Skip to content

Compressive Behavior of FRP-Confined 3D Printed Ultra-High-Performance Concrete Cylinders (2023-12)

10.1016/j.jobe.2023.108304

Yan Zitong,  Zeng Jun-Jie,  Zhuge Yan, Liao Jinjing, Zhou Jie-Kai,  Ma Guowei
Journal Article - Journal of Building Engineering, No. 108304

Abstract

Three-dimensional (3D) concrete printing technology has attracted increasing applications due to its merits such as labor-saving. Due to difficulties in implementing reinforcements in 3D printed concrete (3DPC), 3DPC structures are commonly designed to predominantly resist compressive loadings. This paper proposes to further enhance the compressive performance of 3D printed ultra-high performance concrete (3DPU) elements by fiber-reinforced polymer (FRP) wrapping as FRP confinement can enhance both the shear strength and axial compressive strength of concrete. Axial compression tests on FRP-confined 3D printed UHPC (FC3DPU) and unconfined 3D printed UHPC (UC3DPU) cylinders were conducted. The key variables include the loading directions (i.e., X, Y, Z directions) of the 3DPU cylinders and the FRP confinement thickness (i.e., one and two layers). Test results show that FRP wrapping can substantially enhance the strength and deformation capacity of 3DPU. Furthermore, the compressive strengths of the UC3DPU and FC3DPU in the X-direction are the highest, while they are the lowest in the Z-direction. The actual confinement ratio threshold for sufficient confinement of FC3DPU is 0.1. Two existing models of FRP-confined concrete were assessed, and results show that Liao et al.’s model has good performance in predicting the ultimate axial stresses of FC3DPU, whereas Teng et al.’s model is more accurate in estimating the axial strains corresponding to the ultimate axial stresses. Microscopic analysis reveals 3DPU has more large defects (i.e., equivalent diameter (Eq) > 2 mm) in interlayers but less small defects (Eq < 2 mm) than cast counterparts.

21 References

  1. Ding Tao, Xiao Jianzhuang, Zou Shuai, Wang Yu (2020-06)
    Hardened Properties of Layered 3D Printed Concrete with Recycled Sand
  2. Du Wenfeng, Zhu Liming, Zhang Hao, Zhou Zhiyong et al. (2023-01)
    Experimental and Numerical Investigation of an Innovative 3DPC Thin-Shell Structure
  3. Han Yilong, Yang Zhihan, Ding Tao, Xiao Jianzhuang (2020-08)
    Environmental and Economic Assessment on 3D Printed Buildings with Recycled Concrete
  4. 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
  5. Hou Shaodan, Duan Zhenhua, Xiao Jianzhuang, Ye Jun (2020-12)
    A Review of 3D Printed Concrete:
    Performance-Requirements, Testing Measurements and Mix-Design
  6. Ma Guowei, Li Zhijian, Wang Li, Wang Fang et al. (2019-01)
    Mechanical Anisotropy of Aligned Fiber-Reinforced Composite for Extrusion-Based 3D Printing
  7. Ma Guowei, Li Yanfeng, Wang Li, Zhang Junfei et al. (2020-01)
    Real-Time Quantification of Fresh and Hardened Mechanical Property for 3D Printing Material by Intellectualization with Piezoelectric Transducers
  8. Marchment Taylor, Sanjayan Jay (2019-10)
    Mesh Reinforcing Method for 3D Concrete Printing
  9. Mo Yixin, Xing Jianchun, Yue Songlin, Zhang Yamei et al. (2022-04)
    Dynamic Properties of 3D Printed Cement Mortar Based on Split Hopkinson Pressure Bar Testing
  10. Moelich Gerrit, Kruger Jacques, Combrinck Riaan (2021-09)
    Modelling the Inter-Layer Bond Strength of 3D Printed Concrete with Surface Moisture
  11. 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
  12. Nodehi Mehrab, Aguayo Federico, Nodehi Shahab, Gholampour Aliakbar et al. (2022-07)
    Durability Properties of 3D Printed Concrete
  13. Sun Xiaoyan, Gao Chao, Wang Hailong (2020-10)
    Bond-Performance Between BFRP-Bars and 3D Printed Concrete
  14. Tian Wei, Han Nv (2018-04)
    Pore Characteristics (>0.1mm) Of Non-Air-Entrained Concrete Destroyed by Freeze-Thaw-Cycles Based on CT Scanning and 3D Printing
  15. 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
  16. Wang Li, Ma Guowei, Liu Tianhao, Buswell Richard et al. (2021-07)
    Inter-Layer Reinforcement of 3D Printed Concrete by the In-Process Deposition of U-Nails
  17. Wolfs Robert, Bos Freek, Salet Theo (2019-03)
    Hardened Properties of 3D Printed Concrete:
    The Influence of Process Parameters on Inter-Layer Adhesion
  18. Zeng Jun-Jie, Li Pei-Lin, Yan Zitong, Zhou Jie-Kai et al. (2023-08)
    Behavior of 3D Printed HPC Plates with FRP-Grid-Reinforcement Under Bending
  19. Zhang Chao, Nerella Venkatesh, Krishna Anurag, Wang Shen et al. (2021-06)
    Mix-Design Concepts for 3D Printable Concrete:
    A Review
  20. Zhang Yu, Zhang Yunsheng, She Wei, Yang Lin et al. (2019-01)
    Rheological and Hardened Properties of the High-Thixotropy 3D Printing Concrete
  21. Zhou Wen, Zhang Yamei, Ma Lei, Li Victor (2022-04)
    Influence of Printing Parameters on 3D Printing Engineered Cementitious Composites

20 Citations

  1. Zeng Jun-Jie, Jiang Yuan, Yan Zitong, Sun Hou-Qi et al. (2025-11)
    3D Printing of Continuous Carbon Fiber-Reinforced Polymer Reinforcement for Concrete Columns
  2. 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
  3. Sun Hou-Qi, Zeng Jun-Jie, Xie Shan-Shan, Xia Jun-Run et al. (2025-09)
    Mechanical and Microstructural Characterization of Interlayer Bonding in Multi-Material 3D-Printed Concrete
  4. Yang Rijiao, Xu Chengji, You Xiufei, Li Xinze et al. (2025-09)
    Saddle Stitching-Enabled Interfacial Toughening in 3D Printed Concrete
  5. Yang Xia, Wang Jiuyuan, Huang Han, Wu Gengchen et al. (2025-08)
    Anti-Washout Cement-Based Material for Under-Seawater 3D Concrete Printing:
    Design, Mechanical Properties and Microstructural Analysis
  6. Sun Hou-Qi, Zeng Jun-Jie, Zhuge Yan, Liu Yue (2025-06)
    3D Printed Functionally Graded Concrete Plates:
    Concept and Bending Tests
  7. Girskas Giedrius, Kligys Modestas (2025-06)
    3D Concrete Printing Review:
    Equipment, Materials, Mix Design, and Properties
  8. Hopkins Ben, Si Wen, Khan Mehran, McNally Ciaran (2025-06)
    Recent Advancements in Polypropylene Fiber-Reinforced 3D-Printed Concrete:
    Insights into Mix Ratios, Testing Procedures, and Material Behaviour
  9. Yang Shutong, Chen Zhengyuan, Lan Tian, Yang Tiange (2025-05)
    Quantitative Evaluation for Fracture Properties of 3D Printed Ultra-High-Performance Concrete Loaded in Different Directions
  10. Miri Zahra, Baaj Hassan, Polak Maria (2025-03)
    3D-Printed Concrete Bridges:
    Material, Design, Construction, and Reinforcement
  11. Yuan Hanquan, Dong Enlai, Jia Zijian, Jia Lutao et al. (2025-03)
    The Influence of Pore Structure and Fiber Orientation on Anisotropic Mechanical Property of 3D Printed Ultra-High-Performance Concrete
  12. Zeng Jun-Jie, Sun Hou-Qi, Deng Run-Bin, Yan Zitong et al. (2025-02)
    Bond Performance Between FRP-Bars and 3D-Printed High-Performance Concrete
  13. Sun Hou-Qi, Zeng Jun-Jie, Hong Guang-Yao, Zhuge Yan et al. (2025-01)
    3D Printed Functionally Graded Concrete Plates:
    Concept and Bending Behavior
  14. Li Ben, Li Kaihang, Lyu Xuetao, Zhao Canhao et al. (2024-12)
    Microscopic Mechanism and Predicting Calculation on Mechanical Properties of Basalt-Fiber-Modified 3D Printing Cement-Based Materials
  15. Zeng Jun-Jie, Hu Xianwen, Sun Hou-Qi, Liu Yue et al. (2024-10)
    Triaxial Compressive Behavior of 3D Printed PE-Fiber-Reinforced Ultra-High-Performance Concrete
  16. Dong Enlai, Jia Zijian, Jia Lutao, Rao Suduan et al. (2024-10)
    Modeling Fiber-Alignment in 3D Printed Ultra-High-Performance Concrete Based on Stereology-Theory
  17. Giwa Ilerioluwa, Kazemian Ali, Gopu Vijaya, Rupnow Tyson (2024-07)
    A Compressive Load-Bearing-Analysis of 3D Printed Circular Elements
  18. Xiao Jianzhuang, Liu Haoran, Ding Tao, Yu Kequan et al. (2024-02)
    Rebar-Free Concrete Construction:
    Concept, Opportunities and Challenges
  19. Şahin Hatice, Mardani Ali, Beytekin Hatice (2024-02)
    Effect of Silica-Fume Utilization on Structural Build-Up, Mechanical and Dimensional Stability Performance of Fiber-Reinforced 3D Printable Concrete
  20. Zeng Jun-Jie, Yan Zitong, Jiang Yuan, Li Pei-Lin (2024-02)
    3D Printing of FRP Grid and Bar Reinforcement for Reinforced Concrete Plates:
    Development and Effectiveness

BibTeX
@article{yan_zeng_zhug_liao.2023.CBoFC3PUHPCC,
  author            = "Zitong Yan and Jun-Jie Zeng and Yan Zhuge and Jinjing Liao and Jie-Kai Zhou and Guowei Ma",
  title             = "Compressive Behavior of FRP-Confined 3D Printed Ultra-High-Performance Concrete Cylinders",
  doi               = "10.1016/j.jobe.2023.108304",
  year              = "2023",
  journal           = "Journal of Building Engineering",
  pages             = "108304",
}
Formatted Citation

Z. Yan, J.-J. Zeng, Y. Zhuge, J. Liao, J.-K. Zhou and G. Ma, “Compressive Behavior of FRP-Confined 3D Printed Ultra-High-Performance Concrete Cylinders”, Journal of Building Engineering, p. 108304, 2023, doi: 10.1016/j.jobe.2023.108304.

Yan, Zitong, Jun-Jie Zeng, Yan Zhuge, Jinjing Liao, Jie-Kai Zhou, and Guowei Ma. “Compressive Behavior of FRP-Confined 3D Printed Ultra-High-Performance Concrete Cylinders”. Journal of Building Engineering, 2023, 108304. https://doi.org/10.1016/j.jobe.2023.108304.