Skip to content

Finite Element Modelling to Predict the Fire Performance of Bio-Inspired 3D Printed Concrete Wall Panels Exposed to Realistic Fire (2022-01)

10.3390/buildings12020111

Suntharalingam Thadshajini, Upasiri Irindu,  Nagaratnam Brabha,  Poologanathan Keerthan,  Gatheeshgar Perampalam,  Tsavdaridis Konstantinos, Nuwanthika Dilini
Journal Article - Buildings, Vol. 12, Iss. 2

Abstract

Large-scale additive manufacturing (AM), also known as 3D concrete printing, is becoming well-recognized and, therefore, has gained intensive research attention. However, this technology requires appropriate specifications and standard guidelines. Furthermore, the performance of printable concrete in elevated temperature circumstances has not yet been explored extensively. Hence, the authors believe that there is a demand for a set of standardized findings obtained with the support of experiments and numerical modelling of the fire performance of 3D-printed concrete structural elements. In general, fire experiments and simulations focus on ISO 834 standard fire. However, this may not simulate the real fire behaviour of 3D-printed concrete walls. With the aim of bridging this knowledge disparity, this article presents an analysis of the fire performance of 3D-printed concrete walls with biomimetic hollow cross sections exposed to realistic individual fire circumstances. The fire performance of the non-load-bearing 3D-printed concrete wall was identified by developing a suitable numerical heat transfer model. The legitimacy of the developed numerical model was proved by comparing the time–temperature changes with existing results derived from fire experiments on 3D-printed concrete walls. A parametric study of 96 numerical models was consequently performed and included different 3D-printed concrete wall configurations under four fire curves (standard, prolonged, rapid, and hydrocarbon fire). Moreover, 3D-printed concrete walls and mineral wool cavity infilled wall panels showed enhanced fire performance. Moreover, the cellular structures demonstrated superior insulation fire ratings compared to the other configurations.

29 References

  1. Adaloudis Max, Bonnin Roca Jaime (2021-05)
    Sustainability Tradeoffs in the Adoption of 3D Concrete Printing in the Construction Industry
  2. Alchaar Aktham, Tamimi Adil (2020-10)
    Mechanical Properties of 3D Printed Concrete in Hot Temperatures
  3. Cicione Antonio, Kruger Jacques, Walls Richard, Zijl Gideon (2020-05)
    An Experimental Study of the Behavior of 3D Printed Concrete at Elevated Temperatures
  4. Cicione Antonio, Mazolwana K., Kruger Jacques, Walls Richard et al. (2020-12)
    Effect of Transverse and Longitudinal Confinement on the Inter-Layer Bond in 3D Printed Concrete at Elevated Temperatures:
    An Experimental Study
  5. Delgado Camacho Daniel, Clayton Patricia, Brien William, Seepersad Carolyn et al. (2018-02)
    Applications of Additive Manufacturing in the Construction Industry:
    A Forward-Looking Review
  6. Furet Benoît, Poullain Philippe, Garnier Sébastien (2019-04)
    3D Printing for Construction Based on a Complex Wall of Polymer-Foam and Concrete
  7. Karpova Ekaterina, Skripkiūnas Gintautas, Sedova Anastasiia, Tsimbalyuk Yelyzaveta (2021-07)
    Additive Manufacturing of Concrete Wall-Structures
  8. Kaszyńska Maria, Olczyk Norbert, Techman Mateusz, Skibicki Szymon et al. (2019-02)
    Thermal-Humidity Parameters of 3D Printed Wall
  9. Khan Mohammad, Sanchez Florence, Zhou Hongyu (2020-04)
    3D Printing of Concrete:
    Beyond Horizons
  10. Luhar Salmabanu, Suntharalingam Thadshajini, Navaratnam Satheeskumar, Luhar Ismail et al. (2020-12)
    Sustainable and Renewable Bio-Based Natural Fibers and Its Application for 3D Printed Concrete:
    A Review
  11. Mahadevan Meera, Francis Ann, Thomas Albert (2020-08)
    A Simulation-Based Investigation of Sustainability Aspects of 3D Printed Structures
  12. Marais Hannelie, Christen Heidi, Cho Seung, Villiers Wibke et al. (2021-03)
    Computational Assessment of Thermal Performance of 3D Printed Concrete Wall Structures with Cavities
  13. Mechtcherine Viktor, Bos Freek, Perrot Arnaud, Silva Wilson et al. (2020-03)
    Extrusion-Based Additive Manufacturing with Cement-Based Materials:
    Production Steps, Processes, and Their Underlying Physics
  14. Menna Costantino, Mata-Falcón Jaime, Bos Freek, Vantyghem Gieljan et al. (2020-04)
    Opportunities and Challenges for Structural Engineering of Digitally Fabricated Concrete
  15. Moini Mohamadreza, Olek Jan, Youngblood Jeffrey, Magee Bryan et al. (2018-08)
    Additive Manufacturing and Performance of Architectured Cement-Based Materials
  16. Nguyen Vuong, Panda Biranchi, Zhang Guomin, Nguyen-Xuan Hung et al. (2021-01)
    Digital Design Computing and Modelling for 3D Concrete Printing
  17. Ooms Ticho, Vantyghem Gieljan, Coile Ruben, Corte Wouter (2020-12)
    A Parametric Modelling-Strategy for the Numerical Simulation of 3D Concrete Printing with Complex Geometries
  18. Paul Suvash, Zijl Gideon, Tan Ming, Gibson Ian (2018-05)
    A Review of 3D Concrete Printing Systems and Materials Properties:
    Current Status and Future Research Prospects
  19. Pessoa Ana Sofia, Guimarães Ana, Lucas Sandra, Simões Nuno (2021-02)
    3D Printing in the Construction Industry:
    A Systematic Review of the Thermal Performance in Buildings
  20. Plessis Anton, Babafemi Adewumi, Paul Suvash, Panda Biranchi et al. (2020-12)
    Biomimicry for 3D Concrete Printing:
    A Review and Perspective
  21. Sun Jingting, Xiao Jianzhuang, Li Zhengrong, Feng Xiwen (2021-03)
    Experimental Study on the Thermal Performance of a 3D Printed Concrete Prototype Building
  22. Suntharalingam Thadshajini, Gatheeshgar Perampalam, Upasiri Irindu, Poologanathan Keerthan et al. (2021-06)
    Fire Performance of Innovative 3D Printed Concrete Composite Wall Panels:
    A Numerical Study
  23. Suntharalingam Thadshajini, Gatheeshgar Perampalam, Upasiri Irindu, Poologanathan Keerthan et al. (2021-02)
    Numerical Study of Fire and Energy Performance of Innovative Lightweight 3D Printed Concrete Wall-Configurations in Modular Building System
  24. Suntharalingam Thadshajini, Upasiri Irindu, Gatheeshgar Perampalam, Poologanathan Keerthan et al. (2021-09)
    Energy Performance of 3D Printed Concrete Walls:
    A Numerical Study
  25. Suntharalingam Thadshajini, Upasiri Irindu, Gatheeshgar Perampalam, Poologanathan Keerthan et al. (2021-07)
    Fire-Resistance of 3D Printed Concrete Composite Wall Panels Exposed to Various Fire Scenarios
  26. Wang Li, Jiang Hailong, Li Zhijian, Ma Guowei (2020-02)
    Mechanical Behaviors of 3D Printed Lightweight Concrete Structure with Hollow Section
  27. Weng Yiwei, Li Mingyang, Liu Zhixin, Lao Wenxin et al. (2018-12)
    Printability and Fire Performance of a Developed 3D Printable Fiber-Reinforced Cementitious Composites under Elevated Temperatures
  28. 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
  29. Xiao Jianzhuang, Ji Guangchao, Zhang Yamei, Ma Guowei et al. (2021-06)
    Large-Scale 3D Printing Concrete Technology:
    Current Status and Future Opportunities

10 Citations

  1. Wang Jinjin, Li Shouzhen, Qiu Jin, Chen Cheng et al. (2025-12)
    Experimental Investigation on Thermal Performance of 3D Printed Concrete Elements Subjected to Radiant Heating
  2. Sifan Mohamed, Upasiri Irindu, Poologanathan Keerthan, Popo-Ola Sunday et al. (2025-12)
    Fire Performance and Design of LSF Wall Panels with 3D Printed Concrete and Steel Lipped Channel Sections
  3. Geng Renyu, Jiang Jinming, Du Pengcong, Zhang Huiliang et al. (2025-11)
    Multiscale Thermal Optimization of 3D-Printed Walls:
    Integrating Structure, Material, and Process with Fire-Thermal Synergy
  4. Sikora Paweł, Skibicki Szymon, Bielawski Jakub, Techman Mateusz et al. (2025-09)
    Elevated Temperature Response and Fire Resistance Considerations of 3D-Printed Concrete:
    Small- to Medium-Scale Wall Experiments
  5. Lin Xing-Tao, Xu Shuhao, Chen Xiangsheng (2025-08)
    Optimization of Building Structures Based on Additive Manufacturing:
    A Review
  6. Suphunsaeng Kantawich, Prasittisopin Lapyote, Pethrung Sirichai, Pansuk Withit (2025-03)
    Fire Performance Evaluation of 3D-Printed Concrete Walls:
    A Combined Full-Scale and Numerical Modeling Approach
  7. Kosson Michael, Brown Lesa, Thorne Garret, Sanchez Florence (2024-11)
    Influence of Internal Architecture and Ink Formulation on the Thermal Behavior of 3D Printed Cementitious Materials
  8. Tittelboom Kim, Mohan Dhanesh, Šavija Branko, Keita Emmanuel et al. (2024-08)
    On the Micro-and Meso-Structure and Durability of 3D Printed Concrete Elements
  9. Wang Jinjin, Chen Cheng, Chu Tianwei, Jiang Liming et al. (2024-07)
    Experimental Study and OpenSees Modelling for Thermal Response of 3D Printed Concrete Exposed to Fires
  10. Salaimanimagudam M., Jayaprakash Jaganathan (2022-11)
    Optimum Selection of Reinforcement, Assembly, and Formwork System for Digital Fabrication Technique in Construction Industry:
    A Critical Review

BibTeX
@article{sunt_upas_naga_pool.2022.FEMtPtFPoBI3PCWPEtRF,
  author            = "Thadshajini Suntharalingam and Irindu Upasiri and Brabha Nagaratnam and Keerthan Poologanathan and Perampalam Gatheeshgar and Konstantinos Daniel Tsavdaridis and Dilini Nuwanthika",
  title             = "Finite Element Modelling to Predict the Fire Performance of Bio-Inspired 3D Printed Concrete Wall Panels Exposed to Realistic Fire",
  doi               = "10.3390/buildings12020111",
  year              = "2022",
  journal           = "Buildings",
  volume            = "12",
  number            = "2",
}
Formatted Citation

T. Suntharalingam, “Finite Element Modelling to Predict the Fire Performance of Bio-Inspired 3D Printed Concrete Wall Panels Exposed to Realistic Fire”, Buildings, vol. 12, no. 2, 2022, doi: 10.3390/buildings12020111.

Suntharalingam, Thadshajini, Irindu Upasiri, Brabha Nagaratnam, Keerthan Poologanathan, Perampalam Gatheeshgar, Konstantinos Daniel Tsavdaridis, and Dilini Nuwanthika. “Finite Element Modelling to Predict the Fire Performance of Bio-Inspired 3D Printed Concrete Wall Panels Exposed to Realistic Fire”. Buildings 12, no. 2 (2022). https://doi.org/10.3390/buildings12020111.