Experimental and Numerical Assessment of Layer Deformation in a 3D Printed Concrete Element (2024-11)¶
Sreenivas Gagan, , , , , ,
Contribution - Proceedings of the RILEM Spring Convention and Conference 2024, pp. 310-318
Abstract
3D concrete printing is a new and pioneering construction method that involves fabricating an element by depositing concrete layers according to a predetermined virtual model. This technology allows for faster construction and fabrication of customizable and complex shapes. In this study, a 3D printable concrete mix was developed using Portland cement and fly ash (80:20 by mass) as the binder. The rheology of the mixtures (yield stress and plastic viscosity) was characterized by performing flow curve experiments using a dynamic shear rheometer. To assess the buildability of the mix, a three-layer filament of 300 mm length was printed using a circular nozzle of 20 mm diameter. A digital camera was also used to record the print experiment, and subsequently, the deformation of each layer was determined using image analysis. Finally, using the measured rheological parameters, a fluid-based FEM numerical model was adopted to simulate the printing process. The filament shapes obtained from the simulation were compared to those obtained from the actual print experiment. Both numerical simulation and image analysis indicated that the layer deformation is evident. The results from the numerical simulations agreed well with the experimental results.
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8 References
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Extrusion-Based Concrete 3D Printing from a Material Perspective:
A State of the Art Review - Overmeir Anne, Figueiredo Stefan, Šavija Branko, Bos Freek et al. (2022-02)
Design and Analyses of Printable Strain-Hardening Cementitious Composites with Optimized Particle-Size-Distribution - Rahul Attupurathu, Santhanam Manu, Meena Hitesh, Ghani Zimam (2018-12)
3D Printable Concrete:
Mixture-Design and Test-Methods - Reinold Janis, Nerella Venkatesh, Mechtcherine Viktor, Meschke Günther (2022-02)
Extrusion-Process-Simulation and Layer-Shape-Prediction During 3D Concrete Printing Using the Particle-Finite-Element-Method - Rizzieri Giacomo, Cremonesi Massimiliano, Ferrara Liberato (2023-08)
A 2D Numerical Model of 3D Concrete Printing Including Thixotropy - Rizzieri Giacomo, Ferrara Liberato, Cremonesi Massimiliano (2023-07)
Numerical Simulation of the Extrusion and Layer-Deposition-Processes in 3D Concrete Printing with the Particle-Finite-Element-Method - Wolfs Robert, Bos Freek, Salet Theo (2018-02)
Early-Age Mechanical Behaviour of 3D Printed Concrete:
Numerical Modelling and Experimental Testing - Zhang Chao, Nerella Venkatesh, Krishna Anurag, Wang Shen et al. (2021-06)
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BibTeX
@inproceedings{sree_rizz_bhat_jain.2025.EaNAoLDia3PCE,
author = "Gagan Gowri Sreenivas and Giacomo Rizzieri and Shantanu Bhattacherjee and Smrati Jain and Attupurathu Vijayan Rahul and Massimiliano Cremonesi and Liberato Ferrara",
title = "Experimental and Numerical Assessment of Layer Deformation in a 3D Printed Concrete Element",
doi = "10.1007/978-3-031-70281-5_35",
year = "2025",
volume = "56",
pages = "310--318",
booktitle = "Proceedings of the RILEM Spring Convention and Conference 2024",
editor = "Liberato Ferrara and Giovanni Muciaccia and Davide di Summa",
}
Formatted Citation
G. G. Sreenivas, “Experimental and Numerical Assessment of Layer Deformation in a 3D Printed Concrete Element”, in Proceedings of the RILEM Spring Convention and Conference 2024, 2025, vol. 56, pp. 310–318. doi: 10.1007/978-3-031-70281-5_35.
Sreenivas, Gagan Gowri, Giacomo Rizzieri, Shantanu Bhattacherjee, Smrati Jain, Attupurathu Vijayan Rahul, Massimiliano Cremonesi, and Liberato Ferrara. “Experimental and Numerical Assessment of Layer Deformation in a 3D Printed Concrete Element”. In Proceedings of the RILEM Spring Convention and Conference 2024, edited by Liberato Ferrara, Giovanni Muciaccia, and Davide di Summa, 56:310–18, 2025. https://doi.org/10.1007/978-3-031-70281-5_35.