Comprehensive Investigation into the Influence of Soil Composition and Water Content on Cracking Due to Drying Shrinkage in 3D Printed Earthen Structures (2024-07)¶
Gonzales Betty, , Bertolotti Bruno, , , , ,
Contribution - Proceedings of the 2nd RILEM International Conference on Earthen Construction, pp. 22-31
Abstract
As a raw material for additive construction, earth offers a multitude of benefits, from environmental and economic to social points of view. However, the fresh-state properties of printable materials and the curing conditions of additively manufactured elements make large-scale 3D-printed earthen structures susceptible to suffering severe cracking from shrinkage during drying. This project investigates the effect of soil composition and water content on the development of drying shrinkage cracking in 3D-printed earthen structures. This article presents two strategies for minimizing those cracks: decreasing the clay content of the soil by adding fine sand and decreasing the required water content for printability by using a clay dispersant agent. Earth-based mix designs with different soil/fine-sand ratios and sodium hexametaphosphate (SHMP) contents were subjected to flow table, rotational rheology, and shrinkage cracking tests. The results indicate that the clay and water content are determining factors that minimize the appearance of cracks due to drying shrinkage. Two earthen-based formulations with zero cracks due to shrinkage resulted from replacing 50% wt. of the soil with fine sand and the addition of 0.55 and 2.20% wt. of SHMP. Further research is needed to confirm the validity of these findings across diverse soil types and curing conditions.
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4 References
- Ji Yameng, Poullain Philippe, Leklou Ali (2023-09)
The Selection and Design of Earthen Materials for 3D Printing - Kontovourkis Odysseas, Tryfonos George (2019-11)
Robotic 3D Clay Printing of Prefabricated Non-Conventional Wall Components Based on a Parametric-Integrated Design - Silva Guido, Ñañez Robert, Zavaleta Diana, Burgos Valeria et al. (2022-07)
Eco-Friendly Additive Construction:
Analysis of the Printability of Earthen-Based Matrices Stabilized with Potato-Starch-Gel and Sisal-Fibers - Silva Guido, Quispe L., Kim Suyeon, Nakamatsu Javier et al. (2019-11)
Development of a Stabilized Natural Fiber-Reinforced Earth Composite for Construction Applications Using 3D Printing
BibTeX
@inproceedings{gonz_zava_bert_agui.2024.CIitIoSCaWCoCDtDSi3PES,
author = "Betty Gonzales and Diana Zavaleta and Bruno Bertolotti and Rafael Aguilar and Miguel A. Pando and Javier Nakamatsu and Suyeon Kim and Guido Silva",
title = "Comprehensive Investigation into the Influence of Soil Composition and Water Content on Cracking Due to Drying Shrinkage in 3D Printed Earthen Structures",
doi = "10.1007/978-3-031-62690-6_3",
year = "2024",
volume = "52",
pages = "22--31",
booktitle = "Proceedings of the 2nd RILEM International Conference on Earthen Construction",
editor = "Christopher Beckett and Ana Rita Brás and Antonin Fabbri and Emmanuel Keita and Céline Perlot and Arnaud Perrot",
}
Formatted Citation
B. Gonzales, “Comprehensive Investigation into the Influence of Soil Composition and Water Content on Cracking Due to Drying Shrinkage in 3D Printed Earthen Structures”, in Proceedings of the 2nd RILEM International Conference on Earthen Construction, 2024, vol. 52, pp. 22–31. doi: 10.1007/978-3-031-62690-6_3.
Gonzales, Betty, Diana Zavaleta, Bruno Bertolotti, Rafael Aguilar, Miguel A. Pando, Javier Nakamatsu, Suyeon Kim, and Guido Silva. “Comprehensive Investigation into the Influence of Soil Composition and Water Content on Cracking Due to Drying Shrinkage in 3D Printed Earthen Structures”. In Proceedings of the 2nd RILEM International Conference on Earthen Construction, edited by Christopher Beckett, Ana Rita Brás, Antonin Fabbri, Emmanuel Keita, Céline Perlot, and Arnaud Perrot, 52:22–31, 2024. https://doi.org/10.1007/978-3-031-62690-6_3.