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Rheological Control of 3D Printable Cement-Paste and Mortars (2018-09)

10.1007/978-3-319-99519-9_7

 Jones Scott,  Bentz Dale, Martys Nicos, George William, Thomas Austin
Contribution - Proceedings of the 1st RILEM International Conference on Concrete and Digital Fabrication, pp. 70-80

Abstract

Recent advances in concrete construction such as three-dimensional concrete printing (3DCP) have given rise to new requirements on the control of both the hydration and rheology of cementitious materials. To meet these new demands, and to move toward adoption of 3DCP on a commercial scale, inoperando control of hydration and rheology will be required. In this study, two cement paste mixtures containing limestone powder of two different median particle sizes are used to create 3D printed structures with a cement paste printer. Hydration control in the form of acceleration is achieved with the addition of the limestone powder to the cement and rheology control is achieved by using limestone with different median particle sizes. Rheology measurements conducted concurrently with printed structures indicate that yield stress and a measure of thixotropy of the cement paste provide an indicator as to whether a material will produce a multi-filament free-standing structure for a given 3DCP system. Simulations of particles flowing in a pipe are used to study the rheological behavior of paste and mortar. For the case of a mortar, the flow rate of suspended particles (sand) follows the same functional form with driving force as the matrix fluid (cement paste). Shear-induced particle migration increases the density of particles toward the center of the pipe, a result that implies that the aggregates may not be uniformly distributed.

6 References

  1. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Hardened Properties of High-Performance Printing Concrete
  2. Lim Sungwoo, Buswell Richard, Le Thanh, Austin Simon et al. (2011-07)
    Developments in Construction-Scale Additive Manufacturing Processes
  3. Perrot Arnaud, Rangeard Damien, Pierre Alexandre (2015-02)
    Structural Build-Up of Cement-Based Materials Used for 3D Printing-Extrusion-Techniques
  4. Sanjayan Jay, Nematollahi Behzad, Xia Ming, Marchment Taylor (2018-04)
    Effect of Surface Moisture on Inter-Layer Strength of 3D Printed Concrete
  5. Suiker Akke (2018-01)
    Mechanical Performance of Wall Structures in 3D Printing Processes:
    Theory, Design Tools and Experiments
  6. Wangler Timothy, Lloret-Fritschi Ena, Reiter Lex, Hack Norman et al. (2016-10)
    Digital Concrete:
    Opportunities and Challenges

21 Citations

  1. Siqueira Neto Luiz, Isgor Burkan, Weiss William (2025-08)
    Modeling Fluid Absorption in Layered Anisotropic Cement-Based Materials
  2. Prihar Arjun, Gupta Shashank, Esmaeeli Hadi, Moini Mohamadreza (2024-08)
    Tough Double-Bouligand Architected Concrete Enabled by Robotic Additive Manufacturing
  3. Tripathi Avinaya, Nair Sooraj, Chauhan Harshitsinh, Neithalath Narayanan (2024-04)
    Print Geometry Alterations and Layer-Staggering to Enhance Mechanical Properties of Plain and Fiber-Reinforced Three-Dimensional-Printed Concrete
  4. Geng Songyuan, Mei Liu, Cheng Boyuan, Luo Qilong et al. (2024-03)
    Revolutionizing 3D Concrete Printing:
    Leveraging Random-Forest-Model for Precise Printability and Rheological Prediction
  5. Chadha Kunaljit, Dubor Alexandre, Cabay Edouard, Tayoun Yara et al. (2024-01)
    Additive Manufacturing for the Circular Built Environment:
    Towards Circular Construction with Earth-Based Materials
  6. Noaimat Yazeed, Chougan Mehdi, Albar Abdulrahman, Skibicki Szymon et al. (2023-10)
    Recycled Brick-Aggregates in One-Part Alkali-Activated Materials:
    Impact on 3D Printing Performance and Material-Properties
  7. Paritala Spandana, Singaram Kailash, Bathina Indira, Khan Mohd et al. (2023-08)
    Rheology and Pumpability of Mix Suitable for Extrusion-Based Concrete 3D Printing:
    A Review
  8. Kosson Michael, Brown Lesa, Sanchez Florence (2023-01)
    Nano-Mechanical Characterization of 3D Printed Cement-Pastes
  9. Ahmed Ghafur (2023-01)
    A Review of 3D Concrete Printing:
    Materials and Process Characterization, Economic Considerations and Environmental Sustainability
  10. Ahmed Ghafur, Askandar Nasih, Jumaa Ghazi (2022-07)
    A Review of Large-Scale 3DCP:
    Material-Characteristics, Mix-Design, Printing-Process, and Reinforcement-Strategies
  11. Mohammad Abdul, Biernacki Joseph (2022-06)
    2D Stationary Computational Printing of Cement-Based Pastes
  12. Moini Mohamadreza, Olek Jan, Zavattieri Pablo, Youngblood Jeffrey (2022-04)
    Early-Age Buildability-Rheological Properties Relationship in Additively Manufactured Cement-Paste Hollow Cylinders
  13. Brooks Adam, He Yawen, Farzadnia Nima, Seyfimakrani Shayan et al. (2022-03)
    Incorporating PCM-Enabled Thermal Energy Storage into 3D Printable Cementitious Composites
  14. Jones Scott, Hipp Julie, Allen Andrew, Gagnon Cedric (2021-12)
    Rheology and Microstructure Development of Hydrating-Tricalcium-Silicate:
    Implications for Additive Manufacturing in Construction
  15. Kondepudi Kala, Subramaniam Kolluru (2021-11)
    Extrusion-Based Three-Dimensional Printing Performance of Alkali-Activated Binders
  16. Kondepudi Kala, Subramaniam Kolluru (2021-02)
    Formulation of Alkali-Activated Fly-Ash-Slag Binders for 3D Concrete Printing
  17. Kristombu Baduge Shanaka, Navaratnam Satheeskumar, Zidan Yousef, McCormack Tom et al. (2021-01)
    Improving Performance of Additive Manufactured Concrete:
    A Review on Material Mix-Design, Processing, Inter-Layer Bonding, and Reinforcing-Methods
  18. Kaszyńska Maria, Skibicki Szymon, Hoffmann Marcin (2020-12)
    3D Concrete Printing for Sustainable Construction
  19. Afarani Hajar, Carroll William, Garboczi Edward, Biernacki Joseph (2020-11)
    Designing 3D Printable Cementitious Materials with Gel-Forming Polymers
  20. Gardner Guy, Forward Kristen, Tse Kim, Sharma Karan (2020-07)
    Rapid Composite Formwork:
    An Automated and Customizable Process for Freeform Concrete Through Computational Design and Robotic Fabrication
  21. Bentz Dale, Jones Scott, Bentz Isaiah, Peltz Max (2019-02)
    Towards the Formulation of Robust and Sustainable Cementitious Binders for 3D Additive Construction by Extrusion

BibTeX
@inproceedings{jone_bent_mart_geor.2019.RCo3PCPaMb,
  author            = "Scott Z. Jones and Dale P. Bentz and Nicos S. Martys and William L. George and Austin Thomas",
  title             = "Rheological Control of 3D Printable Cement-Paste and Mortars",
  doi               = "10.1007/978-3-319-99519-9_7",
  year              = "2019",
  volume            = "19",
  pages             = "70--80",
  booktitle         = "Proceedings of the 1st RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2018",
  editor            = "Timothy Paul Wangler and Robert Johann Flatt",
}
Formatted Citation

S. Z. Jones, D. P. Bentz, N. S. Martys, W. L. George and A. Thomas, “Rheological Control of 3D Printable Cement-Paste and Mortars”, in Proceedings of the 1st RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2018, 2019, vol. 19, pp. 70–80. doi: 10.1007/978-3-319-99519-9_7.

Jones, Scott Z., Dale P. Bentz, Nicos S. Martys, William L. George, and Austin Thomas. “Rheological Control of 3D Printable Cement-Paste and Mortars”. In Proceedings of the 1st RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2018, edited by Timothy Paul Wangler and Robert Johann Flatt, 19:70–80, 2019. https://doi.org/10.1007/978-3-319-99519-9_7.