Development of Cementitious Mortars for Aerial Additive Manufacturing (2023-01)¶
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Journal Article - Applied Sciences, Vol. 13, Iss. 1
Abstract
Additive Manufacturing (AM) methods in the construction industry typically employ ground-based deposition methods. An alternative to transform the role of AM in construction is to introduce an aerial capability. A recent project titled Aerial Additive Manufacturing (AAM), the first AM system to use untethered, unmanned aerial vehicles (or ‘drones’), has demonstrated the 3D-printing of cementitious materials during flight. An autonomous aerial system would minimise requirements for working at height, thus reducing safety risks and release AM from ground-based constraints. This study investigates viscous cementitious mortars for AAM. To assess workability and buildability, a robotic arm representing UAV movement in three-dimensional space moved a lightweight deposition device to extrude multiple layers. Constituents such as Pulverised Fuel-Ash, Silica fume, polyol resin, limeX70 and Polypropylene fibres were added to cement-based material mixes. Sand:binder ratios were a maximum of 1.00 and Water:binder ratios ranged from 0.33–0.47. Workability and buildability of mixes were evaluated using performance parameters such as power required for extrusion, number of layers successfully extruded, the extent of deformation of extruded layers and evaluation of mechanical and rheological properties. Rheology tests revealed mortars with a suitable workability-buildability balance possessed a Complex modulus of 3–6 MPa. Mechanical tests showed that resistance to deformation and buildability positively correlate and indicate compressive strengths in excess of 25 MPa. This study has demonstrated that structural cementitious material can be processed by a device light enough to be carried by a UAV to produce an unsupported, coherent multiple-layered object and further demonstrated the feasibility of untethered AAM as an alternative to ground-based AM applications in construction.
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9 Citations
- Ball Richard, Dams Barrie, Shepherd Paul, Chen Binling (2025-10)
Exploring Aerial Additive Manufacturing with Cementitious Materials Using Autonomous Drones - Wang Lingyu, Zhang Yu, Wang Zhiyong, Chen Juan et al. (2024-11)
Additive Manufacturing in Construction Using Unmanned Aerial Vehicle:
Design, Implementation, and Material-Properties - Dams Barrie, Chen Binling, Kaya Yusuf, Shepherd Paul et al. (2024-11)
The Rise of Aerial Additive Manufacturing in Construction:
A Review of Material Advancements - Aghaee Kamran, Li Linfei, Roshan Alireza, Namakiaraghi Parsa (2024-08)
Additive Manufacturing Evolution in Construction:
From Individual Terrestrial to Collective, Aerial, and Extraterrestrial Applications - Dams Barrie, Chen Binling, Kaya Yusuf, Orr Lachlan et al. (2024-03)
Fresh Properties and Autonomous Deposition of Pseudoplastic Cementitious Mortars for Aerial Additive Manufacturing - Shi Yifan, Jia Lutao, Jia Zijian, Ma Lei et al. (2024-03)
Early-Age Inhomogeneous Deformation of 3D Printed Concrete:
Characteristics and Influences of Superplasticizer and Water-Binder Ratio - Dams Barrie, Shepherd Paul, Ball Richard (2023-11)
Development and Performance Evaluation of Fibrous Pseudoplastic Quaternary Cement Systems for Aerial Additive Manufacturing - Kurniati Eka, Kim Heejeong (2023-10)
Utilizing Industrial Byproducts for Sustainable Three-Dimensional-Printed Infrastructure Applications:
A Comprehensive Review - Ungureanu Dragoș, Onuțu Cătălin, Isopescu Dorina, Țăranu Nicolae et al. (2023-06)
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BibTeX
@article{dams_chen_shep_ball.2023.DoCMfAAM,
author = "Barrie Dams and Binling Chen and Paul Shepherd and Richard J. Ball",
title = "Development of Cementitious Mortars for Aerial Additive Manufacturing",
doi = "10.3390/app13010641",
year = "2023",
journal = "Applied Sciences",
volume = "13",
number = "1",
}
Formatted Citation
B. Dams, B. Chen, P. Shepherd and R. J. Ball, “Development of Cementitious Mortars for Aerial Additive Manufacturing”, Applied Sciences, vol. 13, no. 1, 2023, doi: 10.3390/app13010641.
Dams, Barrie, Binling Chen, Paul Shepherd, and Richard J. Ball. “Development of Cementitious Mortars for Aerial Additive Manufacturing”. Applied Sciences 13, no. 1 (2023). https://doi.org/10.3390/app13010641.