Additive Manufacturing Through Digital Concrete by Extrusion- and Non-Extrusion-Method (2020-12)¶
10.1088/1755-1315/614/1/012069
Singh P., Sreerag K.
Journal Article - IOP Conference Series: Earth and Environmental Science, Vol. 614, Iss. 1
Abstract
The phase of construction industries is very weak to adapt new technologies. We faced plenty of problems related to our construction industries because of old conventional method. Digital Concreting (DC) is the techniques from Additive Manufacturing (AM), the concrete is laying like layers to build a whole structure. DC could to overcome the problems faced by conventional construction. Furthermore, the DC will open the windows that allow the new innovative technologies enter in to construction industries. Generally, the usage of concrete is more than enough so it leads to increase the waste in site and harmful to environment. In DC technique uses of the concrete is only for need and no excess use. The properties of concrete are different for printing compared to conventional method. In this paper, we discussed about the general view on DC, properties of concrete and the methods used to print.
¶
24 References
- Bos Freek, Wolfs Robert, Ahmed Zeeshan, Salet Theo (2016-08)
Additive Manufacturing of Concrete in Construction:
Potentials and Challenges of 3D Concrete Printing - Chen Mingxu, Li Laibo, Zheng Yan, Zhao Piqi et al. (2018-09)
Rheological and Mechanical Properties of Admixtures-Modified 3D Printing Sulphoaluminate Cementitious Materials - Duballet Romain, Baverel Olivier, Dirrenberger Justin (2017-08)
Classification of Building Systems for Concrete 3D Printing - Furet Benoît, Poullain Philippe, Garnier Sébastien (2019-04)
3D Printing for Construction Based on a Complex Wall of Polymer-Foam and Concrete - Ghaffar Seyed, Corker Jorge, Fan Mizi (2018-05)
Additive Manufacturing Technology and Its Implementation in Construction as an Eco-Innovative Solution - 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 - Hosseini Ehsan, Zakertabrizi Mohammad, Korayem Asghar, Xu Guanzhong (2019-03)
A Novel Method to Enhance the Inter-Layer Bonding of 3D Printing Concrete:
An Experimental and Computational Investigation - Lee Hojae, Kim Jang-Ho, Moon Jae-Heum, Kim Won-Woo et al. (2019-12)
Evaluation of the Mechanical Properties of a 3D Printed Mortar - Lim Jian, Weng Yiwei, Pham Quang-Cuong (2019-10)
3D Printing of Curved Concrete Surfaces Using Adaptable Membrane Formwork - Lowke Dirk, Dini Enrico, Perrot Arnaud, Weger Daniel et al. (2018-07)
Particle-Bed 3D Printing in Concrete Construction:
Possibilities and Challenges - Ma Guowei, Li Zhijian, Wang Li (2017-12)
Printable Properties of Cementitious Material Containing Copper-Tailings for Extrusion-Based 3D Printing - Malaeb Zeina, Sakka Fatima, Hamzeh Farook (2019-02)
3D Concrete Printing:
Machine Design, Mix Proportioning, and Mix Comparison Between Different Machine Setups - Nerella Venkatesh, Krause Martin, Mechtcherine Viktor (2019-11)
Direct Printing-Test for Buildability of 3D Printable Concrete Considering Economic Viability - Papachristoforou Michail, Mitsopoulos Vasilios, Stefanidou Maria (2018-10)
Evaluation of Workability Parameters in 3D Printing Concrete - Sanjayan Jay, Nematollahi Behzad (2019-02)
3D Concrete Printing for Construction Applications - Shakor Pshtiwan, Sanjayan Jay, Nazari Ali, Nejadi Shami (2017-02)
Modified 3D Printed Powder to Cement-Based Material and Mechanical Properties of Cement Scaffold Used in 3D Printing - Soltan Daniel, Li Victor (2018-03)
A Self-Reinforced Cementitious Composite for Building-Scale 3D Printing - Tay Yi, Qian Ye, Tan Ming (2019-05)
Printability-Region for 3D Concrete Printing Using Slump- and Slump-Flow-Test - Tay Yi, Ting Guan, Qian Ye, Panda Biranchi et al. (2018-07)
Time-Gap-Effect on Bond Strength of 3D Printed Concrete - Ting Guan, Tay Yi, Qian Ye, Tan Ming (2019-03)
Utilization of Recycled Glass for 3D Concrete Printing:
Rheological and Mechanical Properties - Weng Yiwei, Ruan Shaoqin, Li Mingyang, Mo Liwu et al. (2019-06)
Feasibility Study on Sustainable-Magnesium-Potassium-Phosphate Cement-Paste for 3D Printing - Zareiyan Babak, Khoshnevis Behrokh (2017-08)
Effects of Interlocking on Inter-Layer Adhesion and Strength of Structures in 3D Printing of Concrete - Zhang Yu, Zhang Yunsheng, Liu Guojian, Yang Yonggan et al. (2018-04)
Fresh Properties of a Novel 3D Printing Concrete Ink - Zuo Zibo, Gong Jian, Huang Yulin, Zhan Yijian et al. (2019-03)
Experimental Research on Transition from Scale 3D Printing to Full-Size Printing in Construction
0 Citations
BibTeX
@article{sing_sree.2020.AMTDCbEaNEM,
author = "P. Singh and K. S. Sreerag",
title = "Additive Manufacturing Through Digital Concrete by Extrusion- and Non-Extrusion-Method",
doi = "10.1088/1755-1315/614/1/012069",
year = "2020",
journal = "IOP Conference Series: Earth and Environmental Science",
volume = "614",
number = "1",
}
Formatted Citation
P. Singh and K. S. Sreerag, “Additive Manufacturing Through Digital Concrete by Extrusion- and Non-Extrusion-Method”, IOP Conference Series: Earth and Environmental Science, vol. 614, no. 1, 2020, doi: 10.1088/1755-1315/614/1/012069.
Singh, P., and K. S. Sreerag. “Additive Manufacturing Through Digital Concrete by Extrusion- and Non-Extrusion-Method”. IOP Conference Series: Earth and Environmental Science 614, no. 1 (2020). https://doi.org/10.1088/1755-1315/614/1/012069.