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Rheology Characterization of 3D Printing Mortars with Nano-Clays and Basalt-Fibers (2023-07)

10.1016/j.matpr.2023.07.151

 Varela Hugo,  Barluenga Gonzalo,  Sonebi Mohammed
Journal Article - Materials Today: Proceedings

Abstract

3D printing has become one of the most innovative technologies for cement-based systems (CBS). However, recent studies have shown some issues related to printability and buildability (water drainage, plugs on extruder die, spreading of first layer, etc). To achieve a proper rheology control of CBS, it is essential to adapt the material fresh state properties (initial shear yield stress and structural build-up). In this study, a reference cement-based mortar with fly ash (25%), a 1:1.5 binder to sand ratio and a 0.38 water to binder ratio was used. A polycarboxilate ether-based superplasticizer was added until a consistency of around 1 kPa, measured with the cone-penetration test, was reached. Then, small amounts of several types of nanoclays (NC) in powder and slurry form (sepiolite, attapulgite and bentonite) and natural fibers were added to modify mortar rheological properties. The aim of the study was to characterize the rheological properties of 3D printing mortar samples with NC and basalt fibers (BF) to understand printability and buildability of this material. Cone-penetration test, flow table test and slump test were used to characterize 3D printing capacities. The cone-penetration test was performed in stirred and left at rest samples to assess shear yield stress before and after material deposition. Nanoclays showed a remarkable capacity to retain water and avoid drainage during extrusion but also to increase fresh state strength of material over time. Besides, they increased shear yield stress over time when left at rest. On the contrary, samples stirred over time did not show any increase of shear yield stress, especially samples with slurry nanoclays. Natural fibers also reduced drainage and enhance printability control regarding to reference mortar. BF also enhanced a performance on stirred sample but showed slightly changes on structural build-up at rest, mainly governed by NC effect.

16 References

  1. Aydin Eylül, Kara Burhan, Bundur Zeynep, Özyurt Nilüfer et al. (2022-08)
    A Comparative Evaluation of Sepiolite and Nano-Montmorillonite on the Rheology of Cementitious Materials for 3D Printing
  2. Ibrahim Kamoru, Jaji Mustapha, Zijl Gideon, Babafemi Adewumi (2023-03)
    Influence of Effective Micro-Organisms on the Rheology and Fresh State Properties of SCMs-Based Concrete for Digital Fabrication
  3. 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
  4. Kaushik Sandipan, Sonebi Mohammed, Amato Giuseppina, Perrot Arnaud et al. (2022-02)
    Influence of Nano-Clay on the Fresh and Rheological Behavior of 3D Printing Mortar
  5. Kolawole John, Becker Daniel, Xu Jie, Dobrzanski James et al. (2022-06)
    Selected Test-Methods for Assessing Fresh and Plastic-State 3D Concrete Printing-Materials
  6. Lloret-Fritschi Ena, Wangler Timothy, Gebhard Lukas, Mata-Falcón Jaime et al. (2020-05)
    From Smart Dynamic Casting to a Growing Family of Digital Casting Systems
  7. Marchon Delphine, Kawashima Shiho, Bessaies-Bey Hela, Mantellato Sara et al. (2018-05)
    Hydration- and Rheology-Control of Concrete for Digital Fabrication:
    Potential Admixtures and Cement-Chemistry
  8. Mazhoud Brahim, Perrot Arnaud, Picandet Vincent, Rangeard Damien et al. (2019-04)
    Underwater 3D Printing of Cement-Based Mortar
  9. Mechtcherine Viktor, Bos Freek, Perrot Arnaud, Silva Wilson et al. (2020-03)
    Extrusion-Based Additive Manufacturing with Cement-Based Materials:
    Production Steps, Processes, and Their Underlying Physics
  10. 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
  11. Qian Ye, Schutter Geert (2018-06)
    Enhancing Thixotropy of Fresh Cement-Pastes with Nano-Clay in Presence of Polycarboxylate-Ether Superplasticizer (PCE)
  12. Reiter Lex, Wangler Timothy, Roussel Nicolas, Flatt Robert (2022-04)
    Slow Penetration for Characterizing Concrete for Digital Fabrication
  13. Roussel Nicolas (2018-05)
    Rheological Requirements for Printable Concretes
  14. Sonebi Mohammed, Dedenis Marie, Abdalqader Ahmed, Perrot Arnaud (2021-11)
    Effect of Red Mud, Nano-Clay, and Natural Fiber on Fresh and Rheological Properties of Three-Dimensional Concrete Printing
  15. Wangler Timothy, Roussel Nicolas, Bos Freek, Salet Theo et al. (2019-06)
    Digital Concrete:
    A Review
  16. Wolfs Robert, Bos Derk, Salet Theo (2023-06)
    Lessons Learned of Project Milestone:
    The First 3D Printed Concrete House in the Netherlands

4 Citations

  1. Tarhan Yeşim, Tarhan İsmail, Şahin Remzi (2024-12)
    Comprehensive Review of Binder Matrices in 3D Printing Construction:
    Rheological Perspectives
  2. Varela Hugo, Tinoco Matheus, Mendoza Reales Oscar, Toledo Filho Romildo et al. (2024-10)
    3D Printable Cement-Based Composites Reinforced with Sisal-Fibers:
    Rheology, Printability and Hardened Properties
  3. Varela Hugo, Barluenga Gonzalo, Sonebi Mohammed (2024-09)
    Evaluation of Basalt-Fibers and Nano-Clays to Enhance Extrudability and Buildability of 3D Printing Mortars
  4. Valera Hugo, Pimentel Tinoco Matheus, Mendoza Reales Oscar, Toledo Filho Romildo et al. (2024-09)
    Rheological and 3D Printing-Assessment of Sisal-Fiber Mortar for Architectural Applications

BibTeX
@article{vare_barl_sone.2023.RCo3PMwNCaBF,
  author            = "Hugo Varela and Gonzalo Barluenga and Mohammed Sonebi",
  title             = "Rheology Characterization of 3D Printing Mortars with Nano-Clays and Basalt-Fibers",
  doi               = "10.1016/j.matpr.2023.07.151",
  year              = "2023",
  journal           = "Materials Today: Proceedings",
}
Formatted Citation

H. Varela, G. Barluenga and M. Sonebi, “Rheology Characterization of 3D Printing Mortars with Nano-Clays and Basalt-Fibers”, Materials Today: Proceedings, 2023, doi: 10.1016/j.matpr.2023.07.151.

Varela, Hugo, Gonzalo Barluenga, and Mohammed Sonebi. “Rheology Characterization of 3D Printing Mortars with Nano-Clays and Basalt-Fibers”. Materials Today: Proceedings, 2023. https://doi.org/10.1016/j.matpr.2023.07.151.