Skip to content

Multiphysics Modelling of 3D Concrete Printing (2025-06)

From Material Model to Process Simulation and Optimisation

10.1016/j.addma.2025.104847

 Pierre Maxime,  Ghabezloo Siavash,  Dangla Patrick,  Mesnil Romain,  Vandamme Matthieu,  Caron Jean-François
Journal Article - Additive Manufacturing, No. 104847

Abstract

Predictive simulation of 3D concrete printing is important to warrant printability and durability of print pieces and to optimise printing parameters, yet tedious due to the complexity of the material behaviour and printing process. From a constitutive model allowing a continuous description of the coupled chemo-thermo-poro-mechanical behaviour of cement-based materials from the early-age to the hardened state, a comprehensive finite element simulation framework is designed. It aims at modelling extrusion-based 3D printing processes, taking into account the sequential deposition of material. Study of the onset of plastic collapse on specific geometries at different printing speeds show the complexity of collapse prediction as well as the importance of process-related effects. An optimisation scheme is proposed to determine optimal printing speed modulations from numerical simulations with the perspective of increasing productivity in 3D concrete printing. The model shows good predicting capabilities when compared with experimental printing failures, and is able to extrapolate to other accelerator dosages without model re-calibration.

19 References

  1. Carneau Paul, Mesnil Romain, Baverel Olivier, Roussel Nicolas (2022-03)
    Layer Pressing in Concrete Extrusion-Based 3D Printing:
    Experiments and Analysis
  2. Carneau Paul, Mesnil Romain, Roussel Nicolas, Baverel Olivier (2020-04)
    Additive Manufacturing of Cantilever:
    From Masonry to Concrete 3D Printing
  3. Das Arnesh, Song Yu, Mantellato Sara, Wangler Timothy et al. (2022-04)
    Effect of Processing on the Air-Void System of 3D Printed Concrete
  4. Demont Léo, Mesnil Romain, Ducoulombier Nicolas, Caron Jean-François (2023-10)
    Affordable In-Line Structuration Measurements of Printable Mortar with a Pocket-Shear-Vane
  5. 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
  6. Ghantous Rita, Valadez-Carranza Yvette, Reese Steven, Weiss William (2022-06)
    Impact of Drying of 3D Printed Cementitious Pastes on Their Degree of Hydration
  7. Keita Emmanuel, Bessaies-Bey Hela, Zuo Wenqiang, Belin Patrick et al. (2019-06)
    Weak Bond Strength Between Successive Layers in Extrusion-Based Additive Manufacturing:
    Measurement and Physical Origin
  8. Moelich Gerrit, Kruger Jacques, Combrinck Riaan (2021-09)
    Modelling the Inter-Layer Bond Strength of 3D Printed Concrete with Surface Moisture
  9. Ooms Ticho, Vantyghem Gieljan, Coile Ruben, Corte Wouter (2020-12)
    A Parametric Modelling-Strategy for the Numerical Simulation of 3D Concrete Printing with Complex Geometries
  10. Pierre Maxime, Ghabezloo Siavash, Dangla Patrick, Mesnil Romain et al. (2024-09)
    Multi-Physics Modelling for Extrusion-Based 3D Printing:
    Material, Process and Applications
  11. Putten Jolien, Volder Melissa, Heede Philip, Deprez Maxim et al. (2022-03)
    Transport Properties of 3D Printed Cementitious Materials with Prolonged Time-Gap Between Successive Layers
  12. Reinold Janis, Nerella Venkatesh, Mechtcherine Viktor, Meschke Günther (2022-02)
    Extrusion-Process-Simulation and Layer-Shape-Prediction During 3D Concrete Printing Using the Particle-Finite-Element-Method
  13. Rizzieri Giacomo, Ferrara Liberato, Cremonesi Massimiliano (2023-07)
    Numerical Simulation of the Extrusion and Layer-Deposition-Processes in 3D Concrete Printing with the Particle-Finite-Element-Method
  14. Roussel Nicolas (2018-05)
    Rheological Requirements for Printable Concretes
  15. Vantyghem Gieljan, Ooms Ticho, Corte Wouter (2020-11)
    VoxelPrint:
    A Grasshopper Plug-In for Voxel-Based Numerical Simulation of Concrete Printing
  16. Wolfs Robert, Bos Freek, Salet Theo (2018-02)
    Early-Age Mechanical Behaviour of 3D Printed Concrete:
    Numerical Modelling and Experimental Testing
  17. Wolfs Robert, Salet Theo, Roussel Nicolas (2021-10)
    Filament-Geometry-Control in Extrusion-Based Additive Manufacturing of Concrete:
    The Good, the Bad and the Ugly
  18. Xiao Jianzhuang, Liu Haoran, Ding Tao (2020-11)
    Finite-Element-Analysis on the Anisotropic Behavior of 3D Printed Concrete under Compression and Flexure
  19. Zhang Yu, Qiao Hongxia, Qian Rusheng, Xue Cuizhen et al. (2022-02)
    Relationship Between Water-Transport Behavior and Inter-Layer Voids of 3D Printed Concrete

1 Citations

  1. Zhang Hui, Wu Jie, Huang Bo-Tao, Yu Rena et al. (2025-11)
    Cross-Scale Mechanisms of Anisotropy in 3D-Printed Ultra-High-Performance Concrete

BibTeX
@article{pier_ghab_dang_mesn.2025.MMo3CP,
  author            = "Maxime Pierre and Siavash Ghabezloo and Patrick Dangla and Romain Mesnil and Matthieu Vandamme and Jean-François Caron",
  title             = "Multiphysics Modelling of 3D Concrete Printing: From Material Model to Process Simulation and Optimisation",
  doi               = "10.1016/j.addma.2025.104847",
  year              = "2025",
  journal           = "Additive Manufacturing",
  pages             = "104847",
}
Formatted Citation

M. Pierre, S. Ghabezloo, P. Dangla, R. Mesnil, M. Vandamme and J.-F. Caron, “Multiphysics Modelling of 3D Concrete Printing: From Material Model to Process Simulation and Optimisation”, Additive Manufacturing, p. 104847, 2025, doi: 10.1016/j.addma.2025.104847.

Pierre, Maxime, Siavash Ghabezloo, Patrick Dangla, Romain Mesnil, Matthieu Vandamme, and Jean-François Caron. “Multiphysics Modelling of 3D Concrete Printing: From Material Model to Process Simulation and Optimisation”. Additive Manufacturing, 2025, 104847. https://doi.org/10.1016/j.addma.2025.104847.