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Quality-Control-Tests of Fresh 3D Printable Cement-Based Materials (2024-06)

10.1590/s1983-41952024000500015

 de Matos Paulo,  Prigol Hellen,  Schackow Adilson,  da Silva Nazário Samara,  Doerner Gabriel,  Safanelli Nicollas
Journal Article - Revista IBRACON de Estruturas e Materiais, Vol. 17, Iss. 5

Abstract

Three-dimensional concrete printing (3DCP) has emerged as a promising solution for the modernization of the construction sector. Additionally, design optimization allows for material reduction, promoting sustainable construction. Despite these advancements, there is still no standard for the assessment of the fresh state and quality control of 3DCP. This work discusses the results of quality control tests for fresh 3DCP. Specifically, seven samples with different mix designs were produced and subjected to rotational rheometry, slug tests, flow table tests, and buildability tests (i.e., the height supported prior to collapse). The results showed that the yield stress obtained from rheometry and the slug test did not match but fell within the same order of magnitude. The yield stress values obtained from rheometry were the closest to the gravityinduced stress in the buildability test. Regarding buildability prediction, the slug test exhibited the strongest correlation with the number of layers supported in buildability (R2 = 0.92); rotational rheometry also demonstrated a good correlation with that parameter (R2 = 0.80). In contrast, the results of the flow table test neither correlated with the yield stress obtained from any other tests nor proved efficient in predicting buildability. Finally, the paper presented a discussion on testing and printing challenges.

23 References

  1. Ahmed Ghafur, Askandar Nasih, Jumaa Ghazi (2022-07)
    A Review of Large-Scale 3DCP:
    Material-Characteristics, Mix-Design, Printing-Process, and Reinforcement-Strategies
  2. Breseghello Luca, Hajikarimian Hamed, Jørgensen Henrik, Naboni Roberto (2023-07)
    3DLightBeam+:
    Design, Simulation, and Testing of Carbon-Efficient Reinforced 3D Concrete Printed Beams
  3. Breseghello Luca, Naboni Roberto (2022-05)
    Tool-Path -Based Design for 3D Concrete Printing of Carbon-Efficient Architectural Structures
  4. Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
    3D Printing Using Concrete-Extrusion:
    A Roadmap for Research
  5. Chu Shaohua, Li Leo, Kwan Albert (2020-09)
    Development of Extrudable High-Strength Fiber-Reinforced Concrete Incorporating Nano-Calcium-Carbonate
  6. Ducoulombier Nicolas, Mesnil Romain, Carneau Paul, Demont Léo et al. (2021-05)
    The “Slugs-Test” for Extrusion-Based Additive Manufacturing:
    Protocol, Analysis and Practical Limits
  7. Flatt Robert, Wangler Timothy (2022-05)
    On Sustainability and Digital Fabrication with Concrete
  8. Harbouz Ilhame, Yahia Ammar, Rozière Emmanuel, Loukili Ahmed (2023-02)
    Printing Quality-Control of Cement-Based Materials Under Flow and Rest-Conditions
  9. Ivanova Irina, Ivaniuk Egor, Bisetti Sameercharan, Nerella Venkatesh et al. (2022-03)
    Comparison Between Methods for Indirect Assessment of Buildability in Fresh 3D Printed Mortar and Concrete
  10. Maitenaz Sébastien, Mesnil Romain, Féraille Adélaïde, Caron Jean-François (2023-12)
    Materialising Structural Optimization of Reinforced Concrete Beams Through Digital Fabrication
  11. Mechtcherine Viktor, Tittelboom Kim, Kazemian Ali, Kreiger Eric et al. (2022-04)
    A Roadmap for Quality-Control of Hardening and Hardened Printed Concrete
  12. 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
  13. Rahul Attupurathu, Santhanam Manu (2020-02)
    Evaluating the Printability of Concretes Containing Lightweight Coarse Aggregates
  14. Rehman Atta, Kim Jung-Hoon (2021-07)
    3D Concrete Printing:
    A Systematic Review of Rheology, Mix Designs, Mechanical, Microstructural, and Durability Characteristics
  15. Rehman Atta, Perrot Arnaud, Birru Bizu, Kim Jung-Hoon (2023-09)
    Recommendations for Quality-Control in Industrial 3D Concrete Printing Construction with Mono-Component Concrete:
    A Critical Evaluation of Ten Test-Methods and the Introduction of the Performance-Index
  16. Roussel Nicolas, Buswell Richard, Ducoulombier Nicolas, Ivanova Irina et al. (2022-06)
    Assessing the Fresh Properties of Printable Cement-Based Materials:
    High-Potential Tests for Quality-Control
  17. Schutter Geert, Lesage Karel, Mechtcherine Viktor, Nerella Venkatesh et al. (2018-08)
    Vision of 3D Printing with Concrete:
    Technical, Economic and Environmental Potentials
  18. Silveira Júnior Jairon, Moura Cerqueira Kevin, Moura Ruan, Matos Paulo et al. (2024-04)
    Influence of Time-Gap on the Buildability of Cement Mixtures Designed for 3D Printing
  19. Souza Marcelo, Ferreira Igor, Moraes Elisângela, Senff Luciano et al. (2021-11)
    Role of Chemical Admixtures on 3D Printed Portland Cement:
    Assessing Rheology and Buildability
  20. Tay Yi, Qian Ye, Tan Ming (2019-05)
    Printability-Region for 3D Concrete Printing Using Slump- and Slump-Flow-Test
  21. Wangler Timothy, Roussel Nicolas, Bos Freek, Salet Theo et al. (2019-06)
    Digital Concrete:
    A Review
  22. Zhang Chao, Nerella Venkatesh, Krishna Anurag, Wang Shen et al. (2021-06)
    Mix-Design Concepts for 3D Printable Concrete:
    A Review
  23. Zhang Hanghua, Tan Yanke, Hao Lucen, Zheng Shipeng et al. (2024-02)
    Intelligent Real-Time Quality-Control for 3D Printed Concrete with Near-Nozzle Secondary-Mixing

3 Citations

  1. Costa Gabriel, Maas Pyetra, Doerner Gabriel, Nazário Samara et al. (2026-01)
    Reducing the Cement Content in 3D Concrete Printing Mixtures Through Porcelain Polishing Residue Incorporation
  2. Safanelli Nicollas, Schackow Adilson, Effting Carmeane, Matos Paulo (2025-09)
    The Effect of Crystalline Nanocellulose on the Rheology, Hydration of Cement Pastes, and Buildability of 3D-Printed Concrete
  3. Silveira Júnior Jairon, Sakata Rafael, Onghero Lucas, Matos Paulo et al. (2025-03)
    Al-Anodizing Waste as a Supplementary Cementitious Material for 3D-Printed Portland Cement

BibTeX
@article{mato_prig_scha_silv.2024.QCToF3PCBM,
  author            = "Paulo Ricardo de Matos and Hellen Prigol and Adilson Schackow and Samara da Silva Nazário and Gabriel Doerner and Nicollas Safanelli",
  title             = "Quality-Control-Tests of Fresh 3D Printable Cement-Based Materials",
  doi               = "10.1590/s1983-41952024000500015",
  year              = "2024",
  journal           = "Revista IBRACON de Estruturas e Materiais",
  volume            = "17",
  number            = "5",
}
Formatted Citation

P. R. de Matos, H. Prigol, A. Schackow, S. da Silva Nazário, G. Doerner and N. Safanelli, “Quality-Control-Tests of Fresh 3D Printable Cement-Based Materials”, Revista IBRACON de Estruturas e Materiais, vol. 17, no. 5, 2024, doi: 10.1590/s1983-41952024000500015.

Matos, Paulo Ricardo de, Hellen Prigol, Adilson Schackow, Samara da Silva Nazário, Gabriel Doerner, and Nicollas Safanelli. “Quality-Control-Tests of Fresh 3D Printable Cement-Based Materials”. Revista IBRACON De Estruturas E Materiais 17, no. 5 (2024). https://doi.org/10.1590/s1983-41952024000500015.