A 3D Printing Platform for Design and Manufacturing of Multi-Functional Cementitious Construction Components and Its Validation for a Post-Tensioned Beam

被引:0
|
作者
Asaf, Ofer [1 ,2 ]
Bentur, Arnon [1 ,3 ]
Amir, Oded [1 ,3 ]
Larianovsky, Pavel [1 ]
Meyuhas, Ohad Yaacov [1 ,2 ]
Michli, Eliad [1 ,2 ]
Sprecher, Aaron [1 ,2 ]
机构
[1] Technion Israel Inst Technol, Natl Bldg Res Inst, Technion Adv Construction Ctr, IL-3200003 H_efa, Israel
[2] Technion Israel Inst Technol, Fac Architecture & Town Planning, IL-3200003 Hefa, Israel
[3] Technion Israel Inst Technol, Fac Civil & Environm Engn, IL-3200003 Haifa, Israel
关键词
3D printing; additive manufacturing; holistic approach; post-tensioned beam; cementitious materials; OF-THE-ART; CONCRETE; TECHNOLOGY; RHEOLOGY; BEHAVIOR;
D O I
10.3390/ma17184653
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Three-dimensional printing of cementitious materials for construction has been extensively investigated in recent years, with several demonstration projects successfully carried out. These efforts aim to leverage the printing process to achieve more efficient production of components compared to conventional concrete technologies. This includes both the process itself (eliminating the formwork stage) and the flexibility in producing complexly shaped elements. To maximize the potential of 3D printing in the construction industry, additional steps must be taken, grounded in a holistic view of the entire process. This involves integration of the production chain, including design, materials, and manufacturing of components, to create elements with optimal performance, encompassing structural, environmental, and architectural aspects. Such multi-functionality requires the viewing of 3D printing not just as a production technology but as a platform enabling the integration of all these components. To advance this approach, quantitative tools are developed to optimize the following three key components: material composition; manufacturing parameters to ensure buildability; and design tools to optimize multiple performance criteria, particularly structural and architectural shape. A demonstration component, namely a post-tensioned beam, featuring two multi-functional characteristics-structural and architectural-is designed, produced, and evaluated. The scientific concepts and research tools used to develop these quantitative design tools are multidisciplinary, including rheological characterization, control of the internal structure and composition of granular materials, simulation of the mechanical behavior of green material during printing, and the hardened properties of the components, all utilizing structural optimization to enhance performance.
引用
收藏
页数:28
相关论文
共 48 条
  • [31] Extrusion of uniform-diameter polyetheretherketone-magnesium phosphate bio-composite filaments for 3D printing of design-specific multi-functional implants
    Bokam, Vijay K. K.
    Sonaye, Surendrasingh Y. Y.
    Nagaraju, Phaniteja
    Naganaboyina, Harsha P. S.
    Sikder, Prabaha
    MATERIALS ADVANCES, 2023, 4 (14): : 2926 - 2939
  • [32] A hybrid additive manufacturing platform based on fused filament fabrication and direct ink writing techniques for multi-material 3D printing
    Cadiou, Thibaut
    Demoly, Frederic
    Gomes, Samuel
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2021, 114 (11-12): : 3551 - 3562
  • [33] A hybrid additive manufacturing platform based on fused filament fabrication and direct ink writing techniques for multi-material 3D printing
    Thibaut Cadiou
    Frédéric Demoly
    Samuel Gomes
    The International Journal of Advanced Manufacturing Technology, 2021, 114 : 3551 - 3562
  • [34] Mechanical and functional validation of a perfused, robot-assisted partial nephrectomy simulation platform using a combination of 3D printing and hydrogel casting
    Rachel Melnyk
    Bahie Ezzat
    Elizabeth Belfast
    Patrick Saba
    Shamroz Farooq
    Timothy Campbell
    Stephen McAleavey
    Mark Buckley
    Ahmed Ghazi
    World Journal of Urology, 2020, 38 : 1631 - 1641
  • [35] Multi-Resin Masked Stereolithography (MSLA) 3D Printing for Rapid and Inexpensive Prototyping of Microfluidic Chips with Integrated Functional Components
    Ahmed, Isteaque
    Sullivan, Katherine
    Priye, Aashish
    BIOSENSORS-BASEL, 2022, 12 (08):
  • [36] Multi-material additive manufacturing: A systematic review of design, properties, applications, challenges, and 3D printing of materials and cellular metamaterials
    Nazir, Aamer
    Gokcekaya, Ozkan
    Billah, Kazi Md Masum
    Ertugrul, Onur
    Jiang, Jingchao
    Sun, Jiayu
    Hussain, Sajjad
    MATERIALS & DESIGN, 2023, 226
  • [37] Correction to: Mechanical and functional validation of a perfused, robot-assisted partial nephrectomy simulation platform using a combination of 3D printing and hydrogel casting
    Rachel Melnyk
    Bahie Ezzat
    Elizabeth Belfast
    Patrick Saba
    Shamroz Farooq
    Timothy Campbell
    Stephen McAleavey
    Mark Buckley
    Ahmed Ghazi
    World Journal of Urology, 2020, 38 : 1643 - 1643
  • [38] 3D Printing for High Vacuum Applications Production and Test of Components as well as Recipients with functional Design(vol 32, pg 37, 2020)
    Wolf, Christian
    Prechtl, Martin
    Bauer, Rene
    Dinkel, Michael
    Beck, Fabian
    Franz, Leopold
    Neumeyer, Viktor
    VAKUUM IN FORSCHUNG UND PRAXIS, 2023, 35 (01)
  • [39] Revolutionising orthopaedic implants-a comprehensive review on metal 3D printing with materials, design strategies, manufacturing technologies, and post-process machining advancements
    Shaikh, Mustafiz
    Kahwash, Fadi
    Lu, Zhilun
    Alkhreisat, Mohammad
    Mohammad, Ashfaq
    Shyha, Islam
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2024, 134 (3-4): : 1043 - 1076
  • [40] Experimental Validation of Injection Molding Simulations of 3D Microparts and Microstructured Components Using Virtual Design of Experiments and Multi-Scale Modeling
    Loaldi, Dario
    Regi, Francesco
    Baruffi, Federico
    Calaon, Matteo
    Quagliotti, Danilo
    Zhang, Yang
    Tosello, Guido
    MICROMACHINES, 2020, 11 (06) : 1 - 17