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Rheology of Fiber-Reinforced Mortar for 3D Printing Construction (2024-09)

Effect of Recycled Hybrid-Powder and Polyethylene-Fiber

10.1016/j.conbuildmat.2024.138126

Hou Shaodan, Wu Wenbo,  Duan Zhenhua, Zhou Shuai, Liang Chaofeng,  Ye Jun,  Xiao Jianzhuang
Journal Article - Construction and Building Materials, Vol. 447, No. 138126

Abstract

Green recycled hybrid powder (RHP) was proved to partly replace cement to prepare 3D printable mortar, which can recycle the demolition waste and reduce carbon emissions. In this study, different contents of RHP and polyethylene fiber (PE fiber) were selected to prepare 3D printable RHP mortar (3DPRM). The initial rheological parameters, including dynamic yield stress, plastic viscosity, static yield stress and thixotropy, as well as the rheological parameters varying with time were investigated. Besides, the early-age hydration of RHP paste was studied to reveal the influence mechanism on rheological properties. The experimental results show that the dynamic yield stress, plastic viscosity and thixotropy as well as their time-varying properties were all increased with RHP replacement. The static yield stress of 3DPRM with 30 % RHP had the most significant enhancement, which was 416.5 % increased after resting for 20 min, showing the great buildability enhancement potential of RHP. The addition of PE fiber (6 mm and 12 mm) increased the rheological parameters of 3DPRM, among which the increase ratio of initial dynamic yield stress was 60 %-195 %. However, the increase ratio with time for dynamic/static yield stress of 3DPRM with PE fiber was lower than that without PE fiber, indicating that PE fiber had great effect on the extrudability but small effect on buildability of 3DPRM. The energy intensity, carbon emission and cost of RHP were 65.27 %, 66.57 % and 12.5 % lower than that of cement, illustrating the sustainable contribution of RHP for construction industry. The results can be used to guide the printability design of 3D printable mortar containing RHP and PE fiber.

24 References

  1. Arunothayan Arun, Nematollahi Behzad, Ranade Ravi, Bong Shin et al. (2021-02)
    Fiber-Orientation Effects on Ultra-High-Performance Concrete Formed by 3D Printing
  2. Chen Yidong, Zhang Yunsheng, Pang Bo, Liu Zhiyong et al. (2021-05)
    Extrusion-Based 3D Printing Concrete with Coarse Aggregate:
    Printability and Direction-Dependent Mechanical Performance
  3. Ding Tao, Xiao Jianzhuang, Zou Shuai, Yu Jiangtao (2021-03)
    Flexural Properties of 3D Printed Fiber-Reinforced Concrete with Recycled Sand
  4. Han Xiaoyu, Yan Jiachuan, Liu Mingjian, Huo Liang et al. (2021-10)
    Experimental Study on Large-Scale 3D Printed Concrete Walls Under Axial Compression
  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. Hou Shaodan, Duan Zhenhua, Ye Taohua, Zou Shuai et al. (2023-06)
    Mechanical Properties and Pore-Structure of 3D Printed Mortar with Recycled Powder
  7. Hou Shaodan, Xiao Jianzhuang, Duan Zhenhua, Ma Guowei (2021-10)
    Fresh Properties of 3D Printed Mortar with Recycled Powder
  8. Ma Lei, Zhang Qing, Lombois-Burger Hélène, Jia Zijian et al. (2022-09)
    Pore-Structure, Internal Relative Humidity, and Fiber-Orientation of 3D Printed Concrete with Polypropylene-Fiber and Their Relation with Shrinkage
  9. Markin Slava, Mechtcherine Viktor (2023-03)
    Quantification of Plastic Shrinkage and Plastic Shrinkage Cracking of the 3D Printable Concretes Using 2D Digital Image Correlation
  10. Moelich Gerrit, Kruger Jacques, Combrinck Riaan (2020-08)
    Plastic Shrinkage Cracking in 3D Printed Concrete
  11. Mohan Manu, Rahul Attupurathu, Tittelboom Kim, Schutter Geert (2020-10)
    Rheological and Pumping Behavior of 3D Printable Cementitious Materials with Varying Aggregate Content
  12. Ngo Tuan, Kashani Alireza, Imbalzano Gabriele, Nguyen Quynh et al. (2018-02)
    Additive Manufacturing (3D Printing):
    A Review of Materials, Methods, Applications and Challenges
  13. Paolini Alexander, Kollmannsberger Stefan, Rank Ernst (2019-10)
    Additive Manufacturing in Construction:
    A Review on Processes, Applications, and Digital Planning Methods
  14. Roussel Nicolas (2018-05)
    Rheological Requirements for Printable Concretes
  15. Shahmirzadi Mohsen, Gholampour Aliakbar, Kashani Alireza, Ngo Tuan (2021-09)
    Shrinkage Behavior of Cementitious 3D Printing Materials:
    Effect of Temperature and Relative Humidity
  16. Soltan Daniel, Li Victor (2018-03)
    A Self-Reinforced Cementitious Composite for Building-Scale 3D Printing
  17. Tay Yi, Qian Ye, Tan Ming (2019-05)
    Printability-Region for 3D Concrete Printing Using Slump- and Slump-Flow-Test
  18. Tran Mien, Cu Yen, Le Chau (2021-10)
    Rheology and Shrinkage of Concrete Using Polypropylene-Fiber for 3D Concrete Printing
  19. Xiao Jianzhuang, Han Nv, Zhang Lihai, Zou Shuai (2021-05)
    Mechanical and Microstructural Evolution of 3D Printed Concrete with Polyethylene-Fiber and Recycled Sand at Elevated Temperatures
  20. Ye Junhong, Cui Can, Yu Jiangtao, Yu Kequan et al. (2021-01)
    Fresh and Anisotropic-Mechanical Properties of 3D Printable Ultra-High-Ductile Concrete with Crumb-Rubber
  21. Zhang Chao, Nerella Venkatesh, Krishna Anurag, Wang Shen et al. (2021-06)
    Mix-Design Concepts for 3D Printable Concrete:
    A Review
  22. Zhang Hanghua, Xiao Jianzhuang (2021-08)
    Plastic Shrinkage and Cracking of 3D Printed Mortar with Recycled Sand
  23. Zhang Yu, Zhang Yunsheng, Qian Rusheng, Liu Guojian et al. (2022-09)
    Influence of Steel-Fiber on the Water-Absorption of 3D Printed Concrete
  24. Zhou Yiyi, Jiang Dan, Sharma Rahul, Xie Yi et al. (2022-11)
    Enhancement of 3D Printed Cementitious Composite by Short Fibers:
    A Review

6 Citations

  1. Liu Xuelin, Kong Jiafeng, Chen Yidong, Wang Liang et al. (2025-12)
    Rheology and Printability Control of Low-Carbon 3D-Printed Cementitious Materials via Circular Use of Recycled Concrete Powder
  2. Medeiros Fernanda, Anjos Marcos, Maia José, Dias Leonardo et al. (2025-08)
    Effect of Sisal Fibers on the Behavior of 3D-Printed Cementitious Mixtures Exposed to High Temperatures
  3. Ravichandran Darssni, Prem Prabhat, Bhaskara Gollapalli, Maheswaran Srinivasan et al. (2025-07)
    Time-Dependent Properties of 3D Printable Plain and Fibered High Strength Concrete Incorporating Copper Slag as an Alternate Fine Aggregate
  4. Khare Karan, Khan Subim, Lal Dhirajkumar, Sonawane Pavankumar et al. (2025-07)
    Design and Development of a Nozzle Assembly for 3D Concrete Printing Applications
  5. Nassrullah Ghaith, Ali Mohd, Rub Rashid, Cho Cung-Suk et al. (2025-03)
    Optimizing Cement-Based Material Formulation for 3D Printing:
    Integrating Carbon Nanotubes and Silica Fume
  6. Nasr Ahmed, Duan Zhenhua, Singh Amardeep, Deng Qi et al. (2025-02)
    Fresh Properties and Rheological Behavior of 3D-Printed Cementitious Composites Incorporating Recycled PVC and Nylon Fibers:
    An Experimental Approach

BibTeX
@article{hou_wu_duan_zhou.2024.RoFRMf3PC,
  author            = "Shaodan Hou and Wenbo Wu and Zhenhua Duan and Shuai Zhou and Chaofeng Liang and Jun Ye and Jianzhuang Xiao",
  title             = "Rheology of Fiber-Reinforced Mortar for 3D Printing Construction: Effect of Recycled Hybrid-Powder and Polyethylene-Fiber",
  doi               = "10.1016/j.conbuildmat.2024.138126",
  year              = "2024",
  journal           = "Construction and Building Materials",
  volume            = "447",
  pages             = "138126",
}
Formatted Citation

S. Hou, “Rheology of Fiber-Reinforced Mortar for 3D Printing Construction: Effect of Recycled Hybrid-Powder and Polyethylene-Fiber”, Construction and Building Materials, vol. 447, p. 138126, 2024, doi: 10.1016/j.conbuildmat.2024.138126.

Hou, Shaodan, Wenbo Wu, Zhenhua Duan, Shuai Zhou, Chaofeng Liang, Jun Ye, and Jianzhuang Xiao. “Rheology of Fiber-Reinforced Mortar for 3D Printing Construction: Effect of Recycled Hybrid-Powder and Polyethylene-Fiber”. Construction and Building Materials 447 (2024): 138126. https://doi.org/10.1016/j.conbuildmat.2024.138126.