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Mechanical Properties of Particle-Bed 3D Printed Concrete Infill Patterns (2025-05)

10.1016/j.addma.2025.104803

Zhang Bo,  de Corte Wouter,  Ooms Ticho,  Wan-Wendner Roman
Journal Article - Additive Manufacturing, No. 104803

Abstract

The particle-bed printing technique utilizes unbound material as support during the printing process, enabling the creation of complex 3D patterns that extrusion-based printing methods cannot achieve. This study uses the selective paste intrusion particle-bed printing technique to produce specimens, including various prisms and cylindrical shapes with gyroid, diamond, and I-WP infill patterns, along with full cylinders, printed in various orientations. Three-point bending tests are conducted on the prisms to evaluate tensile, compressive, and fracture properties, while uniaxial compression tests are performed on the cylinders to assess the compressive properties. The compressive tests on the infill cylinders indicate that relationships between infill density and compressive properties follow a power-law function, consistent with similar patterns observed in other materials. Cracking primarily occurs at locations where the angle between unit cell faces approaches zero. These positions create an aggregation of surfaces that effectively bridge the internal structure, facilitating load transfer within the concrete. This study investigates the mechanical properties of particle-bed printed specimens, focusing on the compressive behavior of complex 3D concrete infill patterns featuring overhangs. These intricate geometries, fabricated for the first time using concrete particle-bed printing, are analyzed to evaluate how varying design parameters, such as printing direction and infill density, influence compressive performance. The relationships between infill density and compressive properties are systematically quantified across different infill patterns, providing valuable insights for structural design and topology optimization.

49 References

  1. Alkhalidi Ammar, Hatuqay Dina (2020-02)
    Energy Efficient 3D Printed Buildings:
    Material and Techniques Selection Worldwide Study
  2. Anton Ana-Maria, Reiter Lex, Wangler Timothy, Frangez Valens et al. (2020-12)
    A 3D Concrete Printing Prefabrication Platform for Bespoke Columns
  3. Chaar Ghassan, Stynoski Peter, Banko Marion (2018-11)
    Structural Behavior of Layer-Printed Reinforced Concrete Beams
  4. Fasihi Ali, Libre Nicolas (2024-01)
    From Pumping to Deposition:
    A Comprehensive Review of Test-Methods for Characterizing Concrete-Printability
  5. Gislason Styrmir, Bruhn Simon, Breseghello Luca, Sen Burak et al. (2022-06)
    Porous 3D Printed Concrete Beams Show an Environmental Promise:
    A Cradle-to-Grave Comparative Life Cycle Assessment
  6. Gosselin Clément, Duballet Romain, Roux Philippe, Gaudillière-Jami Nadja et al. (2016-03)
    Large-Scale 3D Printing of Ultra-High-Performance Concrete:
    A New Processing Route for Architects and Builders
  7. Han Xiaoyu, Yan Jiachuan, Liu Mingjian, Huo Liang et al. (2021-10)
    Experimental Study on Large-Scale 3D Printed Concrete Walls Under Axial Compression
  8. Heever Marchant, Plessis Anton, Kruger Jacques, Zijl Gideon (2022-01)
    Evaluating the Effects of Porosity on the Mechanical Properties of Extrusion-Based 3D Printed Concrete
  9. Hwang Dooil, Khoshnevis Behrokh (2004-09)
    Concrete Wall Fabrication by Contour Crafting
  10. Joh Changbin, Lee Jungwoo, Bui The, Park Jihun et al. (2020-11)
    Buildability and Mechanical Properties of 3D Printed Concrete
  11. Khoshnevis Behrokh (2003-11)
    Automated Construction by Contour Crafting:
    Related Robotics and Information Technologies
  12. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Hardened Properties of High-Performance Printing Concrete
  13. Li Yu, Wu Hao, Xie Xinjie, Zhang Liming et al. (2024-02)
    FloatArch:
    A Cable-Supported, Unreinforced, and Re-Assemblable 3D Printed Concrete Structure Designed Using Multi-Material Topology-Optimization
  14. Lim Sungwoo, Buswell Richard, Le Thanh, Austin Simon et al. (2011-07)
    Developments in Construction-Scale Additive Manufacturing Processes
  15. Liu Zhenbang, Li Mingyang, Wang Xiangyu, Wang Sizhe et al. (2024-07)
    Axial Performances of the Steel-Rebar-Reinforced Column Confined by the Steel-Cable-Reinforced 3D Concrete Printing Permanent Formwork
  16. Liu Zhenbang, Li Mingyang, Wang Xiangyu, Wong Teck et al. (2025-03)
    Investigate Mechanisms of Different Printing Parameters on the Mechanical Anisotropy of 3D Concrete Printing Elements by Using Computed Tomography Scan and Computational Fluid Dynamics Methods
  17. Liu Zhenbang, Li Mingyang, Wong Teck, Tan Ming (2024-05)
    Determine the Effects of Pore Properties on the Mechanical Performances of 3D Concrete Printing Units with Experimental and Numerical Methods
  18. Liu Bing, Liu Xiaoyan, Li Guangtao, Geng Songyuan et al. (2022-09)
    Study on Anisotropy of 3D Printing PVA-Fiber-Reinforced Concrete Using Destructive and Non-Destructive Testing Methods
  19. Liu Chenkang, Yue Songlin, Zhou Cong, Sun Honglei et al. (2021-08)
    Anisotropic Mechanical Properties of Extrusion-Based 3D Printed Layered Concrete
  20. Lowke Dirk, Dini Enrico, Perrot Arnaud, Weger Daniel et al. (2018-07)
    Particle-Bed 3D Printing in Concrete Construction:
    Possibilities and Challenges
  21. Lowke Dirk, Talke Daniel, Mai (née Dressler) Inka, Weger Daniel et al. (2020-05)
    Particle-Bed 3D Printing by Selective Cement-Activation:
    Applications, Material and Process Technology
  22. Lyu Xin, Elchalakani Mohamed, Wang Xiangyu, Sun Junbo et al. (2024-07)
    Mechanical Performance and Anisotropic Analysis of Rubberised 3D Printed Concrete Incorporating PP-Fiber
  23. Nerella Venkatesh, Hempel Simone, Mechtcherine Viktor (2019-02)
    Effects of Layer-Interface Properties on Mechanical Performance of Concrete Elements Produced by Extrusion-Based 3D Printing
  24. Otto Jens, Maiwald Patrick (2024-05)
    Classification and Automated Quality Assurance of 3D Concrete Printed Surfaces
  25. Panda Biranchi, Paul Suvash, Tan Ming (2017-07)
    Anisotropic Mechanical Performance of 3D Printed Fiber-Reinforced Sustainable Construction-Material
  26. Parmigiani Silvia, Falliano Devid, Moro Sandro, Ferro Giuseppe et al. (2024-06)
    3D Printed Multi-Functional Foamed Concrete Building Components:
    Material-Properties, Component Design, and 3D Printing Application
  27. Pegna Joseph (1997-02)
    Exploratory Investigation of Solid Freeform Construction
  28. Pi Yilin, Lu Cong, Li Baoshan, Zhou Junhui (2023-10)
    Crack Propagation and Failure Mechanism of 3D Printing Engineered Cementitious Composites (3DP-ECC) Under Bending Loads
  29. Pierre Alexandre, Weger Daniel, Perrot Arnaud, Lowke Dirk (2018-01)
    Penetration of Cement-Pastes into Sand-Packings During 3D Printing:
    Analytical and Experimental Study
  30. Pons-Valladares Oriol, Casanovas-Rubio Maria, Armengou Jaume, Fuente Albert (2023-02)
    Approach for Sustainability-Assessment for Footbridge Construction Technologies:
    Application to the First World D-Shape 3D Printed Fiber-Reinforced Mortar Footbridge in Madrid
  31. Rahul Attupurathu, Santhanam Manu, Meena Hitesh, Ghani Zimam (2019-08)
    Mechanical Characterization of 3D Printable Concrete
  32. Salet Theo, Ahmed Zeeshan, Bos Freek, Laagland Hans (2018-05)
    Design of a 3D Printed Concrete Bridge by Testing
  33. Sanjayan Jay, Nematollahi Behzad, Xia Ming, Marchment Taylor (2018-04)
    Effect of Surface Moisture on Inter-Layer Strength of 3D Printed Concrete
  34. Sanjayan Jay, Nematollahi Behzad, Xia Ming, Marchment Taylor (2021-06)
    Effect of Surface Moisture on Inter-Layer Strength of 3D Printed Concrete:
    Correction
  35. Shakor Pshtiwan, Sanjayan Jay, Nazari Ali, Nejadi Shami (2017-02)
    Modified 3D Printed Powder to Cement-Based Material and Mechanical Properties of Cement Scaffold Used in 3D Printing
  36. Spencer Lawson, Genedy Moneeb, Strait James, Nair Sriramya et al. (2024-06)
    Concrete Gyroid:
    An Additive Manufacturing (AM) Method to 3D Print Gyroid Geometries with a Cementitious Material
  37. Suntharalingam Thadshajini, Gatheeshgar Perampalam, Upasiri Irindu, Poologanathan Keerthan et al. (2021-02)
    Numerical Study of Fire and Energy Performance of Innovative Lightweight 3D Printed Concrete Wall-Configurations in Modular Building System
  38. Tao Yaxin, Rahul Attupurathu, Mohan Manu, Tittelboom Kim et al. (2022-09)
    Blending Performance of Helical Static Mixer Used for Twin-Pipe 3D Concrete Printing
  39. To Quoc, Pham Koa, Lee Gayoon, Shin Myoungsu et al. (2024-06)
    Experimental and FEM Evaluation of the Influence of Inter-Layer Bonding Strength in 3D Printed Concrete Members Under Compressive and Flexural Loadings
  40. Wang Xianggang, Jia Lutao, Jia Zijian, Zhang Chao et al. (2022-06)
    Optimization of 3D Printing Concrete with Coarse Aggregate via Proper Mix-Design and Printing-Process
  41. Weger Daniel, Gehlen Christoph (2021-01)
    Particle-Bed Binding by Selective Paste-Intrusion:
    Strength and Durability of Printed Fine-Grain Concrete Members
  42. Weger Daniel, Pierre Alexandre, Perrot Arnaud, Kränkel Thomas et al. (2021-01)
    Penetration of Cement-Pastes into Particle-Beds:
    A Comparison of Penetration Models
  43. Westerlind Helena, Vargas José, Silfwerbrand Johan (2024-01)
    Towards the Application of Mesostructures in 3D Concrete Printing:
    Evaluating Load-bearing Performance
  44. Wolfs Robert, Bos Freek, Salet Theo (2019-03)
    Hardened Properties of 3D Printed Concrete:
    The Influence of Process Parameters on Inter-Layer Adhesion
  45. Wu Yun-Chen, Li Mo (2022-09)
    Effects of Early-Age Rheology and Printing Time Interval on Late-Age Fracture Characteristics of 3D Printed Concrete
  46. Zahrani Abdullah, Alghamdi Abdulrahman, Basalah Ahmad (2022-12)
    Computational Optimization of 3D Printed Concrete Walls for Improved Building Thermal Performance
  47. Zhang Jingchuan, Wang Jialiang, Dong Sufen, Yu Xun et al. (2019-07)
    A Review of the Current Progress and Application of 3D Printed Concrete
  48. Zhang Yi, Zhu Yanmei, Ren Qiang, He Bei et al. (2023-08)
    Comparison of Printability and Mechanical Properties of Rigid and Flexible Fiber-Reinforced 3D Printed Cement-Based Materials
  49. Zhu Binrong, Pan Jinlong, Zhou Zhenxin, Cai Jingming (2021-04)
    Mechanical Properties of Engineered Cementitious Composites Beams Fabricated by Extrusion-Based 3D

1 Citations

  1. Girskas Giedrius, Kligys Modestas (2025-06)
    3D Concrete Printing Review:
    Equipment, Materials, Mix Design, and Properties

BibTeX
@article{zhan_cort_ooms_wan.2025.MPoPB3PCIP,
  author            = "Bo Zhang and Wouter de Corte and Ticho Ooms and Roman Wan-Wendner",
  title             = "Mechanical Properties of Particle-Bed 3D Printed Concrete Infill Patterns",
  doi               = "10.1016/j.addma.2025.104803",
  year              = "2025",
  journal           = "Additive Manufacturing",
  pages             = "104803",
}
Formatted Citation

B. Zhang, W. de Corte, T. Ooms and R. Wan-Wendner, “Mechanical Properties of Particle-Bed 3D Printed Concrete Infill Patterns”, Additive Manufacturing, p. 104803, 2025, doi: 10.1016/j.addma.2025.104803.

Zhang, Bo, Wouter de Corte, Ticho Ooms, and Roman Wan-Wendner. “Mechanical Properties of Particle-Bed 3D Printed Concrete Infill Patterns”. Additive Manufacturing, 2025, 104803. https://doi.org/10.1016/j.addma.2025.104803.