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Applications, Performance, Challenges and Current Progress of 3D Concrete Printing Technologies as the Future of Sustainable Construction (2022-04)

A State of the Art Review

10.1016/j.matpr.2022.03.619

Rollakanti Chiranjeevi, Prasad C.
Journal Article - Materials Today: Proceedings, Vol. 65, pp. 995-1000

Abstract

The construction industry is moving closer to 3D printing in concrete for the manufacture of architectural or building components. Construction Industry is expected to drastically modify current processing methods and perhaps lead to disruptive technologies for instance 3D concrete printing (3DCP), resulting in significant variations in the construction industry. Around the world, the construction industry and research initiatives are concentrating on automated construction technologies. There have been several technologies for 3DCP of concrete elements developed, and their use in building projects is increasing. 3DP’s growth isn’t confined to Earth; it’s also gaining traction as a means of constructing space habitats. 3DCP allows for freeform building without the need for costly formwork, which has several advantages over the traditional method of pouring concrete into a formwork. In recent years, several 3DCP technologies have been created. Techniques and procedures that have been tested include on-site and off-site manufacturing of building components employing industrial robots, gantry systems, and tethered autonomous vehicles. This article presents the current state-of-the-art in the subject of3D printing of buildings and construction components. The purpose of this research is to describe the technical, socioeconomic, and environmental components of3DCP of concrete structures in order to provide a comprehensive overview of the 3DCP technology, applications, challenges, and future research and market opportunities in the construction sector. This research focuses mostly on current breakthroughs in 3D concrete printing, as well as other research and development projects in this subject, notably its use in alien habitats. There are several advantages to using this strategy, including cost and time savings, decreased pollutants, and a reduction in accidents and fatalities on construction sites. Despite the various benefits and prospects, the results raise certain concerns, owing to the technology’s existing limitations. According to this comprehensive review, researchers should examine the challenges such as on-site fabrication, large scale manufacturing process and limitations of 3D concrete printing further in order to increase mechanical performance, durability, and sustainability, as well as create appropriate standard criteria for printing structures.

15 References

  1. Buswell Richard, Soar Rupert, Gibb Alistar, Thorpe Tony (2006-06)
    Freeform Construction:
    Mega-Scale Rapid Manufacturing for Construction
  2. Cesaretti Giovanni, Dini Enrico, Kestelier Xavier, Colla Valentina et al. (2013-08)
    Building Components for an Outpost on the Lunar Soil by Means of a Novel 3D Printing Technology
  3. Chen Yuning, Jia Lutao, Liu Chao, Zhang Zedi et al. (2022-01)
    Mechanical Anisotropy Evolution of 3D Printed Alkali-Activated Materials with Different GGBFS-FA Combinations
  4. Gosselin Clément, Duballet Romain, Roux Philippe, Gaudillière-Jami Nadja et al. (2016-03)
    Large-Scale 3D Printing of Ultra-High-Performance Concrete:
    A New Processing Route for Architects and Builders
  5. Hack Norman, Lauer Willi, Langenberg Silke, Gramazio Fabio et al. (2013-09)
    Overcoming Repetition:
    Robotic Fabrication Processes at a Large-Scale
  6. Labonnote Nathalie, Rønnquist Anders, Manum Bendik, Rüther Petra (2016-09)
    Additive Construction:
    State of the Art, Challenges and Opportunities
  7. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Hardened Properties of High-Performance Printing Concrete
  8. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Mix-Design and Fresh Properties for High-Performance Printing Concrete
  9. Lim Sungwoo, Buswell Richard, Le Thanh, Austin Simon et al. (2011-07)
    Developments in Construction-Scale Additive Manufacturing Processes
  10. Lloret-Fritschi Ena, Shahab Amir, Linus Mettler, Flatt Robert et al. (2014-03)
    Complex Concrete Structures:
    Merging Existing Casting Techniques with Digital Fabrication
  11. Panda Biranchi, Ruan Shaoqin, Unluer Cise, Tan Ming (2018-11)
    Improving the 3D Printability of High-Volume Fly-Ash Mixtures via the Use of Nano-Attapulgite-Clay
  12. Plessis Anton, Babafemi Adewumi, Paul Suvash, Panda Biranchi et al. (2020-12)
    Biomimicry for 3D Concrete Printing:
    A Review and Perspective
  13. Ting Guan, Quah Tan, Lim Jian, Tay Yi et al. (2022-01)
    Extrudable Region Parametrical Study of 3D Printable Concrete Using Recycled-Glass Concrete
  14. Wangler Timothy, Lloret-Fritschi Ena, Reiter Lex, Hack Norman et al. (2016-10)
    Digital Concrete:
    Opportunities and Challenges
  15. Wu Peng, Wang Jun, Wang Xiangyu (2016-04)
    A Critical Review of the Use of 3D Printing in the Construction Industry

37 Citations

  1. Reis Rui, Aroso Francisca, Brandão Filipe, Camões Aires et al. (2026-01)
    A Systematic Review on the Durability of 3D-Printed Cementitious Materials:
    Insights and Research Challenges
  2. Okangba Stanley, Ngcobo Ntebo, Mahachi Jeffrey (2025-12)
    Bridging Innovation and Governance:
    A UTAUT-Based Mixed-Method Study of 3D Concrete Printing Technology Acceptance in South Africa
  3. Khoury Eliane, Cheikh Khadija, Schutter Geert, Cazacliu Bogdan et al. (2025-11)
    Using Vacuum Mixing for 3D Printing of Mortars Made with Recycled Sand
  4. Mesoudy Mouad, Foulki Rida, Amegouz Driss (2025-10)
    3D Concrete Printing:
    Optimizing the Design of Interlocking 3D Printed Concrete Blocks for Fast and Sustainable Construction
  5. Liu Han, Sousa Israel, Laflamme Simon, Doyle Shelby et al. (2025-09)
    Embedment of 3D Printed Self-Sensing Composites for Smart Cementitious Components
  6. Maroszek Marcin, Hager Izabela, Mróz Katarzyna, Sitarz Mateusz et al. (2025-08)
    Anisotropy of Mechanical Properties of 3D-Printed Materials:
    Influence of Application Time of Subsequent Layers
  7. Jalil Siti Nur Natasha Abdul, Rizal Alias Ahmad, Alias Aizat (2025-06)
    Challenges and Strategies in Implementing 3D Concrete Printing (3DCP) Technology in Malaysia:
    Materials and Design Codes
  8. Cai Lixiong, Chen Feida, Xie Dingkun, Ye Keming (2025-05)
    Time-Varying Work Performance of Cementitious 3D Printing Mortar:
    Effect of SAC, H-PC and HPMC
  9. Deng Yongjie, Li Nan, Zhong Jianjun, Liang Yun et al. (2025-04)
    Ultrafast-Setting Magnesium Phosphate Cement Prepared from Low-Burned Magnesium Oxide for Mixed Stirring Extrusion Function Integrated 3D Printing Applications
  10. Yuan Yong, Sheng Ruyi, Yao Xupeng, Pichler Bernhard et al. (2025-03)
    A Three-Step Development Strategy for 3D Printable Concrete Containing Coarse Aggregates
  11. Minde Pravin, Patil Jagruti (2025-03)
    A Comprehensive Review of Factors Affecting 3D Printing Technology Adaptation in the Indian Construction Sector
  12. Şahin Hatice, Kaya Yahya, Akgümüş Fatih, Mardani Naz et al. (2025-03)
    Degradation of Mechanical Properties of 3D Fiber Reinforced Printed Concrete Mixtures Exposed to Elevated Temperatures
  13. Cui Weijiu, Liu Wenliang, Guo Ruyi, Da Wan et al. (2025-02)
    Geometrical Quality Inspection in 3D Concrete Printing Using AI-Assisted Computer Vision
  14. Hassan Amer, Alomayri Thamer, Noaman Mohammed, Zhang Chunwei (2025-01)
    3D Printed Concrete for Sustainable Construction:
    A Review of Mechanical Properties and Environmental Impact
  15. Wu Mushuang, Wang Zixiao, Chen Yuxuan, Zhu Mengyu et al. (2024-11)
    Effect of Steel-Slag on Rheological and Mechanical Properties of Sulfoaluminate-Cement-Based Sustainable 3D Printing Concrete
  16. Zhao Wanting, Zhao Yu, Zhu Lingli, Guan Xuemao (2024-10)
    Preparation of 3D Printed Concrete from Solid Waste:
    Study of the Relationship Between Steel-Slag Characteristics and Early Performance in 3D Printing
  17. Shen Kaige, Ding Tao, Cai Chen, Xiao Jianzhuang et al. (2024-09)
    Feasibility-Analysis of 3D Printed Concrete with Sludge-Incineration-Slag:
    Mechanical Properties and Environmental Impacts
  18. Shivendra Bandoorvaragerahalli, Sharath Chandra Sathvik, Singh Atul, Kumar Rakesh et al. (2024-09)
    A Path Towards SDGs:
    Investigation of the Challenges in Adopting 3D Concrete Printing in India
  19. Khan Mehran, McNally Ciaran (2024-09)
    A Review of Developments in Low-Carbon 3D Printed Concrete in Europe:
    Steps Towards Sustainable Construction
  20. Yu Qian, Zuo Qinxin, Zhang Yamei, Pan Jinlong (2024-08)
    An Investigation on Enhancing the Bonding Properties of 3D Printed Concrete Permanent Formwork and Post-Casted Concrete
  21. Kladovasilakis Nikolaos, Pemas Sotirios, Pechlivani Eleftheria (2024-07)
    Computer-Aided Design of 3D Printed Clay-Based Composite Mortars Reinforced with Bio-Inspired Lattice Structures
  22. Parmigiani Silvia, Falliano Devid, Moro Sandro, Ferro Giuseppe et al. (2024-06)
    3D Printed Multi-Functional Foamed Concrete Building Components:
    Material-Properties, Component Design, and 3D Printing Application
  23. Balkhy Wassim, Valera Elias, Karmaoui Dorra, Lafhaj Zoubeir et al. (2024-06)
    Motives and Barriers for Offsite and Onsite Construction 3D Printing
  24. Tao Yaxin, Mohan Manu, Rahul Attupurathu, Schutter Geert et al. (2024-02)
    Hydration and Microstructure of Calcium-Sulfoaluminate-Portland-Cement Binder Systems for Set-on-Demand Applications
  25. Li Zihan, Liu Huanbao, Nie Ping, Cheng Xiang et al. (2023-12)
    Mechanical Properties of Concrete Reinforced with High-Performance Micro-Particles for 3D Concrete Printing
  26. Fiala Lukáš, Lin Wei-Ting, Hotěk Petr, Cheng An (2023-11)
    Feasibility Study of Developing Cementless Blended Materials as 3D Printable Materials
  27. Mohsen Mohamed, Diseet Malak, Aburumman Mervat, Taha Ramzi et al. (2023-09)
    3D Printed Clay Enhanced with Graphene-Nano-Platelets for Sustainable and Green Construction
  28. Núñez Varillas Christoper, Regalado Espinoza Marck, Gago Gamboa Angela (2023-07)
    3D Printing:
    An Opportunity for the Sustainable Development of Building Construction
  29. Fernández Fernando, Jarabo Rocío, Asensio Eloy, Guerrero Ana (2023-06)
    Natural Fibers for a 3D Printable Eco-ECC Material
  30. Shenawa Amaal, Karoti Poonam (2023-06)
    3D Printing in Construction, Mixture Characteristics, Strength, and Thermal Performance-Review
  31. Deng Qi, Zou Shuai, Xi Yonghui, Singh Amardeep (2023-06)
    Development and Characteristic of 3D Printable Mortar with Waste-Glass-Powder
  32. Chen Yidong, Zhang Yu, Liu Zhiyong, Zhang Yunsheng et al. (2023-04)
    3D Printed Concrete Permanent Formwork:
    Effect of Post-Cast Concrete Proportion on Interface Bonding
  33. Jesus Manuel, Guimarães Ana, Rangel Bárbara, Alves Jorge (2023-02)
    The Potential of 3D Printing in Building Pathology:
    Rehabilitation of Cultural Heritage
  34. Liu Chao, Wang Zhihui, Wu Yiwen, Liu Huawei et al. (2023-02)
    3D Printing Concrete with Recycled Sand:
    The Influence Mechanism of Extruded Pore-Defects on Constitutive Relationship
  35. Wang Yuxin, Aslani Farhad, Dyskin Arcady, Pasternak Elena (2023-01)
    Digital Twin Applications in 3D Concrete Printing
  36. Marczyk Joanna, Ziejewska Celina, Korniejenko Kinga, Łach Michał et al. (2022-09)
    Properties of 3D Printed Concrete-Geopolymer Hybrids Reinforced with Aramid Roving
  37. Ren Chuangnan, Hua Dongliang, Bai Yonghui, Wu Shuang et al. (2022-06)
    Preparation and 3D Printing Building Application of Sulfoaluminate-Cementitious-Material Using Industrial Solid-Waste

BibTeX
@article{roll_pras.2022.APCaCPo3CPTatFoSC,
  author            = "Chiranjeevi Rahul Rollakanti and C. Venkata Siva Rama Prasad",
  title             = "Applications, Performance, Challenges and Current Progress of 3D Concrete Printing Technologies as the Future of Sustainable Construction: A State of the Art Review",
  doi               = "10.1016/j.matpr.2022.03.619",
  year              = "2022",
  journal           = "Materials Today: Proceedings",
  volume            = "65",
  pages             = "995--1000",
}
Formatted Citation

C. R. Rollakanti and C. V. S. R. Prasad, “Applications, Performance, Challenges and Current Progress of 3D Concrete Printing Technologies as the Future of Sustainable Construction: A State of the Art Review”, Materials Today: Proceedings, vol. 65, pp. 995–1000, 2022, doi: 10.1016/j.matpr.2022.03.619.

Rollakanti, Chiranjeevi Rahul, and C. Venkata Siva Rama Prasad. “Applications, Performance, Challenges and Current Progress of 3D Concrete Printing Technologies as the Future of Sustainable Construction: A State of the Art Review”. Materials Today: Proceedings 65 (2022): 995–1000. https://doi.org/10.1016/j.matpr.2022.03.619.