Skip to content

#potential

Keywords by Co - Occurrence

  1. Bugarin Juan, Hajjar Ayla, Ssengooba Aloysious, Rangel Bárbara et al. (2026-01)
    Advancing Circular Bioeconomy and Sustainable Construction in the Iberian Peninsula:
    Addressing the Potential of Timber Residues for 3D Printing
  2. Diggs-McGee Brandy, Samouh Hamza, Garg Nishant (2025-11)
    Predicting Cementitious Set Times via Infrared Thermography:
    Potential Implications on Real-Time Quality Control During 3D Concrete Printing
  3. Paul Suvash, Lee Junghyun, Tay Yi, Lim Sean et al. (2025-10)
    Unlocking the Sustainable Potential of 3D Concrete Printing with Large Aggregates and Steam–CO2 Curing
  4. Zhang Chao, Ren Juanjuan, Zhang Shihao, Guo Yipu et al. (2025-07)
    Advanced Impact Resistance Design Through 3D-Printed Concrete Technology:
    Unleashing the Potential of Additive Manufacturing for Protective Structures
  5. Salaimanimagudam M., Jayaprakash Jaganathan (2025-04)
    Synergistic Potential of Topology Optimization and Lattice Structures in Concrete 3D Printed Beams
  6. Mansouri Abraham, Wolde Japi, Joda Akram (2025-03)
    The Potential of Sand as a Sustainable Infill for 3D Concrete Printed Building Walls
  7. Obermeier Nico, Richter Christiane, Wiese Felix, Stengel Thorsten (2025-01)
    Low Global-Warming-Potential and Resource-Efficient 3D Printing Cement-Based Concrete
  8. Richter Christiane, Maurer Christian, Jungwirth Jörg (2025-01)
    Reinforcement-Strategies for Additively Manufactured Concrete Elements:
    Exploring the Potential of Different Reinforcement-Materials for Selective Cement-Activation
  9. Navarrete Iván, Tošić Nikola, Hermida José, Saavedra Ruth et al. (2024-12)
    3D Printed Concrete as a Source of Recycled Aggregates:
    Potential for Multi-Recycling and CO2 Sequestration
  10. Dias José, Brandão Filipe, Castro André, Félix Maria (2024-11)
    Designing Tomorrow's Coral Reefs:
    3DCP Potential in Innovative Artificial Coral-Reefs-Systems Development
  11. Carvalho João, Figueiredo Bruno, Cruz Paulo (2024-11)
    Ceramic AM and Beyond:
    The Potential of Hybrid Construction Systems
  12. Jin Peng, Hasany Masoud, Kohestanian Mohammad, Mehrali Mehdi (2024-10)
    Micro/Nano Additives in 3D Printing Concrete:
    Opportunities, Challenges, and Potential Outlook in Construction Applications
  13. Madrid Javier, Ortega Guillermo, Olsson Nils, Tenorio Ríos José (2024-10)
    3D Constructing:
    Exploring the Potential of 3D Concrete and Clay Printing with Generative Design for Architectural Innovation
  14. 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
  15. Dias José, Brandão Filipe, Figueiredo Bruno, Cruz Paulo (2024-09)
    The Potential of Natural Fiber-Reinforcement in 3D Printed Concrete:
    A Review
  16. Thiel Charlotte, Hechtl Christian, Gehlen Christoph, Kränkel Thomas (2024-09)
    Sustainability Potential of Additive Manufactured Concrete Structures:
    Studies on the Life Cycle Assessment and Circularity of an Extruded Exterior Wall
  17. Lim Sean, Tay Yi, Amr Issam, Fadhel Bandar et al. (2024-07)
    Carbon Sequestration with 3D Concrete Printing:
    Potentials and Challenges
  18. Skibicki Szymon, Federowicz Karol, Hoffmann Marcin, Chougan Mehdi et al. (2024-05)
    Potential of Reusing 3D Printed Concrete (3DPC) Fine Recycled Aggregates as a Strategy Towards Decreasing Cement Content in 3DPC
  19. Zhang Yi, Ren Qiang, Dai Xiaodi, Tao Yaxin et al. (2024-03)
    A Potential Active Rheology-Control Approach for 3D Printable Cement-Based Materials:
    Coupling of Temperature and Viscosity-Modifiers
  20. Souza Eduarda, Ribeiro Borges Paulo, Stengel Thorsten, Nematollahi Behzad et al. (2024-03)
    3D Printed Sustainable Low-Cost Materials for Construction of Affordable Social Housing in Brazil:
    Potential, Challenges, and Research Needs
  21. Perales-Santillan M., Díaz-Aguilera Jorge, Mendoza-Rangel Jose (2024-02)
    Evaluation of the Rheological Behavior for Alkaline-Activated Cements of Metakaolin and Limestone for Its Potential Application in 3D Printing
  22. Yang Min, Li Chao, Liu Hao, Huo Longfei et al. (2024-02)
    Exploring the Potential for Carrying Capacity and Reusability of 3D Printed Concrete Bridges:
    Construction, Dismantlement, and Reconstruction of a Box Arch Bridge
  23. Jesus Manuel, Teixeira João, Alves Jorge, Pessoa Ana Sofia et al. (2023-10)
    Potential Use of Sugarcane-Bagasse-Ash in Cementitious Mortars for 3D Printing
  24. Tay Yi, Lim Sean, Phua Seng, Tan Ming et al. (2023-10)
    Exploring Carbon-Sequestration-Potential Through 3D Concrete Printing
  25. Kumar Lalit, Panda Biranchi, Muthu Nelson (2023-10)
    A Simple Potential Energy Formulation for 3D Concrete Printed Structures Considering the Shear Effects in the Build-Direction
  26. Hass Lauri, Nefs Karsten, Bos Freek, Salet Theo (2023-10)
    Application Potential of Combining Strain-Hardening Cementitious Composites and Helical Reinforcement for 3D Concrete Printed Structures:
    Case Study of a Spiral Staircase
  27. Zohrabyan Vahan, Zöller Raphael, Gradic Simon, Braml Thomas (2023-06)
    Potential of 3D Printed Steel Fiber Reinforced Concrete Components for the Protection of Critical Infrastructure:
    Impact and Free-Fall Tests
  28. Bhushan Jindal Bharat, Jangra Parveen (2023-05)
    3D Printed Concrete:
    A Comprehensive Review of Raw Material’s Properties, Synthesis, Performance, and Potential Field Applications
  29. Simedru Alexandru, Becze Anca, Cadar Oana, Scurtu Daniela et al. (2023-04)
    Structural Characterization of Several Cement-Based Materials Containing Chemical Additives with Potential Application in Additive Manufacturing
  30. Noaimat Yazeed, Chougan Mehdi, Kheetan Mazen, Mandhari Othman et al. (2023-04)
    3D Printing of Limestone-Calcined-Clay-Cement:
    A Review of Its Potential Implementation in the Construction-Industry
  31. Tamimi Adil, Alqamish Habib, Khaldoune Ahlam, Alhaidary Haidar et al. (2023-03)
    Framework of 3D Concrete Printing Potential and Challenges
  32. Jesus Manuel, Guimarães Ana, Rangel Bárbara, Alves Jorge (2023-02)
    The Potential of 3D Printing in Building Pathology:
    Rehabilitation of Cultural Heritage
  33. Rehman Atta, Melesse Birru, Kim Jung-Hoon (2023-02)
    Set-on-Demand 3D Concrete Printing Construction and Potential Outcome of Shotcrete-Accelerators on Its Hardened Properties
  34. Gangotra Ankita, Gado Emanuela, Lewis Joanna (2023-02)
    3D Printing Has Untapped Potential for Climate Mitigation in the Cement Sector
  35. Baghdadi Abtin, Ledderose Lukas, Ameri Shaghayegh, Kloft Harald (2023-02)
    Experimental and Numerical Assessments of New Concrete Dry Connections Concerning Potentials of Robotic CNC Manufacturing Technique
  36. Baghdadi Abtin, Heristchian Mahmoud, Ledderose Lukas, Kloft Harald (2023-01)
    Experimental and Numerical Assessments of New Concrete Dry Connections Concerning Potentials of the Robotic Subtractive Manufacturing Technique
  37. Wang Dingyi, Zhang Tingting, Guo Xudong, Ling Dayi et al. (2022-10)
    The Potential of 3D Printing in Facilitating Carbon Neutrality
  38. Khan Shoukat, Koç Muammer (2022-10)
    Numerical Modelling and Simulation for Extrusion-Based 3D Concrete Printing:
    The Underlying Physics, Potential, and Challenges
  39. Singh Amardeep, Chen Zhiyuan, Duan Zhenhua, Li Lei (2022-07)
    Utilization Potential of Steel-Fibers in 3D Printed Functionally Graded Cementitious Composite:
    An Experimental Approach
  40. Rodriguez Fabian, Lopez Cristian, Wang Yu, Olek Jan et al. (2022-06)
    Evaluation of Durability of 3D Printed Cementitious Materials for Potential Applications in Structures Exposed to Marine Environments
  41. Roussel Nicolas, Buswell Richard, Ducoulombier Nicolas, Ivanova Irina et al. (2022-06)
    Assessing the Fresh Properties of Printable Cement-Based Materials:
    High-Potential Tests for Quality-Control
  42. Kazadi Billy, Yao Liang, Wang Li (2022-04)
    In-Process Reinforcement Method for 3D Concrete Printing:
    Status, Potentials and Challenges
  43. Klein Lee, Holleyn Florian, Zimmer Sinje, Krause Olaf (2021-11)
    3DK Competence Center Investigates the Potentials of Contour Crafting
  44. Caron Jean-François, Demont Léo, Ducoulombier Nicolas, Mesnil Romain (2021-06)
    3D Printing of Mortar with Continuous Fibers:
    Principle, Properties and Potential for Application
  45. Salman Nazar, Ma Guowei, Ijaz Nauman, Wang Li (2021-04)
    Importance and Potential of Cellulosic Materials and Derivatives in Extrusion-Based 3D Concrete Printing:
    Prospects and Challenges
  46. Li Chenshu, Zhou Xiaoyan, Liu Xingyu (2021-04)
    Integrating the Bio-Digital Aesthetic Value and Architecture Potential of Rapid-Liquid-Printed-Concrete 3D Printing Technology
  47. Scheurer Martin, Dittel Gözdem, Gries Thomas (2020-07)
    Potential for the Integration of Continuous-Fiber-Based Reinforcements in Digital Concrete Production
  48. Lee Minu, Mata-Falcón Jaime, Popescu Mariana, Block Philippe et al. (2020-07)
    Potential Approaches for Reinforcing Complex Concrete Structures with Integrated Flexible Formwork
  49. He Yawen, Zhang Yamei, Zhang Chao, Zhou Hongyu (2020-05)
    Energy-Saving-Potential of 3D Printed Concrete Building with Integrated Living Wall
  50. Gradeci Klodian, Labonnote Nathalie (2019-11)
    On the Potential of Integrating Building Information Modelling for the Additive Manufacturing of Concrete Structures
  51. Sanguinetti Paola, Almazam Khaled, Humaidan Omar, Colistra Joe et al. (2019-09)
    Evaluating the Potential of High-Performance Concrete 3D Printed Affordable Zero Energy Homes
  52. Hamidi Fatemeh, Aslani Farhad (2019-05)
    Additive Manufacturing of Cementitious Composites:
    Materials, Methods, Potentials, and Challenge
  53. Falliano Devid, Gugliandolo Ernesto, Domenico Dario, Ricciardi Giuseppe (2018-09)
    Experimental Investigation on the Mechanical Strength and Thermal Conductivity of Extrudable Foamed Concrete and Preliminary Views on Its Potential Application in 3D Printed Multilayer Insulating Panels
  54. Pfändler Patrick, Wangler Timothy, Mata-Falcón Jaime, Flatt Robert et al. (2018-09)
    Potentials of Steel-Fibers for Mesh Mould Elements
  55. Mata-Falcón Jaime, Bischof Patrick, Kaufmann Walter (2018-09)
    Exploiting the Potential of Digital Fabrication for Sustainable and Economic Concrete Structures
  56. Schutter Geert, Lesage Karel, Mechtcherine Viktor, Nerella Venkatesh et al. (2018-08)
    Vision of 3D Printing with Concrete:
    Technical, Economic and Environmental Potentials
  57. Schwartz Joseph (2018-07)
    Graphic Statics and Their Potential for Digital Design and Fabrication with Concrete
  58. Panda Biranchi, Tay Yi, Paul Suvash, Tan Ming (2018-05)
    Current Challenges and Future Potential of 3D Concrete Printing
  59. 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
  60. Coenders Jeroen, Mathot Maarten, Martens Pascal, Bos Freek et al. (2017-12)
    Optimizing 3D Concrete Printing:
    Exploring Potentials and Limitations of Materials and Production
  61. Richardson Victoria (2017-10)
    3D Printing Becomes Concrete:
    Exploring the Structural Potential of Concrete 3D Printing
  62. Marijnissen Marjolein, Zee Aant (2017-09)
    3D Concrete Printing in Architecture:
    A Research on the Potential Benefits of 3D Concrete Printing in Architecture
  63. Loveridge Russell, Coray Tanja (2017-04)
    Robots on Construction Sites:
    The Potential and Challenges of On-Site Digital Fabrication
  64. 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
  65. Bos Freek, Wolfs Robert, Ahmed Zeeshan, Salet Theo (2016-08)
    Additive Manufacturing of Concrete in Construction:
    Potentials and Challenges of 3D Concrete Printing