby properties similar to those of construction steel can be achieved. This allows producing reinforced concrete structures according to the principle “form follows force”, which leads to ecological and economical components. The major challenge that arises from the combination of WAAM and SPI is the occurrence of high temperatures (approx. 1600 °C) during WAAM. Thus, a detrimental effect on the penetration behaviour and loss of strength of the concrete matrix is expected. This paper focusses on the heat propagation during WAAM and its potential effect on the paste rheology. The results of the rheological measurements show that an application of both tested cement paste mixtures is possible for welding distances of approx. 62–68 mm and 82–84 mm to the particle-bed which reduce the temperature to 70 °C and 50 °C without additional cooling.
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3 References
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24 Citations
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Reinforcement-Strategies for Additively Manufactured Concrete Elements:
Exploring the Potential of Different Reinforcement-Materials for Selective Cement-Activation - Straßer Alexander, Haynack Alexander, Kränkel Thomas, Gehlen Christoph (2024-09)
Additive Manufacturing by the Selective Paste-Intrusion:
Effect of the Distance of the Print Nozzle to the Particle-Bed on the Print Quality - Weger Daniel, Gartner Benjamin, Rausch Anne, Schießl-Pecka Angelika et al. (2024-09)
Realization of a Reinforced SPI Façade:
Direction-Dependent Material-Properties and Durability-Assessment - Babovic Neira, Laghi Vittoria, Kloft Harald (2024-07)
Branching Structure for Reinforcement Anchorage Produced with Wire and Arc Additive Manufacturing Technique - Slavcheva Galina, Artamonova Olga, Kotova Кristina, Shvedova Mariia et al. (2023-12)
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Integrating Wire Arc Additive Manufacturing into Selective Paste-Intrusion for Reinforced Concrete Elements:
Effect of Temperature on the Mechanical Performance - Straßer Alexander, Riegger Felix, Hamilton Leigh, Kränkel Thomas et al. (2023-09)
Selective Paste-Intrusion:
Integration of Reinforcement by WAAM - Kloft Harald, Dörfler Kathrin, Bährens Meike, Dielemans Gido et al. (2022-09)
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Additive Manufacturing in Construction - Riegger Felix, Zäh Michael (2022-08)
Additive Manufacturing of Steel-Reinforcements:
Integration of WAAM Reinforcements in Particle-Bed 3D Printing with Selective Cement-Paste-Intrusion - Straßer Alexander, Matthäus Carla, Weger Daniel, Kränkel Thomas et al. (2022-06)
Selective Paste-Intrusion:
Stability of Cement-Paste Mixtures Towards Changing Ambient Temperature - Weger Daniel, Gehlen Christoph, Korte Waldemar, Meyer-Brötz Fabian et al. (2022-02)
Building Rethought:
3D Concrete Printing in Building Practice - Putten Jolien, Nerella Venkatesh, Mechtcherine Viktor, Hondt Mélody et al. (2022-01)
Properties and Testing of Printed Cement-Based Materials in Hardened State - Weger Daniel, Stengel Thorsten, Gehlen Christoph, Maciejewski Yannick et al. (2021-12)
Approval for the Construction of the First 3D Printed Detached House in Germany:
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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 - Matthäus Carla, Kofler Nadine, Kränkel Thomas, Weger Daniel et al. (2020-10)
Inter-Layer Reinforcement Combined with Fiber-Reinforcement for Extruded Lightweight Mortar Elements
BibTeX
@inproceedings{wege_baie_stra_prot.2020.RPBPbCotSPIMwWaAAM,
author = "Daniel Weger and Daniel Baier and Alexander Straßer and Sophia Prottung and Thomas Kränkel and Andreas Bachmann and Christoph Gehlen and Michael F. Zäh",
title = "Reinforced Particle-Bed Printing by Combination of the Selective Paste-Intrusion Method with Wire and Arc Additive Manufacturing: A First Feasibility Study",
doi = "10.1007/978-3-030-49916-7_95",
year = "2020",
volume = "28",
pages = "978--987",
booktitle = "Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2020",
editor = "Freek Paul Bos and Sandra Simaria de Oliveira Lucas and Robert Johannes Maria Wolfs and Theo A. M. Salet",
}
Formatted Citation
D. Weger, “Reinforced Particle-Bed Printing by Combination of the Selective Paste-Intrusion Method with Wire and Arc Additive Manufacturing: A First Feasibility Study”, in Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2020, 2020, vol. 28, pp. 978–987. doi: 10.1007/978-3-030-49916-7_95.
Weger, Daniel, Daniel Baier, Alexander Straßer, Sophia Prottung, Thomas Kränkel, Andreas Bachmann, Christoph Gehlen, and Michael F. Zäh. “Reinforced Particle-Bed Printing by Combination of the Selective Paste-Intrusion Method with Wire and Arc Additive Manufacturing: A First Feasibility Study”. In Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2020, edited by Freek Paul Bos, Sandra Simaria de Oliveira Lucas, Robert Johannes Maria Wolfs, and Theo A. M. Salet, 28:978–87, 2020. https://doi.org/10.1007/978-3-030-49916-7_95.