Skip to content

Material, Process, and Design Optimization of Local Earthen Soil Reinforced with Natural Fiber Waste and Nanoclay for 3DP of Functional Structures (2025-07)

10.1016/j.jobe.2025.113502

 Yousaf Arslan,  Khan Shoukat,  Koç Muammer
Journal Article - Journal of Building Engineering, No. 113502

Abstract

The construction industry urgently needs sustainable, locally sourced materials with enhanced performance and compatibility for 3D printing (3DP). Earthen soil, though abundant and eco-friendly, often lacks the rheological and mechanical properties necessary for optimum extrusion and buildability. This study develops a 3D printable composite using Qatari earthen soil, bio-waste coconut fibers (CF), and nanoclay (NC), aiming to overcome these limitations. Twelve different material compositions were evaluated to optimize flowability, structural build-up, and mechanical strength. Among these, Mix 7, containing 6% CF and 0.2% NC, demonstrated optimal performance, achieving 80% flow retention after 60 minutes, dynamic yield stress of 3213.76 Pa, and plastic viscosity of 64.63 Pa·s. It also exhibited the highest compressive and flexural strengths (12.43 MPa and 2.30 MPa in molded samples; 11.20 MPa and 2.00 MPa in 3DP samples). In contrast, mixtures with higher NC or fiber content, such as Mix 12, experienced brittleness, poor flowability, and structural failures due to fiber misalignment and particle aggregation. Using a design of experiment (DOE) approach, key printing parameters, specifically a layer height of 2.5 mm, printing speed of 30 mm/s, and extrusion multiplier of 2.0, were optimized to enable fabrication of free-form, acoustically functional wall elements via a knitting-concrete approach. Although the optimized parameters improved print quality and reduced cracking, curved regions still exhibited stress-induced failures, indicating a need for further geometrical refinement. This study proposes a material–process framework for sustainable 3DP using locally available resources, reinforcing the synergy between mix design, printing parameters, and functional performance.

28 References

  1. Alhumayani Hashem, Gomaa Mohamed, Soebarto Veronica, Jabi Wassim (2020-06)
    Environmental Assessment of Large-Scale 3D Printing in Construction:
    A Comparative Study between Cob and Concrete
  2. Arunothayan Arun, Nematollahi Behzad, Khayat Kamal, Ramesh Akilesh et al. (2022-11)
    Rheological Characterization of Ultra-High-Performance Concrete for 3D Printing
  3. Baigarina Akerke, Shehab Essam, Ali Md. (2023-02)
    Construction 3D Printing:
    A Critical Review and Future Research-Directions
  4. Bos Freek, Wolfs Robert, Ahmed Zeeshan, Salet Theo (2016-08)
    Additive Manufacturing of Concrete in Construction:
    Potentials and Challenges of 3D Concrete Printing
  5. Chougan Mehdi, Ghaffar Seyed, Jahanzat Mohammad, Albar Abdulrahman et al. (2020-04)
    The Influence of Nano-Additives in Strengthening Mechanical Performance of 3D Printed Multi-Binder Geopolymer Composites
  6. Curth Alexander, Alvarez Eduardo, Sass Lawrence, Norford Leslie et al. (2024-11)
    Additive Energy:
    3D Printing Thermally Performative Building Elements with Low-Carbon Earthen Materials
  7. Fan Dingqiang, Zhu Jinyun, Fan Mengxin, Lu Jianxian et al. (2023-04)
    Intelligent Design and Manufacturing of Ultra-High-Performance Concrete:
    A Review
  8. Gomaa Mohamed, Jabi Wassim, Soebarto Veronica, Xie Yi (2022-01)
    Digital Manufacturing for Earth Construction:
    A Critical Review
  9. Kaushik Sandipan, Sonebi Mohammed, Amato Giuseppina, Perrot Arnaud et al. (2022-02)
    Influence of Nano-Clay on the Fresh and Rheological Behavior of 3D Printing Mortar
  10. Khan Shoukat, Jassim Muhammad, İlcan Hüseyin, Şahin Oğuzhan et al. (2023-04)
    3D Printing of Circular Materials:
    Comparative Environmental Analysis of Materials and Construction Techniques
  11. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Mix-Design and Fresh Properties for High-Performance Printing Concrete
  12. Li Leo, Xiao Bofeng, Fang Z., Xiong Z. et al. (2020-11)
    Feasibility of Glass-Basalt Fiber-Reinforced Seawater Coral Sand Mortar for 3D Printing
  13. Ma Guowei, Li Zhijian, Wang Li (2017-12)
    Printable Properties of Cementitious Material Containing Copper-Tailings for Extrusion-Based 3D Printing
  14. Motamedi Mahan, Mesnil Romain, Tang Anh-Minh, Pereira Jean-Michel et al. (2024-11)
    Structural Build-Up of 3D Printed Earth by Drying
  15. Paolini Alexander, Kollmannsberger Stefan, Rank Ernst (2019-10)
    Additive Manufacturing in Construction:
    A Review on Processes, Applications, and Digital Planning Methods
  16. Perrot Arnaud, Jacquet Yohan, Caron Jean-François, Mesnil Romain et al. (2024-08)
    Snapshot on 3D Printing with Alternative Binders and Materials:
    Earth, Geopolymers, Gypsum and Low-Carbon Concrete
  17. Rahman Mahfuzur, Rawat Sanket, Yang Chunhui, Mahil Ahmed et al. (2024-05)
    A Comprehensive Review on Fresh and Rheological Properties of 3D Printable Cementitious Composites
  18. Roussel Nicolas (2018-05)
    Rheological Requirements for Printable Concretes
  19. Soda Prabhath, Dwivedi Ashutosh, Sahana C., Gupta Souradeep (2024-03)
    Development of 3D Printable Stabilized Earth-Based Construction Materials Using Excavated Soil:
    Evaluation of Fresh and Hardened Properties
  20. Suiker Akke (2018-01)
    Mechanical Performance of Wall Structures in 3D Printing Processes:
    Theory, Design Tools and Experiments
  21. Tabassum Toiba, Ahmad Mir Ajaz (2023-08)
    A Review of 3D Printing Technology:
    The Future of Sustainable Construction
  22. Tay Yi, Qian Ye, Tan Ming (2019-05)
    Printability-Region for 3D Concrete Printing Using Slump- and Slump-Flow-Test
  23. Westerlind Helena, Vargas José (2020-07)
    Knitting Concrete
  24. Wolfs Robert, Bos Freek, Salet Theo (2018-02)
    Early-Age Mechanical Behaviour of 3D Printed Concrete:
    Numerical Modelling and Experimental Testing
  25. Wolfs Robert, Suiker Akke (2019-06)
    Structural Failure During Extrusion-Based 3D Printing Processes
  26. Yin Yunchao, Huang Jian, Wang Tiezhu, Yang Rong et al. (2023-09)
    Effect of Hydroxypropyl-Methylcellulose on Rheology and Printability of the First Printed Layer of Cement Activated Slag-Based 3D Printing Concrete
  27. Zhang Jingchuan, Wang Jialiang, Dong Sufen, Yu Xun et al. (2019-07)
    A Review of the Current Progress and Application of 3D Printed Concrete
  28. Zhu Wenxuan, Liu Chao, Zhang Yu, Zhang Yunsheng et al. (2025-05)
    Rheological Performance Regulation and Material Optimization of Manufactured Sand Concrete in 3D Printing

1 Citations

  1. Yousaf Arslan, Rashid Ans, Koç Muammer (2025-09)
    Additive Manufacturing for Vernacular Architecture Using Local Earthen Soil and Bio-Waste Materials

BibTeX
@article{yous_khan_koc.2025.MPaDOoLESRwNFWaNf3oFS,
  author            = "Arslan Yousaf and Shoukat Alim Khan and Muammer Koç",
  title             = "Material, Process, and Design Optimization of Local Earthen Soil Reinforced with Natural Fiber Waste and Nanoclay for 3DP of Functional Structures",
  doi               = "10.1016/j.jobe.2025.113502",
  year              = "2025",
  journal           = "Journal of Building Engineering",
  pages             = "113502",
}
Formatted Citation

A. Yousaf, S. A. Khan and M. Koç, “Material, Process, and Design Optimization of Local Earthen Soil Reinforced with Natural Fiber Waste and Nanoclay for 3DP of Functional Structures”, Journal of Building Engineering, p. 113502, 2025, doi: 10.1016/j.jobe.2025.113502.

Yousaf, Arslan, Shoukat Alim Khan, and Muammer Koç. “Material, Process, and Design Optimization of Local Earthen Soil Reinforced with Natural Fiber Waste and Nanoclay for 3DP of Functional Structures”. Journal of Building Engineering, 2025, 113502. https://doi.org/10.1016/j.jobe.2025.113502.