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Life Cycle Assessment of a Concrete 3D Printing Process (2022-11)

10.1007/s11367-022-02111-3

 Roux Charlotte, Kuzmenko Kateryna,  Roussel Nicolas,  Mesnil Romain, Féraille Adélaïde
Journal Article - The International Journal of Life Cycle Assessment

Abstract

3D printing has been put forward for its supposed environmental benefit, yet to be confirmed. This article describes an environmental assessment of a 3D printing process that represents one of the most commonly used technologies in the field. It then suggests a generic framework to evaluate the environmental impact of 3D concrete printing through a parametric model. The studied system is a 3D printing cell based on a 6-axis robotic arm assessed through a cradle-tocradle life cycle assessment. It provides data details for subparts of the 3D printing process allowing other researchers to compose and recombine those subparts to represent other 3D concrete printing processes and faster the inventory and ecodesign process of such technologies. As the concrete sector usually focuses on its global warming contribution, an analysis of relative importance of environmental categories was performed using both normalization/weighting and an endpoint evaluation. An uncertainty assessment based on the pedigree matrix allows to evaluate result confidence. The results show that the main contributors to the 3D printed building element are first the high requirement concrete and second the robotic system, mainly the electronic parts. A detailed uncertainty study has been conducted to evaluate error margins. The sensitivity study on the electricity mix also shows the relative low importance of the technology localization to assess its environmental balance. A first sketch of a generic framework to assess extrusion-based 3D printing in the construction sector is proposed. A detailed LCA is performed and highlights ways of improvement of the technology. Further research on similar technology and scale-up scenario is needed to consolidate the framework and is seen as main research perspectives of this work.

14 References

  1. Agustí-Juan Isolda, Habert Guillaume (2016-04)
    An Environmental Perspective on Digital Fabrication in Architecture and Construction
  2. Agustí-Juan Isolda, Müller Florian, Hack Norman, Wangler Timothy et al. (2017-04)
    Potential Benefits of Digital Fabrication for Complex Structures:
    Environmental Assessment of a Robotically Fabricated Concrete Wall
  3. 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
  4. Buswell Richard, Silva Wilson, Bos Freek, Schipper Roel et al. (2020-05)
    A Process Classification Framework for Defining and Describing Digital Fabrication with Concrete
  5. Duballet Romain, Baverel Olivier, Dirrenberger Justin (2017-08)
    Classification of Building Systems for Concrete 3D Printing
  6. Han Yilong, Yang Zhihan, Ding Tao, Xiao Jianzhuang (2020-08)
    Environmental and Economic Assessment on 3D Printed Buildings with Recycled Concrete
  7. Kuzmenko Kateryna, Ducoulombier Nicolas, Féraille Adélaïde, Roussel Nicolas (2022-05)
    Environmental Impact of Extrusion-Based Additive Manufacturing:
    Generic Model, Power-Measurements and Influence of Printing-Resolution
  8. Marchon Delphine, Kawashima Shiho, Bessaies-Bey Hela, Mantellato Sara et al. (2018-05)
    Hydration- and Rheology-Control of Concrete for Digital Fabrication:
    Potential Admixtures and Cement-Chemistry
  9. Muñoz Ivan, Madrid Javier, Muñiz Manuel, Uhart Maylis et al. (2021-01)
    Life Cycle Assessment of Integrated Additive-Subtractive Concrete 3D Printing
  10. Salet Theo, Ahmed Zeeshan, Bos Freek, Laagland Hans (2018-05)
    Design of a 3D Printed Concrete Bridge by Testing
  11. Schutter Geert, Lesage Karel, Mechtcherine Viktor, Nerella Venkatesh et al. (2018-08)
    Vision of 3D Printing with Concrete:
    Technical, Economic and Environmental Potentials
  12. Weng Yiwei, Li Mingyang, Ruan Shaoqin, Wong Teck et al. (2020-03)
    Comparative Economic, Environmental and Productivity-Assessment of a Concrete Bathroom Unit Fabricated Through 3D Printing and a Pre-Cast Approach
  13. Wolfs Robert, Salet Theo, Roussel Nicolas (2021-10)
    Filament-Geometry-Control in Extrusion-Based Additive Manufacturing of Concrete:
    The Good, the Bad and the Ugly
  14. Yao Yue, Hu Mingming, Maio Francesco, Cucurachi Stefano (2019-08)
    Life Cycle Assessment of 3D Printing Geopolymer Concrete:
    An Ex‐Ante Study

24 Citations

  1. Babajaniniashirvani Vida, Afsari Kereshmeh, McCoy Andrew (2025-12)
    Investigating Key Competencies for 3D Concrete Printing in Affordable Housing
  2. Gümrük Idil, Schröder Torsten, Wolfs Robert, Salet Theo (2025-11)
    3DCP-CI:
    Developing a Circularity Indicator for Assessing 3DConcrete Printed Architectural Designs
  3. Ataei Sarah, Jafari Amirhosein (2025-10)
    Comparative Environmental Impact Assessment of 3D Concrete Printing and Precast Techniques in Bridge Construction:
    A Case Study Analysis
  4. Xiao Yinan, Vandenberg Aileen, Lowke Dirk, Mai (née Dressler) Inka et al. (2025-08)
    Automated Robotic Assembly Planning of Space Trusses for Injection 3D Concrete Printing
  5. Du Shizhao, Kang Chunxia, Du Xiuli (2025-06)
    Fatigue Performance of 3D Printed Reusable Concrete Slabs for Temporary Pavements
  6. Mahdy Deena, Marais Eugene, Abdelrahim Marwa, Dubor Alexandre et al. (2025-06)
    Life Cycle Assessment of Earth-Based Residential Unit “TOVA”:
    A 3D Printed On-Site Load-Bearing Structure
  7. Mesnil Romain, Rosa Pedro, Demont Léo (2025-03)
    Thickness Optimisation in 3D Printed Concrete Structures
  8. Park Ji-seul, Jeong Seung-Su, Hong Seungkee, Lee Seohyung et al. (2025-02)
    Mechanical Modeling for Prediction of Structural Stability of Cylindrical Structures During 3D Concrete Printing
  9. Sangiorgio Valentino, Bianchi Iacopo, Forcellese Archimede (2025-02)
    Advancing Decarbonization Through 3D Printed Concrete Formworks:
    LIFE Cycle Analysis of Technologies, Materials, and Processes
  10. Kuzmenko Kateryna, Roux Charlotte, Féraille Adélaïde (2025-01)
    Environmental Impact of 3D Concrete Printing
  11. Habibi Alireza, Buswell Richard, Osmani Mohamed, Aziminezhad Mohamadmahdi (2024-11)
    Sustainability Principles in 3D Concrete Printing:
    Analysing Trends, Classifying Strategies, and Future Directions
  12. 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
  13. Thomsen Mette, Tamke Martin, Rossi Gabriella, Chiujdea Ruxandra-Stefania et al. (2024-11)
    Sustainable Construction:
    Additive Manufacturing in a Circular Design Framework
  14. Bono Victor, Ducoulombier Nicolas, Loulha Sarena, Mesnil Romain et al. (2024-11)
    Toward 3D Printable Low-Carbon Mortar:
    Method and Application
  15. Jin Willy, Roux Charlotte, Ouellet-Plamondon Claudiane, Caron Jean-François (2024-09)
    Life Cycle Assessment of Limestone-Calcined-Clay-Concrete:
    Potential for Low-Carbon 3D Printing
  16. Rodriguez Fabian, Foster Kyle, Fross Xavier, Schmidt Roty et al. (2024-09)
    Use of a Lignin-Based Admixture for Tailoring the Rheological Properties of Mortars for 3D Printing
  17. 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
  18. Jones Kathryn, Li Mo (2024-07)
    Life Cycle Assessment of Additively Manufactured Foundations for Ultratall Wind Turbine Towers
  19. Hanifa Mohamad, Daruari Harish, Figueiredo Bruno, Mendonça Paulo (2024-07)
    Embodied Carbon of Structural Earthen Composites with Natural Materials and Byproducts Suitable for Robotic 3D Printing
  20. Raza Muhammad, Besklubova Svetlana, Zhong Ray (2024-07)
    Economic Analysis of Offsite and Onsite 3D Construction Printing Techniques for Low-Story Buildings:
    A Comparative Value-Stream-Assessment
  21. Assunção Badan Julie, Chadha Kunaljit, Vasey Lauren, Brumaud Coralie et al. (2024-06)
    Contribution of Production Processes in Environmental Impact of Low-Carbon Materials Made by Additive Manufacturing
  22. Curth Alexander, Pearl Natalie, Castro-Salazar Angelica, Mueller Caitlin et al. (2024-03)
    3D Printing Earth:
    Local, Circular Material Processing, Fabrication Methods, and Life Cycle Assessment
  23. Bianchi Iacopo, Volpe Stelladriana, Fiorito Francesco, Forcellese Archimede et al. (2024-01)
    Life Cycle Assessment of Building Envelopes Manufactured Through Different 3D Printing Technologies
  24. Bono Victor, Ducoulombier Nicolas, Mesnil Romain, Caron Jean-François (2023-12)
    Methodology for Formulating Low-Carbon Printable Mortar Through Particles-Packing-Optimization

BibTeX
@article{roux_kuzm_rous_mesn.2022.LCAoaC3PP,
  author            = "Charlotte Roux and Kateryna Kuzmenko and Nicolas Roussel and Romain Mesnil and Adélaïde Féraille",
  title             = "Life Cycle Assessment of a Concrete 3D Printing Process",
  doi               = "10.1007/s11367-022-02111-3",
  year              = "2022",
  journal           = "The International Journal of Life Cycle Assessment",
}
Formatted Citation

C. Roux, K. Kuzmenko, N. Roussel, R. Mesnil and A. Féraille, “Life Cycle Assessment of a Concrete 3D Printing Process”, The International Journal of Life Cycle Assessment, 2022, doi: 10.1007/s11367-022-02111-3.

Roux, Charlotte, Kateryna Kuzmenko, Nicolas Roussel, Romain Mesnil, and Adélaïde Féraille. “Life Cycle Assessment of a Concrete 3D Printing Process”. The International Journal of Life Cycle Assessment, 2022. https://doi.org/10.1007/s11367-022-02111-3.