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Predicting the Tensile Performance of 3D-Printed PE Fiber-Reinforced ECC Based on Micromechanics Model (2025-11)

10.3390/buildings15224058

 Zhu Binrong, Liu Xuhua,  Wei Yang,  Pan Jinlong
Journal Article - Buildings, Vol. 15, Iss. 22, No. 4058

Abstract

To elucidate the influence of the extrusion-based 3D printing of concrete on the tensile performance of polyethylene fibre-based engineered cementitious composites (PE-ECC), quantitative analyses of reinforcing filament alignment and pore morphology were carried out using backscattered electron (BSE) imaging and X-ray computed tomography (X-CT). A micromechanics analytical model based on microstructural characteristics was further employed to predict the tensile response of additively manufactured PE-ECC. Due to the extrusion process, fibres in 3D-printed PE-ECC were predominantly oriented along the printing path, resulting in a smaller average inclination angle compared with the randomly distributed fibres in cast specimens. Internal pores exhibited elongated flattened ellipsoidal shapes, with more pronounced anisotropy in axial lengths across the three principal directions. Taking the major semi-axis of the equivalent ellipsoidal voids as a representative pore parameter, the analytical model accurately reproduced the cracking strength, stress-strain evolution, and crack pattern of the printed PE-ECC. This extrusion process enhanced multiple cracking capacity and strain-hardening performance by improving fibre orientation, strengthening interfacial bonding, and altering matrix fracture toughness. The integration of micromechanical modelling with experimentally measured microstructural parameters effectively revealed the intrinsic mechanisms underlying the enhanced tensile behaviour of 3D-printed PE-ECC and provides theoretical support for the optimized design of fibre-reinforced cementitious composites in 3D printing.

10 References

  1. Du Guoqiang, Qian Ye (2024-05)
    Effects of Printing-Patterns and Loading-Directions on Fracture Behavior of 3D Printed Strain-Hardening Cementitious Composites
  2. Ivaniuk Egor, Eichenauer Martin, Tošić Zlata, Müller Steffen et al. (2022-05)
    3D Printing and Assembling of Frame Modules Using Printable Strain-Hardening Cement-Based Composites
  3. Ler Kee-Hong, Ma Chau-Khun, Chin Chee-Long, Ibrahim Izni et al. (2024-08)
    Porosity and Durability Tests on 3D Printing Concrete:
    A Review
  4. Li Victor, Bos Freek, Yu Kequan, McGee Wesley et al. (2020-04)
    On the Emergence of 3D Printable Engineered, Strain-Hardening Cementitious Composites
  5. Overmeir Anne, Šavija Branko, Bos Freek, Schlangen Erik (2023-08)
    3D Printable Strain-Hardening Cementitious Composites (3DP-SHCC):
    Tailoring Fresh and Hardened State Properties
  6. Ramesh Akilesh, Rajeev Pathmanathan, Sanjayan Jay, Mechtcherine Viktor (2024-06)
    In-Process Textile Reinforcement Method for 3D Concrete Printing and Its Structural Performance
  7. Teng Fei, Xu Fengming, Yang Minxin, Yu Jie et al. (2025-02)
    Development of Sustainable Strain-Hardening Cementitious Composites Containing Diatomite for 3D Printing
  8. Ye Junhong, Zhang Jiangdi, Yu Jie, Yu Jiangtao et al. (2023-11)
    Flexural Behaviors of 3D Printed Lightweight Engineered Cementitious Composites (ECC) Slab with Hollow Sections
  9. Zhu Binrong, Pan Jinlong, Li Junrui, Wang Penghui et al. (2022-07)
    Relationship Between Microstructure and Strain-Hardening Behavior of 3D Printed Engineered Cementitious Composites
  10. Zhuang Zicheng, Xu Fengming, Ye Junhong, Hu Nan et al. (2024-06)
    A Comprehensive Review of Sustainable Materials and Tool-Path-Optimization in 3D Concrete Printing

0 Citations

BibTeX
@article{zhu_liu_wei_pan.2025.PtTPo3PPFREBoMM,
  author            = "Binrong Zhu and Xuhua Liu and Yang Wei and Jinlong Pan",
  title             = "Predicting the Tensile Performance of 3D-Printed PE Fiber-Reinforced ECC Based on Micromechanics Model",
  doi               = "10.3390/buildings15224058",
  year              = "2025",
  journal           = "Buildings",
  volume            = "15",
  number            = "22",
  pages             = "4058",
}
Formatted Citation

B. Zhu, X. Liu, Y. Wei and J. Pan, “Predicting the Tensile Performance of 3D-Printed PE Fiber-Reinforced ECC Based on Micromechanics Model”, Buildings, vol. 15, no. 22, p. 4058, 2025, doi: 10.3390/buildings15224058.

Zhu, Binrong, Xuhua Liu, Yang Wei, and Jinlong Pan. “Predicting the Tensile Performance of 3D-Printed PE Fiber-Reinforced ECC Based on Micromechanics Model”. Buildings 15, no. 22 (2025): 4058. https://doi.org/10.3390/buildings15224058.