Skip to content

Quantitative Characterization of Bubble-Stability of Foam-Concrete Throughout Extrusion-Process (2024-07)

From Yield-Stress , Viscosity and Surface Tension Point of View

10.1016/j.compositesb.2024.111724

 Liu Chao, Zhang Zedi,  Jia Zijian, Cao Ruilin, Wang Wei,  Banthia Nemkumar, Chen Chun, Xiong Yuanliang,  Chen Yu,  Zhang Yamei
Journal Article - Composites Part B: Engineering, Vol. 284, No. 111724

Abstract

Foam concrete (FC) is suitable to be used as printing ink for drones in extreme environment because of its light weight, it can reduce the load of drones and improve printing efficiency. Furthermore, since the FC density and thermal insulation performance can be flexibly changed by changing the bubble content, it can be used to print functional gradient components and special-shaped insulation walls. The stability of bubbles is crucial as it directly impacts the performance of 3D printed FC (3DPFC). Here, we examined the bubble destabilization and deformation of FC throughout the mixing process, resting period prior to extrusion, and extrusion process based on three parameters, i.e., yield stress, viscosity, and surface tension. The results indicate that increasing the yield stress from 1406 Pa to 13379 Pa of the precursor leads to a decrease in bubble volume fraction after mixing from 38.26 % to 27.24 %, while increasing viscosity from 2.16 Pa s to 6.65 Pa s and decreasing surface tension from 72.4 mN/m to 33.5 mN/m are favorable for improving the sphericity of bubbles with the diameter between 300 and 800 μm in FC. In the resting stage, the yield stress of the interstitial paste is the primary factor controlling bubble stability. When the initial yield stress of the equivalent interstitial paste is 5212 Pa, the bubble volume fraction decreases by only 0.8 % within 60 min. During extrusion, high yield stress leading to bubble deformation and instability, whereas viscosity and pore solution surface tension act as sources of bubble compression resistance. There exists a suitable diameter interval for bubble pressure-bearing limit under different paste environment during extrusion.

21 References

  1. Ahmed Ghafur (2023-01)
    A Review of 3D Concrete Printing:
    Materials and Process Characterization, Economic Considerations and Environmental Sustainability
  2. Chen Yu, Figueiredo Stefan, Li Zhenming, Chang Ze et al. (2020-03)
    Improving Printability of Limestone-Calcined-Clay-Based Cementitious Materials by Using Viscosity-Modifying Admixture
  3. Chen Kailun, Liu Qiong, Chen Bing, Zhang Shishun et al. (2024-01)
    A Review on Effect of Raw Materials on the Performance of 3D Printed Geopolymer System for Construction
  4. Chen Yuning, Zhang Yamei, Xie Yudong, Zhang Zedi et al. (2022-09)
    Unraveling Pore-Structure Alternations in 3D Printed Geopolymer Concrete and Corresponding Impacts on Macro-Properties
  5. Cho Seung, Kruger Jacques, Rooyen Algurnon, Zijl Gideon (2021-03)
    Rheology and Application of Buoyant Foam-Concrete for Digital Fabrication
  6. Cho Seung, Rooyen Algurnon, Kearsley Elsabe, Zijl Gideon (2021-12)
    Foam Stability of 3D Printable Foamed Concrete
  7. Heever Marchant, Plessis Anton, Kruger Jacques, Zijl Gideon (2022-01)
    Evaluating the Effects of Porosity on the Mechanical Properties of Extrusion-Based 3D Printed Concrete
  8. Liu Chao, Chen Yuning, Xiong Yuanliang, Jia Lutao et al. (2022-06)
    Influence of Hydroxypropyl-Methylcellulose and Silica-Fume on Buildability of 3D Printing Foam-Concrete:
    From Water State and Flocculation Point of View
  9. Liu Chao, Chen Yuning, Zhang Zedi, Niu Geng et al. (2022-10)
    Study of the Influence of Sand on Rheological Properties, Bubble Features and Buildability of Fresh Foamed Concrete for 3D Printing
  10. Liu Huawei, Liu Chao, Bai Guoliang, Wu Yiwen et al. (2022-04)
    Influence of Pore-Defects on the Hardened Properties of 3D Printed Concrete with Coarse Aggregate
  11. Liu Chao, Wang Xianggang, Chen Yuning, Zhang Chao et al. (2021-06)
    Influence of Hydroxypropyl-Methylcellulose and Silica-Fume on Stability, Rheological Properties, and Printability of 3D Printing Foam-Concrete
  12. Liu Chao, Xiong Yuanliang, Chen Yuning, Jia Lutao et al. (2022-01)
    Effect of Sulphoaluminate Cement on Fresh and Hardened Properties of 3D Printing Foamed Concrete
  13. Liu Chao, Zhang Yamei, Banthia Nemkumar (2023-05)
    Unveiling Pore Formation and Its Influence on Micromechanical Property and Stress-Distribution of 3D Printed Foam-Concrete Modified with Hydroxypropyl-Methylcellulose and Silica-Fume
  14. Lyu Qifeng, Dai Pengfei, Chen Anguo (2023-10)
    Mechanical Strengths and Optical Properties of Translucent Concrete Manufactured by Mortar-Extrusion 3D Printing with Polymethyl-Methacrylate Fibers
  15. Markin Slava, Krause Martin, Otto Jens, Schröfl Christof et al. (2021-06)
    3D Printing with Foam-Concrete:
    From Material Design and Testing to Application and Sustainability
  16. Mechtcherine Viktor, Nerella Venkatesh, Will Frank, Näther Mathias et al. (2019-08)
    Large-Scale Digital Concrete Construction:
    CONPrint3D Concept for On-Site, Monolithic 3D Printing
  17. Peng Yiming, Unluer Cise (2022-12)
    Development of Alternative Cementitious Binders for 3D Printing Applications:
    A Critical Review of Progress, Advantages and Challenges
  18. Wang Xiaonan, Li Wengui, Guo Yipu, Kashani Alireza et al. (2024-04)
    Concrete 3D Printing Technology for Sustainable Construction:
    A Review on Raw Material, Concrete Type and Performance
  19. Wang Xiaonan, Li Wengui, Guo Yipu, Kashani Alireza et al. (2024-02)
    Concrete 3D Printing Technology in Sustainable Construction:
    A Review on Raw Materials, Concrete Types and Performances
  20. Xiao Jianzhuang, Ji Guangchao, Zhang Yamei, Ma Guowei et al. (2021-06)
    Large-Scale 3D Printing Concrete Technology:
    Current Status and Future Opportunities
  21. Zhang Ketao, Chermprayong Pisak, Xiao Feng, Tzoumanikas Dimos et al. (2022-09)
    Aerial Additive Manufacturing with Multiple Autonomous Robots

2 Citations

  1. Yang Guojun, Weng Yiwei, Tian Jiefu, Yang Zhenjun (2025-05)
    3D Printing Towards Cost-Effective Design of Composite UHPFRC Beams:
    Effects of Fiber Distribution and Orientation on Flexural Performances and Failure Mode Transition
  2. Forcael Eric, Medina Moisés, Opazo-Vega Alexander, Moreno Francisco et al. (2024-11)
    Additive Manufacturing in the Construction Industry

BibTeX
@article{liu_zhan_jia_cao.2024.QCoBSoFCTEP,
  author            = "Chao Liu and Zedi Zhang and Zijian Jia and Ruilin Cao and Wei Wang and Nemkumar Banthia and Chun Chen and Yuanliang Xiong and Yu Chen and Yamei Zhang",
  title             = "Quantitative Characterization of Bubble-Stability of Foam-Concrete Throughout Extrusion-Process: From Yield-Stress , Viscosity and Surface Tension Point of View",
  doi               = "10.1016/j.compositesb.2024.111724",
  year              = "2024",
  journal           = "Composites Part B: Engineering",
  volume            = "284",
  pages             = "111724",
}
Formatted Citation

C. Liu, “Quantitative Characterization of Bubble-Stability of Foam-Concrete Throughout Extrusion-Process: From Yield-Stress , Viscosity and Surface Tension Point of View”, Composites Part B: Engineering, vol. 284, p. 111724, 2024, doi: 10.1016/j.compositesb.2024.111724.

Liu, Chao, Zedi Zhang, Zijian Jia, Ruilin Cao, Wei Wang, Nemkumar Banthia, Chun Chen, Yuanliang Xiong, Yu Chen, and Yamei Zhang. “Quantitative Characterization of Bubble-Stability of Foam-Concrete Throughout Extrusion-Process: From Yield-Stress , Viscosity and Surface Tension Point of View”. Composites Part B: Engineering 284 (2024): 111724. https://doi.org/10.1016/j.compositesb.2024.111724.