Skip to content

Influence of Processing Parameters on the Layer Geometry in 3D Concrete Printing (2020-07)

Experiments and Modelling

10.1007/978-3-030-49916-7_83

 Comminal Raphaël,  da Silva Wilson, Andersen Thomas,  Stang Henrik,  Spangenberg Jon
Contribution - Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication, pp. 852-862

Abstract

This paper presents the numerical simulation results of a computational fluid dynamics (CFD) model that describes the layer shape in extrusion-based 3D Concrete Printing (3DCP). The simulation outcome is validated through an experimental program in which we investigated the influence of 3DCP processing parameters on the geometry of a single layer. Specifically, a set of single layers were printed using a Ø25 mm nozzle mounted on an 6-axis industrial robotic arm travelling at different speeds and with different layer heights. A fresh concrete – comprising CEM I 52,5 R - SR 5 (EA), limestone filler, fine sand, water, and admixtures (i.e. viscosity modifying agent, high-range water-reducing admixtures and a hydration retarder) – was pumped and extruded at a fixed volumetric rate. Once hardened, the extruded layers were sliced to examine the resulting cross-sections. Specifically, the cross-sections’ geometry were obtained by a custom image processing algorithm. Next, the extrusion flow was modelled with a CFD simulation using the software FLOW-3D®. The constitutive behavior of fresh concrete was modelled as a Bingham fluid, while the volume-of-fluid method was used to predict the free surface of the concrete and, thus, the layer geometry. The numerical results agree qualitatively with the experimental observations, enabling us to identify two non-dimensional 3DCP processing parameters that influence the overall cross-sectional shapes: 1) the geometric ratio between layer height and nozzle diameter, and 2) the ratio between the nozzle velocity and the extrusion volumetric flux. These findings – when complemented with a model describing the overall deformation of stacked layers – serve as the basis for correlating material rheological properties to 3DCP process parameters, promoting a better link between design and fabrication in a 3DCP context.

6 References

  1. Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
    3D Printing Using Concrete-Extrusion:
    A Roadmap for Research
  2. Comminal Raphaël, Serdeczny Marcin, Pedersen David, Spangenberg Jon (2019-06)
    Motion-Planning and Numerical Simulation of Material-Deposition at Corners in Extrusion Additive Manufacturing
  3. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Mix-Design and Fresh Properties for High-Performance Printing Concrete
  4. Roussel Nicolas (2018-05)
    Rheological Requirements for Printable Concretes
  5. Serdeczny Marcin, Comminal Raphaël, Pedersen David, Spangenberg Jon (2019-05)
    Numerical Simulations of the Mesostructure Formation in Material-Extrusion Additive Manufacturing
  6. Wolfs Robert, Suiker Akke (2019-06)
    Structural Failure During Extrusion-Based 3D Printing Processes

34 Citations

  1. Mesoudy Mouad, Foulki Rida, Amegouz Driss (2025-10)
    3D Concrete Printing:
    Optimizing the Design of Interlocking 3D Printed Concrete Blocks for Fast and Sustainable Construction
  2. Barbhuiya Salim, Das Bibhuti, Adak Dibyendu (2025-09)
    Key Variables Influencing the Performance of 3D Printed Concrete:
    A Comprehensive Analysis
  3. Murtaza Ghulam, Baldinelli Giorgio (2025-08)
    Revolutionizing Architecture:
    3D Printing in Large Construction Industry and Strategic Innovations for Enhanced Performance
  4. Mesoudy Mouad, Rida Foulki, Driss Amegouz (2025-07)
    Addressing Geometrical and Dimensional Accuracy Challenges in 3D Concrete Printing
  5. Rizzieri Giacomo, Meni Simone, Cremonesi Massimiliano, Ferrara Liberato (2025-07)
    A Particle Finite Element Method for Investigating the Influence of Material and Process Parameters in 3D Concrete Printing
  6. Chen Qinbin, Barbat Gabriel, Cervera Miguel (2025-06)
    Finite Element Buildability Analysis of 3D Printed Concrete Including Failure by Elastic Buckling and Plastic Flow
  7. Do Duc, Diab Zeinab, Rémond Sébastien, Hoxha Dashnor (2025-01)
    Numerical Simulation-Tools for 3D Printing
  8. Lori Ali, Mehrali Mehdi (2025-01)
    Filament-Geometry-Control of Printable Geopolymer Using Experimental and Data-Driven Approaches
  9. Jiang Youbau, Gao Pengxiang, Adhikari Sondipon, Yao Xiaofei et al. (2024-12)
    Studies on the Mechanical Properties of Inter-Layer Interlocking 3D Printed Concrete Based on a Novel Nozzle
  10. Lin Yini, Yan Jiachuan, Sun Ming, Han Xiaoyu et al. (2024-10)
    Inter-Layer Cohesion in 3D Printed Concrete:
    The Role of Width-to-Height-Ratio in Modulating Transport Properties and Pore-Structure
  11. Kladovasilakis Nikolaos, Pemas Sotirios, Pechlivani Eleftheria (2024-07)
    Computer-Aided Design of 3D Printed Clay-Based Composite Mortars Reinforced with Bio-Inspired Lattice Structures
  12. Abbaoui Khalid, Korachi Issam, Jai Mostapha, Šeta Berin et al. (2024-04)
    3D Concrete Printing Using Computational Fluid Dynamics:
    Modeling of Material-Extrusion with Slip-Boundaries
  13. Yang Yan, Wu Hangzi, Han Lifang, Huang Qingling et al. (2023-12)
    Investigation on Geometric and Surface Finish Quality of 3D Concrete Printed Walls with Hollow Section
  14. Imram Ramsha, Rashid Ans, Khan Shoukat, İlcan Hüseyin et al. (2023-10)
    Buildability-Analysis on Squared Profile Structure in 3D Concrete Printing
  15. Pan Tinghong, Guo Rongxin, Fu Chaoshu, Ji Xuping et al. (2023-10)
    Extrusion-Based 3D Concrete Printing with Different Flow-Direction
  16. Zhu Jinggao, Ren Xiaodan, Cervera Miguel (2023-08)
    Buildability Modeling of 3D Printed Concrete Including Printing-Deviation:
    A Stochastic Analysis
  17. Mollah Md., Comminal Raphaël, Silva Wilson, Šeta Berin et al. (2023-07)
    Computational Fluid Dynamics Modelling and Experimental Analysis of Reinforcement-Bar-Integration in 3D Concrete Printing
  18. Khan Shoukat, İlcan Hüseyin, Aminipour Ehsan, Şahin Oğuzhan et al. (2023-07)
    Buildability-Analysis on Effect of Structural Design in 3D Concrete Printing:
    An Experimental and Numerical Study
  19. Abbaoui Khalid, Korachi Issam, Mollah Md., Spangenberg Jon (2023-06)
    Numerical Modelling of Planned Corner-Deposition in 3D Concrete Printing
  20. Mollah Md., Comminal Raphaël, Serdeczny Marcin, Šeta Berin et al. (2023-05)
    Computational Analysis of Yield-Stress-Buildup and Stability of Deposited Layers in Material-Extrusion Additive Manufacturing
  21. Salam Mohammad Abdul, Biernacki Joseph (2023-04)
    2D Stationary Computational Printing of Cement-Based Pastes with Time-Dependent Rheology
  22. Chen Hao, Zhang Daobo, Chen Peng, Li Ning et al. (2023-03)
    A Review of the Extruder System Design for Large-Scale Extrusion-Based 3D Concrete Printing
  23. Yang Liming, Sepasgozar Samad, Shirowzhan Sara, Kashani Alireza et al. (2022-12)
    Nozzle Criteria for Enhancing Extrudability, Buildability and Inter-Layer Bonding in 3D Printing Concrete
  24. Li Shuai, Nguyen-Xuan Hung, Tran Jonathan (2022-11)
    Digital Design and Parametric Study of 3D Concrete Printing on Non-Planar Surfaces
  25. Khan Shoukat, Koç Muammer (2022-10)
    Numerical Modelling and Simulation for Extrusion-Based 3D Concrete Printing:
    The Underlying Physics, Potential, and Challenges
  26. Pan Tinghong, Guo Rongxin, Jiang Yaqing, Ji Xuping (2022-07)
    How Do the Contact Surface Forces Affect the Inter-Layer Bond Strength of 3D Printed Mortar?
  27. Mohammad Abdul, Biernacki Joseph (2022-06)
    2D Stationary Computational Printing of Cement-Based Pastes
  28. Carneau Paul, Mesnil Romain, Baverel Olivier, Roussel Nicolas (2022-03)
    Layer Pressing in Concrete Extrusion-Based 3D Printing:
    Experiments and Analysis
  29. 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
  30. Esposito Laura, Casagrande Lorenzo, Menna Costantino, Asprone Domenico et al. (2021-10)
    Early-Age Creep Behavior of 3D Printable Mortars:
    Experimental Characterisation and Analytical Modelling
  31. Spangenberg Jon, Silva Wilson, Comminal Raphaël, Mollah Md. et al. (2021-10)
    Numerical Simulation of Multi-Layer 3D Concrete Printing
  32. Perrot Arnaud, Pierre Alexandre, Nerella Venkatesh, Wolfs Robert et al. (2021-07)
    From Analytical Methods to Numerical Simulations:
    A Process Engineering Toolbox for 3D Concrete Printing
  33. Jacquet Yohan, Perrot Arnaud, Picandet Vincent (2020-11)
    Assessment of Asymmetrical Rheological Behavior of Cementitious Material for 3D Printing Application
  34. Comminal Raphaël, Silva Wilson, Andersen Thomas, Stang Henrik et al. (2020-10)
    Modelling of 3D Concrete Printing Based on Computational Fluid Dynamics

BibTeX
@inproceedings{comm_silv_ande_stan.2020.IoPPotLGi3CP,
  author            = "Raphaël Comminal and Wilson Ricardo Leal da Silva and Thomas Juul Andersen and Henrik Stang and Jon Spangenberg",
  title             = "Influence of Processing Parameters on the Layer Geometry in 3D Concrete Printing: Experiments and Modelling",
  doi               = "10.1007/978-3-030-49916-7_83",
  year              = "2020",
  volume            = "28",
  pages             = "852--862",
  booktitle         = "Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2020",
  editor            = "Freek Paul Bos and Sandra Simaria de Oliveira Lucas and Robert Johannes Maria Wolfs and Theo A. M. Salet",
}
Formatted Citation

R. Comminal, W. R. L. da Silva, T. J. Andersen, H. Stang and J. Spangenberg, “Influence of Processing Parameters on the Layer Geometry in 3D Concrete Printing: Experiments and Modelling”, in Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2020, 2020, vol. 28, pp. 852–862. doi: 10.1007/978-3-030-49916-7_83.

Comminal, Raphaël, Wilson Ricardo Leal da Silva, Thomas Juul Andersen, Henrik Stang, and Jon Spangenberg. “Influence of Processing Parameters on the Layer Geometry in 3D Concrete Printing: Experiments and Modelling”. In Proceedings of the 2nd RILEM International Conference on Concrete and Digital Fabrication: Digital Concrete 2020, edited by Freek Paul Bos, Sandra Simaria de Oliveira Lucas, Robert Johannes Maria Wolfs, and Theo A. M. Salet, 28:852–62, 2020. https://doi.org/10.1007/978-3-030-49916-7_83.