Numerical Predictions of Bottom-Layer-Stability in Material-Extrusion Additive Manufacturing (2022-01)¶
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Journal Article - Journal of The Minerals, Metals & Materials, Vol. 74, Iss. 3, pp. 1096-1101
Abstract
Robocasting and 3D concrete printing are technologies that belong under the umbrella term material extrusion additive manufacturing. These two freeform fabrication methods are used to produce 3D structures/components in materials such as ceramic pastes, thermosets, and concrete. Common for the materials is their viscoplastic behavior during deposition and structural buildup (i.e., increase in yield stress) after deposition. The material’s complex nature makes it a non-trivial task to ensures that printed layers do not deform when depositing additional layers on top. In this article, we numerically investigate the influence ofthe yield stress buildup ofviscoplastic materials on the stability of the bottom layer during multilayer printing. Specifically, we have developed a computational flssssuid dynamics model that applies a scalar approach to alter the yield stress. The novel model provides fundamental knowledge on how to design the material’s rheology, so the bottom layer can withstand both the hydrostatic and extrusion pressure.
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7 References
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Extrusion-Based Additive Manufacturing with Cement-Based Materials:
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From Standard Formative Casting to Additive Manufacturing - Serdeczny Marcin, Comminal Raphaël, Pedersen David, Spangenberg Jon (2019-05)
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5 Citations
- Kachalov A., Sánchez P., Mollah Md., Ezquerro J. et al. (2025-07)
Numerical Analysis of Coaxially 3D Printed Lunar Habitats:
Integrating Regolith and PCM for Passive Temperature Control - Haghighat Negin, Mollah Md., Sannerud Stian, Boyer Julie et al. (2024-09)
Rheology and Printability of Cement-Paste Modified with Filler from Manufactured Sand - Cui Weijiu, Sun Haijun, Zhou Jiangang, Wang Sheng et al. (2024-07)
Geometric Quality Evaluation of Three-Dimensional Printable Concrete Using Computational Fluid Dynamics - Abbaoui Khalid, Korachi Issam, Jai Mostapha, Šeta Berin et al. (2024-04)
3D Concrete Printing Using Computational Fluid Dynamics:
Modeling of Material-Extrusion with Slip-Boundaries - Mollah Md., Comminal Raphaël, Silva Wilson, Šeta Berin et al. (2023-07)
Computational Fluid Dynamics Modelling and Experimental Analysis of Reinforcement-Bar-Integration in 3D Concrete Printing
BibTeX
@article{moll_comm_serd_pede.2022.NPoBLSiMEAM,
author = "Md. Tusher Mollah and Raphaël Comminal and Marcin P. Serdeczny and David Bue Pedersen and Jon Spangenberg",
title = "Numerical Predictions of Bottom-Layer-Stability in Material-Extrusion Additive Manufacturing",
doi = "10.1007/s11837-021-05035-9",
year = "2022",
journal = "Journal of The Minerals, Metals & Materials",
volume = "74",
number = "3",
pages = "1096--1101",
}
Formatted Citation
M. T. Mollah, R. Comminal, M. P. Serdeczny, D. B. Pedersen and J. Spangenberg, “Numerical Predictions of Bottom-Layer-Stability in Material-Extrusion Additive Manufacturing”, Journal of The Minerals, Metals & Materials, vol. 74, no. 3, pp. 1096–1101, 2022, doi: 10.1007/s11837-021-05035-9.
Mollah, Md. Tusher, Raphaël Comminal, Marcin P. Serdeczny, David Bue Pedersen, and Jon Spangenberg. “Numerical Predictions of Bottom-Layer-Stability in Material-Extrusion Additive Manufacturing”. Journal of The Minerals, Metals & Materials 74, no. 3 (2022): 1096–1101. https://doi.org/10.1007/s11837-021-05035-9.