Skip to content

Microbial-Induced Carbonate Reinforcement for 3D Printed Concrete (2024-11)

Testing in Printable and Mechanical Strength

10.1617/s11527-024-02502-y

Zhao Herui,  Jiang Quan, Xia Yong, Liu Jian, Hou Dongqi, Chen Pengfei, Liu Jianpo
Journal Article - Materials and Structures, Vol. 57, Iss. 9

Abstract

This study introduces a microbial-induced calcium precipitation technique into cement-based 3D printing by incorporating Bacillus pasteurii into 3D printing (3DP) mortar. The printability, physical–mechanical properties, and microstructure are analyzed to compare the differences between control concrete and bacterial concrete. Experimental results demonstrated that mixing bacteria in 3DP mortars can enhance printability and increase the uniaxial compressive strength (UCS) and Brazilian splitting tensile strength of printed specimens. Particularly, this method significantly improved the interlayer strength of 3DP concrete. With a bacterial concentration of 1 × 10^7 cells/ml, the UCS improved by 35.8% and 57.3% in the YZ and XY directions, respectively, compared to the control concrete UCS. The tensile strength in the YZ direction improved by 23.65% compared to control concrete at the same bacterial concentration. Moreover, the tensile strength in the XY direction continued to improve with increasing bacterial concentration, while it decreased in the YZ direction, indicating that incorporating bacteria is an effective method for enhancing interlayer tensile strength. Additionally, nitrogen adsorption results revealed that mixing bacteria reduced pore volume and surface area of printed specimens, leading to denser microstructure by filling granular calcium carbonate precipitates at internal pores of 3D-printed concrete, as observed by SEM and XRD. These findings offer a new approach for modifying cement-based 3D-printing mortars and provide valuable insights for enhancing the mechanical performance of architectural 3DP concrete, thereby promoting the advancement of cement-based 3DP technology.

41 References

  1. Bester Frederick, Heever Marchant, Kruger Jacques, Zijl Gideon (2020-11)
    Reinforcing Digitally Fabricated Concrete:
    A Systems Approach Review
  2. Cao Xiangpeng, Yu Shiheng, Cui Hongzhi, Li Zongjin (2022-04)
    3D Printing Devices and Reinforcing Techniques for Extruded Cement-Based Materials:
    A Review
  3. Chen Mingxu, Yang Lei, Zheng Yan, Huang Yongbo et al. (2020-04)
    Yield-Stress and Thixotropy-Control of 3D Printed Calcium-Sulfoaluminate Cement Composites with Metakaolin Related to Structural Build-Up
  4. Chen Yu, Zhang Yu, He Shan, Liang Xuhui et al. (2023-06)
    Improving Structural Build-Up of Limestone-Calcined-Clay-Cement-Pastes by Using Inorganic Additives
  5. Craveiro Flávio, Nazarian Shadi, Bártolo Helena, Bartolo Paulo et al. (2020-02)
    An Automated System for 3D Printing Functionally Graded Concrete-Based Materials
  6. Ding Tao, Xiao Jianzhuang, Mechtcherine Viktor (2023-05)
    Microstructure and Mechanical Properties of Inter-Layer Regions in Extrusion-Based 3D Printed Concrete:
    A Critical Review
  7. Falliano Devid, Domenico Dario, Ricciardi Giuseppe, Gugliandolo Ernesto (2020-04)
    3D Printable Lightweight Foamed Concrete and Comparison with Classical Foamed Concrete in Terms of Fresh State Properties and Mechanical Strength
  8. Fan Dingqiang, Zhu Jinyun, Fan Mengxin, Lu Jianxian et al. (2023-04)
    Intelligent Design and Manufacturing of Ultra-High-Performance Concrete:
    A Review
  9. Feng Peng, Meng Xinmiao, Chen Jian-Fei, Ye Lieping (2015-06)
    Mechanical Properties of Structures 3D Printed with Cementitious Powders
  10. Gebhard Lukas, Mata-Falcón Jaime, Anton Ana-Maria, Dillenburger Benjamin et al. (2021-04)
    Structural Behavior of 3D Printed Concrete Beams with Various Reinforcement-Strategies
  11. He Lewei, Chow Wai, Li Hua (2020-06)
    Effects of Inter-Layer Notch and Shear Stress on Inter-Layer Strength of 3D Printed Cement-Paste
  12. Heras Murica Daniel, Genedy Moneeb, Taha Mahmoud (2020-09)
    Examining the Significance of Infill-Printing-Pattern on the Anisotropy of 3D Printed Concrete
  13. Jayathilakage Roshan, Rajeev Pathmanathan, Sanjayan Jay (2021-05)
    Extrusion Rheometer for 3D Concrete Printing
  14. Ji Guangchao, Ding Tao, Xiao Jianzhuang, Du Shupeng et al. (2019-05)
    A 3D Printed Ready-Mixed Concrete Power-Distribution Substation:
    Materials and Construction Technology
  15. Jiang Quan, Liu Qiang, Wu Si, Zheng Hong et al. (2022-06)
    Modification Effect of Nano-Silica and Polypropylene-Fiber for Extrusion-Based 3D Printing Concrete:
    Printability and Mechanical Anisotropy
  16. Jiao Dengwu, Shi Caijun, Schutter Geert (2021-11)
    Magneto-Rheology-Control in 3D Concrete Printing:
    A Rheological Attempt
  17. Kruger Jacques, Zeranka Stephan, Zijl Gideon (2019-07)
    3D Concrete Printing:
    A Lower-Bound Analytical Model for Buildability-Performance-Quantification
  18. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Hardened Properties of High-Performance Printing Concrete
  19. Li Victor, Bos Freek, Yu Kequan, McGee Wesley et al. (2020-04)
    On the Emergence of 3D Printable Engineered, Strain-Hardening Cementitious Composites
  20. Liu Qiang, Jiang Quan, Yu Rang, Rong Yao et al. (2023-12)
    Extrusion 3D Printing Circular and Horseshoe Tunnel Physical Models:
    A Comparative Study of Deformation and Brittle Failure
  21. Liu Zhixin, Li Mingyang, Tay Yi, Weng Yiwei et al. (2020-04)
    Rotation-Nozzle and Numerical Simulation of Mass-Distribution at Corners in 3D Cementitious Material-Printing
  22. Lowke Dirk, Vandenberg Aileen, Pierre Alexandre, Thomas Amaury et al. (2021-07)
    Injection 3D Concrete Printing in a Carrier Liquid:
    Underlying Physics and Applications to Lightweight Space Frame Structures
  23. Lu Bing, Weng Yiwei, Li Mingyang, Qian Ye et al. (2019-02)
    A Systematical Review of 3D Printable Cementitious Materials
  24. Lyu Fuyan, Zhao Dongliang, Hou Xiaohui, Sun Li et al. (2021-10)
    Overview of the Development of 3D Printing Concrete:
    A Review
  25. Miranda Luiza, Marchesini Flávio, Lesage Karel, Schutter Geert (2022-12)
    The Evolution of the Rheological Behavior of Hydrating Cement Systems:
    Combining Constitutive Modeling with Rheometry, Calorimetry and Mechanical Analyses
  26. Moini Mohamadreza, Baghaie Ahmadreza, Rodriguez Fabian, Zavattieri Pablo et al. (2021-06)
    Quantitative Microstructural Investigation of 3D Printed and Cast Cement-Pastes Using Micro-Computed Tomography- and Image-Analysis
  27. Nguyen Vuong, Nguyen-Xuan Hung, Panda Biranchi, Tran Jonathan (2022-03)
    3D Concrete Printing Modelling of Thin-Walled Structures
  28. Pan Zuanfeng, Si Doudou, Tao Jinghong, Xiao Jianzhuang (2023-02)
    Compressive Behavior of 3D Printed Concrete with Different Printing Paths and Concrete Ages
  29. Panda Biranchi, Unluer Cise, Tan Ming (2018-10)
    Investigation of the Rheology and Strength of Geopolymer Mixtures for Extrusion-Based 3D Printing
  30. Perrot Arnaud, Rangeard Damien, Pierre Alexandre (2015-02)
    Structural Build-Up of Cement-Based Materials Used for 3D Printing-Extrusion-Techniques
  31. Roussel Nicolas (2018-05)
    Rheological Requirements for Printable Concretes
  32. Salet Theo, Ahmed Zeeshan, Bos Freek, Laagland Hans (2018-05)
    Design of a 3D Printed Concrete Bridge by Testing
  33. Sanjayan Jay, Jayathilakage Roshan, Rajeev Pathmanathan (2020-11)
    Vibration-Induced Active Rheology-Control for 3D Concrete Printing
  34. Sanjayan Jay, Nematollahi Behzad, Xia Ming, Marchment Taylor (2018-04)
    Effect of Surface Moisture on Inter-Layer Strength of 3D Printed Concrete
  35. Tay Yi, Panda Biranchi, Paul Suvash, Mohamed Nisar et al. (2017-05)
    3D Printing Trends in Building and Construction Industry:
    A Review
  36. Ting Guan, Quah Tan, Lim Jian, Tay Yi et al. (2022-01)
    Extrudable Region Parametrical Study of 3D Printable Concrete Using Recycled-Glass Concrete
  37. Wolfs Robert, Bos Freek, Salet Theo (2018-02)
    Early-Age Mechanical Behaviour of 3D Printed Concrete:
    Numerical Modelling and Experimental Testing
  38. Xiao Jianzhuang, Liu Haoran, Ding Tao (2020-11)
    Finite-Element-Analysis on the Anisotropic Behavior of 3D Printed Concrete under Compression and Flexure
  39. Yu Shiwei, Xia Ming, Sanjayan Jay, Yang Lin et al. (2021-07)
    Microstructural Characterization of 3D Printed Concrete
  40. Zhang Nan, Sanjayan Jay (2023-07)
    Mechanisms of Rheological Modifiers for Quick Mixing Method in 3D Concrete Printing
  41. Zhu Lingli, Yao Jie, Zhao Yu, Ruan Wenqiang et al. (2022-12)
    Effects of Composite Cementation System on Rheological and Working Performances of Fresh 3D Printable Engineered Cementitious Composites

1 Citations

  1. Aydin Tolga, Sandalci Ilgin, Aydin Eylül, Kara Burhan et al. (2025-08)
    Investigation of Bacterial Cells and Clays as Rheology Modifiers in 3D Concrete Printing

BibTeX
@article{zhao_jian_xia_liu.2024.MICRf3PC,
  author            = "Herui Zhao and Quan Jiang and Yong Xia and Jian Liu and Dongqi Hou and Pengfei Chen and Jianpo Liu",
  title             = "Microbial-Induced Carbonate Reinforcement for 3D Printed Concrete: Testing in Printable and Mechanical Strength",
  doi               = "10.1617/s11527-024-02502-y",
  year              = "2024",
  journal           = "Materials and Structures",
  volume            = "57",
  number            = "9",
}
Formatted Citation

H. Zhao, “Microbial-Induced Carbonate Reinforcement for 3D Printed Concrete: Testing in Printable and Mechanical Strength”, Materials and Structures, vol. 57, no. 9, 2024, doi: 10.1617/s11527-024-02502-y.

Zhao, Herui, Quan Jiang, Yong Xia, Jian Liu, Dongqi Hou, Pengfei Chen, and Jianpo Liu. “Microbial-Induced Carbonate Reinforcement for 3D Printed Concrete: Testing in Printable and Mechanical Strength”. Materials and Structures 57, no. 9 (2024). https://doi.org/10.1617/s11527-024-02502-y.