Soil-Cement Matrices for Additive Construction (2023-07)¶
, Burgos Valeria, , , , , ,
Journal Article - Materials Science Forum, Vol. 1093, pp. 143-150
Abstract
Soil as a building material is gaining renewed interest from academia, and the construction sector, mainly for fabricating low-environmental impact homes. The fabrication of houses with soil using traditional methods such as adobe, cob, and rammed earth dates back to ancient times. However, emerging construction technologies, such as 3D printing, can be compatible with this material for building purposes. The article presents the validation of a 3D printing system for construction applications and the evaluation of soil-cement matrices' printability. First, the paper defines the printing parameters through experimental testing on soil matrices. Then, the article evaluates the printability of soil-cement matrices through filament printing and stacking tests. The results show that the 3D printing system prototype can fabricate small and medium-sized elements with soil matrices after correctly defining the pumping speed, printing speed, and layer height. Furthermore, experimental printing test results demonstrate that soil-cement matrices can be easily extruded and stacked; however, their printability capacity is strongly affected by the total water content and printing speed. This research highlights the suitability of soil-cement mixtures for additive manufacturing, a promising outcome that can facilitate the construction of homes in remote areas using 3D printing systems.
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6 References
- Duarte Gonçalo, Brown Nathan, Memari Ali, Duarte José (2021-07)
Learning from Historical Structures under Compression for Concrete 3D Printing Construction - Nerella Venkatesh, Mechtcherine Viktor (2019-02)
Studying the Printability of Fresh Concrete for Formwork-Free Concrete Onsite 3D Printing Technology (CONPrint3D) - Perrot Arnaud, Rangeard Damien, Courteille Eric (2018-04)
3D Printing of Earth-Based Materials:
Processing Aspects - 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 - Wu Yun-Chen, Li Mo (2022-09)
Effects of Early-Age Rheology and Printing Time Interval on Late-Age Fracture Characteristics of 3D Printed Concrete
0 Citations
BibTeX
@article{silv_burg_nane_kim.2023.SCMfAC,
author = "Guido Silva and Valeria Burgos and Robert Ñañez and Suyeon Kim and Gaby Ruiz and Miguel A. Pando and Rafael Aguilar and Javier Nakamatsu",
title = "Soil-Cement Matrices for Additive Construction: 3D Printing System Validation and Printing Tests",
doi = "10.4028/p-sc9yi5",
year = "2023",
journal = "Materials Science Forum",
volume = "1093",
pages = "143--150",
}
Formatted Citation
G. Silva, “Soil-Cement Matrices for Additive Construction: 3D Printing System Validation and Printing Tests”, Materials Science Forum, vol. 1093, pp. 143–150, 2023, doi: 10.4028/p-sc9yi5.
Silva, Guido, Valeria Burgos, Robert Ñañez, Suyeon Kim, Gaby Ruiz, Miguel A. Pando, Rafael Aguilar, and Javier Nakamatsu. “Soil-Cement Matrices for Additive Construction: 3D Printing System Validation and Printing Tests”. Materials Science Forum 1093 (2023): 143–50. https://doi.org/10.4028/p-sc9yi5.