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Environmental Footprint and Economics of a Full-Scale 3D Printed House (2021-10)

10.3390/su132111978

Abdalla Hadeer,  Fattah Kazi,  Abdallah Mohamed,  al Tamimi Adil
Journal Article - Sustainability, Vol. 13, Iss. 21, pp. 1-19

Abstract

3D printing, is a newly adopted technique in the construction sector with the aim to improve the economics and alleviate environmental impacts. This study assesses the eco-efficiency of 3D printing compared to conventional construction methods in large-scale structural fabrication. A single-storey 3D-printed house was selected in the United Arab Emirates to conduct the comparative assessment against traditional concrete construction. The life cycle assessment (LCA) framework is utilized to quantify the environmental loads of raw materials extraction and manufacturing, as well as energy consumption during construction and operation phases. The economics of the selected structural systems were investigated through life cycle costing analysis (LCCA), that included mainly the construction costs and energy savings. An eco-efficiency analysis was employed to aggregate the results of the LCA and LCCA into a single framework to aid in decision making by selecting the optimum and most eco-efficient alternative. The findings revealed that houses built using additive manufacturing and 3D printed materials were more environmentally favourable. The conventional construction method had higher impacts when compared to the 3D printing method with global warming potential of 1154.20 and 608.55 kg CO2 eq, non-carcinogenic toxicity 675.10 and 11.9 kg 1,4-DCB, and water consumption 233.35 and 183.95 m3, respectively. The 3D printed house was also found to be an economically viable option, with 78% reduction in the overall capital costs when compared to conventional construction methods. The combined environmental and economic results revealed that the overall process of the 3D-printed house had higher eco efficiency compared to concrete-based construction. The main results of the sensitivity analysis revealed that up to 90% of the environmental impacts in 3D printing mortars can be mitigated with decreasing cement ratios.

10 References

  1. Agustí-Juan Isolda, Habert Guillaume (2016-04)
    An Environmental Perspective on Digital Fabrication in Architecture and Construction
  2. Agustí-Juan Isolda, Habert Guillaume (2016-11)
    Environmental Design Guidelines for Digital Fabrication
  3. 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
  4. 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
  5. Han Yilong, Yang Zhihan, Ding Tao, Xiao Jianzhuang (2020-08)
    Environmental and Economic Assessment on 3D Printed Buildings with Recycled Concrete
  6. Kaszyńska Maria, Olczyk Norbert, Techman Mateusz, Skibicki Szymon et al. (2019-02)
    Thermal-Humidity Parameters of 3D Printed Wall
  7. Mohammad Malek, Masad Eyad, Ghamdi Sami (2020-12)
    3D Concrete Printing Sustainability:
    A Comparative Life Cycle Assessment of Four Construction Method Scenarios
  8. Nerella Venkatesh, Mechtcherine Viktor (2019-02)
    Studying the Printability of Fresh Concrete for Formwork-Free Concrete Onsite 3D Printing Technology (CONPrint3D)
  9. Tobi A., Omar S., Yehia Z., Al-Ojaili S. et al. (2018-03)
    Cost Viability of 3D Printed House in UK
  10. Wu Peng, Wang Jun, Wang Xiangyu (2016-04)
    A Critical Review of the Use of 3D Printing in the Construction Industry

58 Citations

  1. Gil-Lopez Tomas, Amirfiroozkoohi Alireza, Valiente López María, Verdu-Vazquez Maria (2026-01)
    The Impact of 3D Printing on Mortar Strength and Flexibility:
    A Comparative Analysis of Conventional and Additive Manufacturing Techniques
  2. Nguyen Nhat, Javan Kazem, Jordan Adam, Akbarnezhad Ali et al. (2026-01)
    Techno-Economic Analysis of 3D Printed Modular Housing:
    Productivity, Cost, and Environmental Assessment
  3. Iqbal Imtiaz, Kasim Tala, Besklubova Svetlana, Inqiad Waleed et al. (2025-12)
    Exploring Knowledge Domains and Future Research Directions in 3D Printed Concrete:
    A Bibliometric and Systematic Review
  4. Iqbal Imtiaz, Kasim Tala, Inqiad Waleed, Besklubova Svetlana et al. (2025-11)
    Effect of Metakaolin and Biochar Addition on the Performance of 3D Concrete Printing:
    A Meta-Analysis Approach
  5. Masri Abdullah, Vazquez Elaine, Haddad Assed, Najjar Mohammed (2025-10)
    Life Cycle Costing in 3D Printing:
    A Literature Review
  6. Varghese Renny, Rangel Bárbara, Maia Lino (2025-10)
    Strength, Structure, and Sustainability in 3D-Printed Concrete Using Different Types of Fiber Reinforcements
  7. Ye Htun Thet, Panuwatwanich Kriengsak, Tanapornraweekit Ganchai, Jongvisuttisun Passarin et al. (2025-10)
    Carbon Emission Assessment of 3D Printed Hybrid Modular Concrete Building:
    Work Breakdown Structure
  8. Zhou Juanlan, Shi Xiangwen, Zheng Hongrun, Jin Ruoyu et al. (2025-09)
    Investigating the Effects of Hybrid PVA/BF Fibers in Low-Carbon 3D Printed Concrete with Recycled Aggregates:
    Rheology, Strength, and Anisotropy
  9. Mahdy Deena, Sameh Hazem, Fekry Mayar (2025-09)
    Structural Stability of 3D-Printed Earthen Catenary Domes:
    Experimental and Analytical Insights
  10. Wang Yufei, Sun Junbo, Wang Xiangyu, Huang Bo et al. (2025-09)
    Environmental and Economic Evaluation of a Prefabricated 3D-Printed Structural Units Using Recycled Aggregates from Construction and Demolition Waste:
    A Case Study in China
  11. Ramirez Rodriguez Fatima, Ahmad Rafiq (2025-09)
    Sustainable Technology Advances for Additive Construction:
    A State-of-the-Art Review
  12. Raza Muhammad, Besklubova Svetlana, Kravchenko Ekaterina, Zhong Ray (2025-07)
    Economic Viability of 3D Concrete Printing:
    A Comparative Study with Traditional Construction Method
  13. Wijethunge Anjalee, Samarasinghe Don, Le An, Gajanayake Akvan et al. (2025-06)
    A Systematic Review on Sustainable 3D Concrete Printing:
    Opportunities and Challenges
  14. Placzek Gerrit, Dahlberg Maike, Thormählen Jan, Schwerdtner Patrick (2025-06)
    How Productive Is 3D Concrete Printing?:
    A Systematic Review
  15. 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
  16. Mahdy Deena, Dara Seni, Abdelrahim Marwa (2025-06)
    Evaluating Structure Stability of Self-Supporting 3D Printed Earth-Based Cantilevers Using Robotic ARM
  17. Shen Jianyu, Ye Taohua, Xiao Jianzhuang, Li Shuisheng (2025-04)
    Mechanical and Thermal Properties of 3D Printed Earth Concrete Solidified by Geopolymers:
    A Study of Utilizing Excavated Clay
  18. Berawi Mohammed, Sari Mustika, Bakri Helty, Miraj Perdana et al. (2025-04)
    3D Printing Technology for Precast Concrete:
    A Business Process Perspective from Indonesian Construction Sector
  19. Sangiorgio Valentino, Bianchi Iacopo, Forcellese Archimede (2025-02)
    Advancing Decarbonization Through 3D Printed Concrete Formworks:
    LIFE Cycle Analysis of Technologies, Materials, and Processes
  20. Arash Motalebi, Mohammad Aba, Golam Kabir (2025-01)
    Assessing the Environmental Impact of Building Houses in Remote Areas:
    3D Printing vs. Traditional Construction Techniques
  21. Nadi Mouad, Majdoubi Hicham, Haddaji Younesse, Bili Oumaima et al. (2025-01)
    Digital Fabrication Processes for Cementitious Materials Using Three-Dimensional 3D Printing Technologies
  22. Yabanigül Meryem, Özer Derya (2024-12)
    Exploring Architectural Units Through Robotic 3D Concrete Printing of Space-Filling Geometries
  23. Khan Mirza, Ahmed Aayzaz, Ali Tariq, Qureshi Muhammad et al. (2024-12)
    Comprehensive Review of 3D Printed Concrete, Life Cycle Assessment, AI and ML Models:
    Materials, Engineered Properties and Techniques for Additive Manufacturing
  24. Motalebi Arash, Khondoker Mohammad, Kabir Golam (2024-10)
    Sustainable Structures Unveiled:
    Navigating the Environmental Landscape of 3D Printing in Construction
  25. Adamtsevich Liubov, Pustovgar Andrey, Adamtsevich Aleksey (2024-10)
    Assessing the Prospects and Risks of Delivering Sustainable Urban Development Through 3D Concrete Printing Implementation
  26. Raza Muhammad, Zhong Ray (2024-10)
    Integration of Additive Manufacturing, Lean and Green Construction:
    A Conceptual Framework
  27. Heywood Kate, Nicholas Paul (2024-09)
    Design for and with 3DCP:
    An Integrated Early Design Stage Workflow
  28. Soto Rubio Mauricio, Mirza Muhammad, Kagdi Mustafa, Bisati Ahmad (2024-08)
    Examining the Role of Concrete 3D Printing for Housing Construction on Indigenous Reserves in Canada
  29. Alonso-Cañon Sara, Blanco-Fernandez Elena, Castro-Fresno Daniel, Yoris-Nobile Adrian et al. (2024-08)
    Comparison of Reinforcement-Fibers in 3D Printing Mortars Using Multi-Criteria Analysis
  30. Baghi Ali, Aminpour Nima, Memari Ali, Bilén Sven et al. (2024-07)
    3D Concrete Printing of Self-Supported Filaments via Entrained Cables:
    Constructing Formwork-Free Spanning Structures
  31. 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
  32. Kamra Juhi, Mani Ambica, Tripathi V. (2024-06)
    3D Printing:
    A Boon or a Bane for Sustainable Construction
  33. 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
  34. Besklubova Svetlana, Raza Muhammad, Zhong Ray, Skibniewski Mirosław (2024-06)
    3D Printing vs. Traditional Construction:
    Cost Comparisons from Design to Waste Disposal Stages
  35. Mantha Bharadwaj, Sati Ala, Hosny Fatma, Abdallah Mohamed et al. (2024-06)
    A Generic 3D Printing Life Cycle Assessment (LCA) Framework for AEC Applications
  36. Mustafa Azamat, Storch Florian, Rustem Kairov, Plashnik Paul et al. (2024-04)
    Compensation Manipulator for Concrete 3D Printing Based on the CONPrint3D
  37. Hassan Habibelrahman, Rodriguez-Ubinas Edwin, Tamimi Adil, Trepci Esra et al. (2024-04)
    Towards Innovative and Sustainable Buildings:
    A Comprehensive Review of 3D Printing in Construction
  38. Khan Mohammad, Dani Aflah, Lim James, Roy Krishanu (2024-04)
    Appraising the Feasibility of 3D Printing Construction in New Zealand Housing
  39. Lu Yue, Xiao Jianzhuang, Li Yan (2024-03)
    3D Printing Recycled Concrete Incorporating Plant-Fibers:
    A Comprehensive Review
  40. Bianchi Iacopo, Volpe Stelladriana, Fiorito Francesco, Forcellese Archimede et al. (2024-01)
    Life Cycle Assessment of Building Envelopes Manufactured Through Different 3D Printing Technologies
  41. Põldaru Mattias, Tammkõrv Karl, Tusik Tanel, Kiviste Mihkel et al. (2023-11)
    The Effect of Printing-Direction on the Strength Characteristics of a 3D Printed Concrete Wall-Section
  42. Zhao Zengfeng, Ji Chenyuan, Xiao Jianzhuang, Yao Lei et al. (2023-11)
    A Critical Review on Reducing the Environmental Impact of 3D Printing Concrete:
    Material-Preparation, Construction-Process and Structure-Level
  43. Motalebi Arash, Khondoker Mohammad, Kabir Golam (2023-08)
    A Systematic Review of Life Cycle Assessments of 3D Concrete Printing
  44. Bici Andjol, Yunitsyna Anna (2023-07)
    Analysis of 3D Printing Techniques for Building Construction:
    A Review
  45. Tu Haidong, Wei Zhenyun, Bahrami Alireza, Kahla Nabil et al. (2023-06)
    Recent Advancements and Future Trends in 3D Printing Concrete Using Waste-Materials
  46. Graser Konrad, Walzer Alexander, Hunhevicz Jens, Jähne René et al. (2023-06)
    Qualitative Technology Evaluation of Digital Fabrication with Concrete:
    Conceptual Framework and Scoreboard
  47. Heywood Kate, Nicholas Paul (2023-06)
    Sustainability and 3D Concrete Printing:
    Identifying a Need for a More Holistic Approach to Assessing Environmental Impacts
  48. Kokare Samruddha, Oliveira João, Godina Radu (2023-05)
    Life Cycle Assessment of Additive Manufacturing Processes:
    A Review
  49. Fernandez Letízia, Caldas Lucas, Mendoza Reales Oscar (2023-05)
    Environmental Evaluation of 3D Printed Concrete Walls Considering the Life Cycle Perspective in the Context of Social Housing
  50. Waqar Ahsan, Othman Idris, Pomares Juan (2023-02)
    Impact of 3D Printing on the Overall Project Success of Residential Construction Projects Using Structural Equation Modelling
  51. Gangotra Ankita, Gado Emanuela, Lewis Joanna (2023-02)
    3D Printing Has Untapped Potential for Climate Mitigation in the Cement Sector
  52. Peng Yiming, Unluer Cise (2022-12)
    Development of Alternative Cementitious Binders for 3D Printing Applications:
    A Critical Review of Progress, Advantages and Challenges
  53. Alonso-Cañon Sara, Blanco-Fernandez Elena, Castro-Fresno Daniel, Yoris-Nobile Adrian et al. (2022-11)
    Reinforcements in 3D Printing Concrete Structures
  54. Wang Dingyi, Zhang Tingting, Guo Xudong, Ling Dayi et al. (2022-10)
    The Potential of 3D Printing in Facilitating Carbon Neutrality
  55. Ibrahim Iman, Eltarabishi Fatma, Abdalla Hadeer, Abdallah Mohamed (2022-10)
    3D Printing in Sustainable Buildings:
    Systematic Review and Applications in the United Arab Emirates
  56. Ennab Lena, Dixit Manish, Birgisson Bjorn, Kumar Pranav (2022-04)
    Comparative Life Cycle Assessment of Large-Scale 3D Printing Utilizing Kaolinite-Based Calcium-Sulfoaluminate-Cement Concrete and Conventional Construction
  57. Tinoco Matheus, Mendonça Érica, Fernandez Letízia, Caldas Lucas et al. (2022-04)
    Life Cycle Assessment and Environmental Sustainability of Cementitious Materials for 3D Concrete Printing:
    A Systematic Literature Review
  58. Huang Shuyi, Xu Weiguo, Li Yuqian (2022-04)
    The Impacts of Fabrication Systems on 3D Concrete Printing Building Forms

BibTeX
@article{abda_fatt_abda_tami.2021.EFaEoaFS3PH,
  author            = "Hadeer Abdalla and Kazi Parvez Fattah and Mohamed Abdallah and Adil K. Al Tamimi",
  title             = "Environmental Footprint and Economics of a Full-Scale 3D Printed House",
  doi               = "10.3390/su132111978",
  year              = "2021",
  journal           = "Sustainability",
  volume            = "13",
  number            = "21",
  pages             = "1--19",
}
Formatted Citation

H. Abdalla, K. P. Fattah, M. Abdallah and A. K. A. Tamimi, “Environmental Footprint and Economics of a Full-Scale 3D Printed House”, Sustainability, vol. 13, no. 21, pp. 1–19, 2021, doi: 10.3390/su132111978.

Abdalla, Hadeer, Kazi Parvez Fattah, Mohamed Abdallah, and Adil K. Al Tamimi. “Environmental Footprint and Economics of a Full-Scale 3D Printed House”. Sustainability 13, no. 21 (2021): 1–19. https://doi.org/10.3390/su132111978.