Skip to content

Design and Function of Thermoresponsive-Ultrafast Stiffening Suspension Formulations for 3D Printing (2025-01)

10.1016/j.cemconcomp.2024.105905

 Kandy Sharu,  Remke Sebastian,  Ranganathan Thiyagarajan,  Wani Shubham,  Dai Xiaodi,  Neithalath Narayanan,  Kumar Aditya, Bauchy Mathieu, Garboczi Edward,  Gädt Torben,  Srivastava Samanvaya,  Sant Gaurav
Journal Article - Cement and Concrete Composites, Vol. 157, No. 105905

Abstract

An inability to accurately control the rate and extent of solidification of cementitious suspensions is a major impediment to creating geometrically complex structural shapes via 3D printing. In this work, we have developed a thermoresponsive rapid stiffening system that will stiffen suspensions of minerals such as quartz, limestone, portlandite, and Ordinary Portland Cement (OPC) over a wide pH range. When exposed to trigger temperatures between 40 °C and 70 °C, the polymer binder system undergoes a thermally triggered free radical polymerization (FRP) reaction, leading to an ultrafast stiffening of the suspension at an average rate on the order of 1 kPa/s and achieving MPa-level strength in less than a minute. The cured composites exhibit flexural strength and strain capacity far greater than OPC-based composites ( 25 MPa, 1 %). We successfully demonstrated 3D printing using these engineered slurries, showcasing their thermal response, thermal latency, and printability, thereby validating our design approach and its potential for diverse applications. These thermoresponsive slurries facilitate freestyle printing, non-horizontal printing, and the creation of complex geometries with high overhangs. This approach provides a means to surmount the significant limitations of extrusion-based 3D printing using particulate suspensions and open up new possibilities in integrating design and production.

24 References

  1. Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
    3D Printing Using Concrete-Extrusion:
    A Roadmap for Research
  2. Chen Yuning, Liu Chao, Cao Ruilin, Chen Chun et al. (2022-02)
    Systematical Investigation of Rheological Performance Regarding 3D Printing Process for Alkali-Activated Materials:
    Effect of Precursor Nature
  3. Chen Mingxu, Liu Bo, Li Laibo, Cao Lidong et al. (2020-01)
    Rheological Parameters, Thixotropy and Creep of 3D Printed Calcium-Sulfoaluminate-Cement Composites Modified by Bentonite
  4. Dai Xiaodi, Tao Yaxin, Tittelboom Kim, Schutter Geert (2023-02)
    Rheological and Mechanical Properties of 3D Printable Alkali-Activated Slag Mixtures with Addition of Nano Clay
  5. Hambach Manuel, Möller Hendrik, Neumann Thomas, Volkmer Dirk (2016-08)
    Portland-Cement-Paste with Aligned Carbon-Fibers Exhibiting Exceptionally High Flexural Strength (>100 MPa)
  6. Kandy Sharu, Mehdipour Iman, Neithalath Narayanan, Kumar Aditya et al. (2022-07)
    Ultrafast Stiffening of Concentrated Thermoresponsive Mineral-Suspensions
  7. Khalil Noura, Aouad Georges, Cheikh Khadija, Rémond Sébastien (2017-09)
    Use of Calcium-Sulfoaluminate-Cements for Setting-Control of 3D Printing Mortars
  8. Lowke Dirk, Dini Enrico, Perrot Arnaud, Weger Daniel et al. (2018-07)
    Particle-Bed 3D Printing in Concrete Construction:
    Possibilities and Challenges
  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. Muthukrishnan Shravan, Ramakrishnan Sayanthan, Sanjayan Jay (2020-09)
    Effect of Microwave-Heating on Inter-Layer Bonding and Buildability of Geopolymer 3D Concrete Printing
  11. Panda Biranchi, Ruan Shaoqin, Unluer Cise, Tan Ming (2020-01)
    Investigation of the Properties of Alkali-Activated Slag Mixes Involving the Use of Nano-Clay and Nucleation-Seeds for 3D Printing
  12. Perrot Arnaud, Rangeard Damien, Pierre Alexandre (2015-02)
    Structural Build-Up of Cement-Based Materials Used for 3D Printing-Extrusion-Techniques
  13. Rahul Attupurathu, Santhanam Manu, Meena Hitesh, Ghani Zimam (2018-12)
    3D Printable Concrete:
    Mixture-Design and Test-Methods
  14. Reiter Lex, Wangler Timothy, Anton Ana-Maria, Flatt Robert (2020-05)
    Setting-on-Demand for Digital Concrete:
    Principles, Measurements, Chemistry, Validation
  15. Reiter Lex, Wangler Timothy, Roussel Nicolas, Flatt Robert (2018-06)
    The Role of Early-Age Structural Build-Up in Digital Fabrication with Concrete
  16. Roussel Nicolas (2018-05)
    Rheological Requirements for Printable Concretes
  17. Roussel Nicolas, Bessaies-Bey Hela, Kawashima Shiho, Marchon Delphine et al. (2019-08)
    Recent Advances on Yield-Stress and Elasticity of Fresh Cement-Based Materials
  18. Schutter Geert, Lesage Karel (2018-09)
    Active Control of Properties of Concrete:
    A (P)Review
  19. Schutter Geert, Lesage Karel, Mechtcherine Viktor, Nerella Venkatesh et al. (2018-08)
    Vision of 3D Printing with Concrete:
    Technical, Economic and Environmental Potentials
  20. Soto Borja, Agustí-Juan Isolda, Hunhevicz Jens, Joss Samuel et al. (2018-05)
    Productivity of Digital Fabrication in Construction:
    Cost and Time-Analysis of a Robotically Built Wall
  21. Tao Yaxin, Rahul Attupurathu, Lesage Karel, Yuan Yong et al. (2021-02)
    Stiffening Control of Cement-Based Materials Using Accelerators in In-Line Mixing Processes:
    Possibilities and Challenges
  22. Vantyghem Gieljan, Corte Wouter, Shakour Emad, Amir Oded (2020-01)
    3D Printing of a Post-Tensioned Concrete Girder Designed by Topology-Optimization
  23. Wolfs Robert, Bos Freek, Salet Theo (2018-02)
    Early-Age Mechanical Behaviour of 3D Printed Concrete:
    Numerical Modelling and Experimental Testing
  24. Wolfs Robert, Suiker Akke (2019-06)
    Structural Failure During Extrusion-Based 3D Printing Processes

0 Citations

BibTeX
@article{kand_remk_rang_wani.2025.DaFoTUSSFf3P,
  author            = "Sharu Bhagavathi Kandy and Sebastian Remke and Thiyagarajan Ranganathan and Shubham Kiran Wani and Xiaodi Dai and Narayanan Neithalath and Aditya Kumar and Mathieu Bauchy and Edward J. Garboczi and Torben Gädt and Samanvaya Srivastava and Gaurav Sant",
  title             = "Design and Function of Thermoresponsive-Ultrafast Stiffening Suspension Formulations for 3D Printing",
  doi               = "10.1016/j.cemconcomp.2024.105905",
  year              = "2025",
  journal           = "Cement and Concrete Composites",
  volume            = "157",
  pages             = "105905",
}
Formatted Citation

S. B. Kandy, “Design and Function of Thermoresponsive-Ultrafast Stiffening Suspension Formulations for 3D Printing”, Cement and Concrete Composites, vol. 157, p. 105905, 2025, doi: 10.1016/j.cemconcomp.2024.105905.

Kandy, Sharu Bhagavathi, Sebastian Remke, Thiyagarajan Ranganathan, Shubham Kiran Wani, Xiaodi Dai, Narayanan Neithalath, Aditya Kumar, et al.. “Design and Function of Thermoresponsive-Ultrafast Stiffening Suspension Formulations for 3D Printing”. Cement and Concrete Composites 157 (2025): 105905. https://doi.org/10.1016/j.cemconcomp.2024.105905.