Skip to content

Optimizing 3D Printed Concrete Structures Using Topology Optimization (2017-06)

10.1007/978-3-319-59471-2_37

Martens Pascal, Mathot Maarten,  Bos Freek, Coenders Jeroen
Contribution - High Tech Concrete, pp. 301-309

Abstract

Additive manufacturing and 3D printing are rapidly developing digital fabrication techniques (Lu et al. 2015). After the first steps in small scale printing of metals (Frazier 2014) and plastics (Gibson et al. 2014) have been made, research from various groups around the world is now also focusing on large scale printing in concrete (Lim et al. 2012) and making this technology more suitable for the construction scale. The potential of using this technology is that it will be possible to create complex and/or customised concrete designs with the expectation that the costs will be low and the construction speeds will be high. Additionally, this new technology will provide opportunities to create more efficient structures. Structures can already be optimised in the early stages of the design for weight and structural performance, but the resulting optimised structures are often difficult to manufacture due to the resulting geometry of the design. Additive manufacturing can address this issue without high costs for moulds and labour. This paper will present a novel methodology to include material performance and manufacturing constraints of 3D printed concrete in design optimisation processes. The study examines the possibility to optimise concrete structures in the design phase. In order to save material and thus create more sustainable and more cost efficient structures, a topology optimisation method has been created specifically for 3D printed concrete. Traditional topology optimisation methods consider isotropic and linear elastic material and will not necessarily produce realisable and reliable optimised structures. In the algorithm presented constraints of the printing process and material properties from physical testing of this layered material have been considered in the optimisation. By adopting this methodology more realistic and feasible optimal concrete structures can be designed.

4 References

  1. Buswell Richard, Soar Rupert, Gibb Alistar, Thorpe Tony (2006-06)
    Freeform Construction:
    Mega-Scale Rapid Manufacturing for Construction
  2. Khoshnevis Behrokh (2003-11)
    Automated Construction by Contour Crafting:
    Related Robotics and Information Technologies
  3. Lim Sungwoo, Buswell Richard, Le Thanh, Austin Simon et al. (2011-07)
    Developments in Construction-Scale Additive Manufacturing Processes
  4. Pegna Joseph (1997-02)
    Exploratory Investigation of Solid Freeform Construction

34 Citations

  1. Liao Minmao, Sun Xiao, Chen Zhaohui (2026-01)
    Simultaneous Topology and Path Optimization for 3D Concrete Printing Based on Discrete Frame Structures
  2. Najm-Eddine Asmae, Abouelmajd Mohamed, Najm-Eddine Youssef, Erritali Ilham et al. (2025-11)
    Topological Optimization in 3D Concrete Printing Structures:
    A Review
  3. Jamjala Siva, Thulasirangan Lakshmidevi Manivannan, Reddy K., Kafle Bidur et al. (2025-10)
    A Critical Review on Synergistic Integration of Nanomaterials in 3D-Printed Concrete:
    Rheology to Microstructure and Eco-Functionality
  4. Shukla Bishnu, Bharti Gaurav, Parashar Bhupender, Sharma Pushpendra et al. (2025-09)
    Variables Influencing the Performance of 3D Concrete Printing for Sustainable Construction:
    Current Status and Future Prospects
  5. İlerisoy Zeynep, Takva Çağatay, Top Semahat, Gökgöz Berru et al. (2025-08)
    The Effectiveness of 3D Concrete Printing Technology in Architectural Design:
    Different Corner-Wall Combinations in 3D Printed Elements and Geometric Form Configurations in Residential Buildings
  6. Patel Abhishek, Raphael Benny (2025-07)
    Reducing Carbon Emissions in 3D Printed RCC Slabs
  7. Takva Çağatay, Top Semahat, Gökgöz Berru, Gebel Şeyma et al. (2024-11)
    Applicability of 3D Concrete Printing Technology in Building Construction with Different Architectural Design Decisions in Housing
  8. Hasani Alireza, Dorafshan Sattar (2024-06)
    Transforming Construction?:
    Evaluation of the State of Structural 3D Concrete Printing in Research and Practice
  9. 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
  10. Patel Abhishek, Raphael Benny (2024-04)
    Robotic 3D Printing of Structural Slabs Using Polyethylene Waste as Filler to Reduce Carbon Footprint
  11. Sedghi Reza, Rashidi Kourosh, Hojati Maryam (2024-01)
    Large-Scale 3D Wall Printing:
    From Concept to Reality
  12. Peralta Abadi Patricia, Ahmad Muhammad, Smarsly Kay (2023-11)
    Printing-Information-Modeling for Additive Manufacturing of Concrete Structures
  13. Bhusal Shiva, Sedghi Reza, Hojati Maryam (2023-11)
    Evaluating the Printability and Rheological and Mechanical Properties of 3D Printed Earthen Mixes for Carbon-Neutral Buildings
  14. Yin Xunzhi, Guo Chong, Sun Bo, Chen Honggang et al. (2023-09)
    The State of the Art in Digital Construction of Clay Buildings:
    Reviews of Existing Practices and Recommendations for Future Development
  15. Mogra Mihir, Asaf Ofer, Sprecher Aaron, Amir Oded (2023-08)
    Design-Optimization of 3D Printed Concrete Elements Considering Buildability
  16. Salah Husam, Mutalib Azrul, Kaish Amrul, Syamsir Agusril et al. (2023-07)
    Development of Ultra-High-Performance Silica-Fume-Based Mortar Incorporating Graphene-Nano-Platelets for 3D Concrete Printing Application
  17. Pfleger Marc-Patrick, Geyer Sebastian, Hölzl Christian, Vill Markus (2023-06)
    Investigations to Improve the Carbon Footprint of Thin Walled Concrete Structures by 3D Printing Prefabricated Elements
  18. Yang Wenwei, Wang Li, Ma Guowei, Feng Peng (2023-06)
    An Integrated Method of Topological-Optimization and Path-Design for 3D Concrete Printing
  19. Poudelet Louison, Molina Miguel, Calvo Laura, Cardona Roger et al. (2023-01)
    Comparison Between Mono- and Bi-Component Extruders in Concrete Additive Manufacturing
  20. Raphael Benny, Senthilnathan Shanmugaraj, Patel Abhishek, Bhat Saqib (2023-01)
    A Review of Concrete 3D Printed Structural Members
  21. Senthilnathan Shanmugaraj, Raphael Benny (2022-11)
    Using Computer-Vision for Monitoring the Quality of 3D Printed Concrete Structures
  22. Bi Minghao, Tran Jonathan, Xia Lingwei, Ma Guowei et al. (2022-06)
    Topology-Optimization for 3D Concrete Printing with Various Manufacturing-Constraints
  23. Falliano Devid, Restuccia Luciana, Ferro Giuseppe (2022-06)
    Biochar Addition for 3DCP:
    A Preliminary Study
  24. Tay Yi, Lim Jian, Li Mingyang, Tan Ming (2022-03)
    Creating Functionally Graded Concrete Materials with Varying 3D Printing Parameters
  25. Guamán-Rivera Robert, Martínez-Rocamora Alejandro, García-Alvarado Rodrigo, Muñoz-Sanguinetti Claudia et al. (2022-02)
    Recent Developments and Challenges of 3D Printed Construction:
    A Review of Research Fronts
  26. Liu Junli, Nguyen Vuong, Panda Biranchi, Fox Kate et al. (2022-02)
    Additive Manufacturing of Sustainable Construction Materials and Form-Finding Structures:
    A Review on Recent Progresses
  27. Asprone Domenico, Menna Costantino, Bos Freek, Mata-Falcón Jaime et al. (2022-01)
    Structural Design and Testing of Digitally Manufactured Concrete Structures
  28. Heever Marchant, Bester Frederick, Kruger Jacques, Zijl Gideon (2021-12)
    Numerical Modelling-Strategies for Reinforced 3D Concrete Printed Elements
  29. Bhattacherjee Shantanu, Basavaraj Anusha, Rahul Attupurathu, Santhanam Manu et al. (2021-06)
    Sustainable Materials for 3D Concrete Printing
  30. Schuldt Steven, Jagoda Jeneé, Hoisington Andrew, Delorit Justin (2021-03)
    A Systematic Review and Analysis of the Viability of 3D Printed Construction in Remote Environments
  31. Kruger Jacques, Zeranka Stephan, Zijl Gideon (2020-04)
    A Rheology-Based Quasi-Static Shape-Retention-Model for Digitally Fabricated Concrete
  32. Khan Mohammad, Sanchez Florence, Zhou Hongyu (2020-04)
    3D Printing of Concrete:
    Beyond Horizons
  33. Hamidi Fatemeh, Aslani Farhad (2019-05)
    Additive Manufacturing of Cementitious Composites:
    Materials, Methods, Potentials, and Challenge
  34. Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
    3D Printing Using Concrete-Extrusion:
    A Roadmap for Research

BibTeX
@inproceedings{mart_math_bos_coen.2017.O3PCSUTO,
  author            = "Pascal Martens and Maarten Mathot and Freek Paul Bos and Jeroen Coenders",
  title             = "Optimizing 3D Printed Concrete Structures Using Topology Optimization",
  doi               = "10.1007/978-3-319-59471-2_37",
  year              = "2017",
  pages             = "301--309",
  booktitle         = "High Tech Concrete: Where Technology and Engineering Meet",
  editor            = "Dirk Arend Hordijk and Mladena Luković",
}
Formatted Citation

P. Martens, M. Mathot, F. P. Bos and J. Coenders, “Optimizing 3D Printed Concrete Structures Using Topology Optimization”, in High Tech Concrete: Where Technology and Engineering Meet, 2017, pp. 301–309. doi: 10.1007/978-3-319-59471-2_37.

Martens, Pascal, Maarten Mathot, Freek Paul Bos, and Jeroen Coenders. “Optimizing 3D Printed Concrete Structures Using Topology Optimization”. In High Tech Concrete: Where Technology and Engineering Meet, edited by Dirk Arend Hordijk and Mladena Luković, 301–9, 2017. https://doi.org/10.1007/978-3-319-59471-2_37.