Experimental Investigation of Fresh and Time-Dependent Rheological Properties of 3D Printed Cementitious Material (2023-08)¶
, , Ho Jin,
Journal Article - Thermal Science and Engineering Progress, No. 102089
Abstract
Unlike traditional construction processes, three-dimensional cementitious material printing requires more accurate control of the pumping flow rate. To this end, the predictability of the rheological properties of fresh cementitious mixtures and the property change over time are critical for the fabrication process. In this paper, the fresh rheological properties of twenty different mixtures were measured in the large gap viscometer, and three non-Newtonian fluid models (Bingham model, modified Bingham model, and Herschel-Bulkley) were applied to predict the dynamic yield stress and plastic viscosity of each material. The applicability of these models was assessed, and their relative deviation was quantified and discussed. Using the well-established Bingham model, the temporal evolution of the dynamic yield stress and plastic viscosity of the material was then characterized. Based on the measured and predicted rheological properties, an open loop control method was then implemented to harmonize the flow volume per unit length during printing processes to improve the printing quality and buildability of the material.
¶
5 References
- Liu Zhixin, Li Mingyang, Weng Yiwei, Wong Teck et al. (2018-12)
Mixture-Design-Approach to Optimize the Rheological Properties of the Material Used in 3D Cementitious Material-Printing - Lu Bing, Li Hongliang, Li Mingyang, Wong Teck et al. (2022-11)
Mechanism and Design of Fluid Catalytic Cracking Ash-Blended Cementitious Composites for High-Performance Printing - Perrot Arnaud, Rangeard Damien, Pierre Alexandre (2015-02)
Structural Build-Up of Cement-Based Materials Used for 3D Printing-Extrusion-Techniques - Weng Yiwei, Li Mingyang, Tan Ming, Qian Shunzhi (2018-01)
Design 3D Printing Cementitious Materials via Fuller-Thompson-Theory and Marson-Percy-Model - Weng Yiwei, Lu Bing, Li Mingyang, Liu Zhixin et al. (2018-09)
Empirical Models to Predict Rheological Properties of Fiber-Reinforced Cementitious Composites for 3D Printing
2 Citations
- Jiang Yu, Zhang Qingxin, Tabbaa Abir, Daly Ronan (2025-03)
The Critical Role of Time-Dependent Rheology for Improved Quality Control of 3D Printed Cementitious Structures - Ding Yao, Liu Jiepeng, Ou Xingjian, Nishiwaki Tomoya et al. (2024-08)
3D Printing Hybrid-Fiber-Reinforced Engineered Cementitious Composites:
Feasibility in Long-Open-Time Applications
BibTeX
@article{li_liu_ho_wong.2023.EIoFaTDRPo3PCM,
author = "Mingyang Li and Zhixin Liu and Jin Yao Ho and Teck Neng Wong",
title = "Experimental Investigation of Fresh and Time-Dependent Rheological Properties of 3D Printed Cementitious Material",
doi = "10.1016/j.tsep.2023.102089",
year = "2023",
journal = "Thermal Science and Engineering Progress",
pages = "102089",
}
Formatted Citation
M. Li, Z. Liu, J. Y. Ho and T. N. Wong, “Experimental Investigation of Fresh and Time-Dependent Rheological Properties of 3D Printed Cementitious Material”, Thermal Science and Engineering Progress, p. 102089, 2023, doi: 10.1016/j.tsep.2023.102089.
Li, Mingyang, Zhixin Liu, Jin Yao Ho, and Teck Neng Wong. “Experimental Investigation of Fresh and Time-Dependent Rheological Properties of 3D Printed Cementitious Material”. Thermal Science and Engineering Progress, 2023, 102089. https://doi.org/10.1016/j.tsep.2023.102089.