Optimal Rate of Printing of 3D Printed Concrete Columns and Walls to Avoid Buckling (2020-09)¶
10.1088/1757-899x/936/1/012053
Phadnis Kedar, , Menon Devdas
Journal Article - IOP Conference Series: Materials Science and Engineering, Vol. 936, Iss. 1
Abstract
Extrusion based construction of concrete structures has been identified as one of the alternative construction technologies which reduces the construction costs, delays in construction and the material consumption. The most attractive feature of 3D printed constructions is the ease of developing intricate forms and shapes (which otherwise require skilled manpower). Since this is a relatively new technology, not much research has been done with regard to its structural performance and stability. One of the major concerns is the possibility of buckling (under its self-weight) of the column or wall during the extrusion process. This sets a limitation of the acceptable height, thickness and rate of extrusion process. In this study simple ways (second order analysis using matrix methods) have been explored to determine the critical height and the optimal rate of extrusion. Matrix methods have inherent limitations due to the simplification adopted by ignoring the higher-order terms in Taylor’s series. The study uses the evolution of modulus of elasticity of concrete as proposed in literature. The analysis method has been validated using pertinent buckling tests reported in literature. Parameters such as modulus of elasticity and length are considered to determine the critical height to thickness of the wall and the optimal rate of extrusion. The problem is solved using the MATLAB software. This method requires minimal input from the user such as material properties, geometry and printing speed. The analysis method used in this study provides a useful design tool to estimate the limiting parameters of the structural walls and columns manufactured through the process of 3D printing.
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3 References
- Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
3D Printing Using Concrete-Extrusion:
A Roadmap for Research - Suiker Akke (2018-01)
Mechanical Performance of Wall Structures in 3D Printing Processes:
Theory, Design Tools and Experiments - Wolfs Robert, Suiker Akke (2019-06)
Structural Failure During Extrusion-Based 3D Printing Processes
3 Citations
- Mahdy Deena, Dara Seni, Abdelrahim Marwa (2025-06)
Evaluating Structure Stability of Self-Supporting 3D Printed Earth-Based Cantilevers Using Robotic ARM - Hassan Amer, Alomayri Thamer, Noaman Mohammed, Zhang Chunwei (2025-01)
3D Printed Concrete for Sustainable Construction:
A Review of Mechanical Properties and Environmental Impact - Duarte Gonçalo, Brown Nathan, Memari Ali, Duarte José (2021-07)
Learning from Historical Structures under Compression for Concrete 3D Printing Construction
BibTeX
@article{phad_shar_meno.2020.ORoPo3PCCaWtAB,
author = "Kedar P. Phadnis and Najeeb M. Shariff and Devdas Menon",
title = "Optimal Rate of Printing of 3D Printed Concrete Columns and Walls to Avoid Buckling",
doi = "10.1088/1757-899x/936/1/012053",
year = "2020",
journal = "IOP Conference Series: Materials Science and Engineering",
volume = "936",
number = "1",
}
Formatted Citation
K. P. Phadnis, N. M. Shariff and D. Menon, “Optimal Rate of Printing of 3D Printed Concrete Columns and Walls to Avoid Buckling”, IOP Conference Series: Materials Science and Engineering, vol. 936, no. 1, 2020, doi: 10.1088/1757-899x/936/1/012053.
Phadnis, Kedar P., Najeeb M. Shariff, and Devdas Menon. “Optimal Rate of Printing of 3D Printed Concrete Columns and Walls to Avoid Buckling”. IOP Conference Series: Materials Science and Engineering 936, no. 1 (2020). https://doi.org/10.1088/1757-899x/936/1/012053.