Skip to content

Synergistic Effects of the Use of Metakaolin, Sand and Water on the Properties of Cementitious Composites for 3D Printing (2023-01)

10.1016/j.conbuildmat.2022.130277

Diniz Hugo,  Martinelli Antônio,  Cabral Kleber, da Ferreira Ruan, da Silva Iago
Journal Article - Construction and Building Materials, Vol. 366

Abstract

3D concrete printing (3DCP) is a construction technique based on the deposition of successive layers of a cementitious composite without the need for conventional formwork. For the technique to be applied it is necessary that the cementitious composite used allows the passage in continuous flow in a 3D printing nozzle (extrusion capacity) and presents low deformation of the printed layers (buildability). In this perspective, the aim of this study was to understand the influence of Metakaolin (MK), sand and water incorporation on the extrusion capabilities and buildability of cementitious composites for 3D printing. The analysis was designed in a simplex lattice mixture statistical experimental planning. Extrusion ability was evaluated using an experimental flow rate by extruder mill and slump flow. Buildability was analyzed by the maximum number of printed layers, shape retention index, layer thickness variation, and squareness deviation in printed blocks. The squeeze flow test was carried out as a parameter for both printing properties. The water/binder ratio was the most determinant variable in extrusion capacity for its responsibility to fluidize the mixture. Increasing the sand content improves buildability but reduces the application time. On the other hand, MK presented the advantage of controlling viscosity and maintaining good fluidity over time, due to a slower setting. There was a significant interaction between sand and MK in the packing of grains, increasing the properties related to extrusion. It was possible to print with a 30% MK content by adjusting the water. The yield stress was directly related to the flow rate, validating the experimental methodology created. Thus, it was possible to understand the effect of each component, as well as their interactions.

19 References

  1. Araújo Rísia, Martinelli Antônio, Cabral Kleber, Dantas André et al. (2022-08)
    Thermal Performance of Cement-Leca Composites for 3D Printing
  2. Barbosa Marcella, Anjos Marcos, Cabral Kleber, Souza Dias Leonardo (2022-05)
    Development of Composites for 3D Printing with Reduced Cement Consumption
  3. Chen Yu, He Shan, Gan Yidong, Çopuroğlu Oğuzhan et al. (2021-11)
    A Review of Printing-Strategies, Sustainable Cementitious Materials and Characterization Methods in the Context of Extrusion-Based 3D Concrete Printing
  4. Hamidi Fatemeh, Aslani Farhad (2019-05)
    Additive Manufacturing of Cementitious Composites:
    Materials, Methods, Potentials, and Challenge
  5. Khalil Noura, Aouad Georges, Cheikh Khadija, Rémond Sébastien (2017-09)
    Use of Calcium-Sulfoaluminate-Cements for Setting-Control of 3D Printing Mortars
  6. Kondepudi Kala, Subramaniam Kolluru, Nematollahi Behzad, Bong Shin et al. (2022-05)
    Study of Particle-Packing and Paste-Rheology in Alkali-Activated Mixtures to Meet the Rheology Demands of 3D Concrete Printing
  7. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Mix-Design and Fresh Properties for High-Performance Printing Concrete
  8. Lim Sungwoo, Buswell Richard, Le Thanh, Austin Simon et al. (2011-07)
    Developments in Construction-Scale Additive Manufacturing Processes
  9. 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
  10. Ma Guowei, Li Zhijian, Wang Li (2017-12)
    Printable Properties of Cementitious Material Containing Copper-Tailings for Extrusion-Based 3D Printing
  11. Panda Biranchi, Ruan Shaoqin, Unluer Cise, Tan Ming (2018-11)
    Improving the 3D Printability of High-Volume Fly-Ash Mixtures via the Use of Nano-Attapulgite-Clay
  12. Panda Biranchi, Sonat Cem, Yang En-Hua, Tan Ming et al. (2020-12)
    Use of Magnesium-Silicate-Hydrate (M-S-H) Cement Mixes in 3D Printing Applications
  13. Salman Nazar, Ma Guowei, Ijaz Nauman, Wang Li (2021-04)
    Importance and Potential of Cellulosic Materials and Derivatives in Extrusion-Based 3D Concrete Printing:
    Prospects and Challenges
  14. Saruhan Vedat, Keskinateş Muhammer, Felekoğlu Burak (2022-04)
    A Comprehensive Review on Fresh State Rheological Properties of Extrusion-Mortars Designed for 3D Printing Applications
  15. Soltan Daniel, Li Victor (2018-03)
    A Self-Reinforced Cementitious Composite for Building-Scale 3D Printing
  16. Tay Yi, Qian Ye, Tan Ming (2019-05)
    Printability-Region for 3D Concrete Printing Using Slump- and Slump-Flow-Test
  17. Yu Shiwei, Sanjayan Jay, Du Hongjian (2022-07)
    Effects of Cement Mortar Characteristics on Aggregate-Bed 3D Concrete Printing
  18. Zhang Yifan, Aslani Farhad (2021-08)
    Development of Fiber-Reinforced Engineered Cementitious Composite Using Polyvinyl-Alcohol-Fiber and Activated Carbon-Powder for 3D Concrete Printing
  19. Zhu Binrong, Pan Jinlong, Nematollahi Behzad, Zhou Zhenxin et al. (2019-07)
    Development of 3D Printable Engineered Cementitious Composites with Ultra-High Tensile Ductility for Digital Construction

7 Citations

  1. Iqbal Imtiaz, Kasim Tala, Besklubova Svetlana, Inqiad Waleed et al. (2025-12)
    Exploring Knowledge Domains and Future Research Directions in 3D Printed Concrete:
    A Bibliometric and Systematic Review
  2. Iqbal Imtiaz, Kasim Tala, Inqiad Waleed, Besklubova Svetlana et al. (2025-11)
    Effect of Metakaolin and Biochar Addition on the Performance of 3D Concrete Printing:
    A Meta-Analysis Approach
  3. Araújo Rísia, Martinelli Antônio, Cabral Kleber, Nunes Ueslei et al. (2025-03)
    Effect of Lightweight Expanded Clay Aggregate (LECA) On the Printability of Cementitious Compositions for 3D Printing
  4. Tinoco Matheus, Cavalcante Tiago, Andrade Luiza, Araújo Olga et al. (2025-01)
    Mix-Design-Strategies for 3D Printable Bio-Based Cementitious Composites Using Rice-Husk-Particles as Multifunctional Aggregates
  5. Khan Mirza, Ahmed Aayzaz, Ali Tariq, Qureshi Muhammad et al. (2024-12)
    Comprehensive Review of 3D Printed Concrete, Life Cycle Assessment, AI and ML Models:
    Materials, Engineered Properties and Techniques for Additive Manufacturing
  6. Jia Lutao, Niu Geng, Dong Enlai, Jiang Yifan et al. (2024-08)
    Optimization-Strategy for Incorporating Recycled Brick-Powder in 3D Printed Concrete by Balancing Low-Carbon Footprint and Enhanced Performance
  7. Ghasemi Alireza, Naser Mohannad (2023-07)
    Tailoring 3D Printed Concrete Through Explainable Artificial Intelligence

BibTeX
@article{dini_mart_cabr_ferr.2023.SEotUoMSaWotPoCCf3P,
  author            = "Hugo Alessandro Almeida Diniz and Antônio Eduardo Martinelli and Kleber Cavalcanti Cabral and Ruan Landolfo Silva da Ferreira and Iago Felipe Domingos da Silva",
  title             = "Synergistic Effects of the Use of Metakaolin, Sand and Water on the Properties of Cementitious Composites for 3D Printing",
  doi               = "10.1016/j.conbuildmat.2022.130277",
  year              = "2023",
  journal           = "Construction and Building Materials",
  volume            = "366",
}
Formatted Citation

H. A. A. Diniz, A. E. Martinelli, K. C. Cabral, R. L. S. da Ferreira and I. F. D. da Silva, “Synergistic Effects of the Use of Metakaolin, Sand and Water on the Properties of Cementitious Composites for 3D Printing”, Construction and Building Materials, vol. 366, 2023, doi: 10.1016/j.conbuildmat.2022.130277.

Diniz, Hugo Alessandro Almeida, Antônio Eduardo Martinelli, Kleber Cavalcanti Cabral, Ruan Landolfo Silva da Ferreira, and Iago Felipe Domingos da Silva. “Synergistic Effects of the Use of Metakaolin, Sand and Water on the Properties of Cementitious Composites for 3D Printing”. Construction and Building Materials 366 (2023). https://doi.org/10.1016/j.conbuildmat.2022.130277.