Mobile complex of equipment for 3D printing

Authors

DOI:

https://doi.org/10.26906/znp.2023.60.3179

Keywords:

additive manufacturing, 3D printing, robotic printers, concrete printing, concrete mixture, vibrator

Abstract

The research explores the possibility of using mobile 3D printing technologies in construction and manufacturing. It is noted that many equipment manufacturers are already utilizing 3D printing for constructing various objects, but one of the limitations has been the lack of mobility. However, new concepts and prototypes of mobile 3D printers are emerging, which allow for construction and manufacturing in different locations without the need for additional transportation equipment. The proposed design of a mobile 3D construction printer-complex, housed on a cargo semi-trailer, is suggested as a mobile and autonomous system for construction purposes.

References

Nazarenko I., Diachenko O., Pryhotskyi V. & Nesterenko M. (2021). Structural analysis of vibration platform for panel units forming and consideration of its utilizing options. Academic Journal. Industrial Machine Building, Civil Engineering. 1(56). 37-42

https://doi.org/10.26906/znp.2021.56.2505

Shatov S., Savitsky N. & Karpushin S. (2017). Generalization of innovative technologies for 3D printing of building objects for the development of start-ups. Construction. Materials Science. Engineering. Series: Creation of high-tech eco-complexes in Ukraine based on the concept of balanced (sustainable) development. 99. 194-200.

Alwi A., Karayiannis S., Starkey B.,

Gardner M., Reodique K., Varley Th. (2013). «Contrucktion». MegaScale 3D Printing, Group 1: Final Report. Faculty of Engineering and Physical Sciences University of Surrey. [Electronic resource]. - Access mode:

http://personal.ee.surrey.ac.uk/Personal/R.Webb/MDDP/2012/Report/3D%20Building%20Printer%20-%20Group%201.pdf

Lipson Н., Kurman M. (2013). Fabricated: The New World of 3D Printing. Indiana: Wiley.

Khoshnevis. B. (2004). Automated construction by contour crafting-related robotics and information technologies. Automation in construction. 13(1). 5-19.

https://doi.org/10.1016/j.autcon.2003.08.012

Shatov S., Savytskyi M. & Marchenko I. (2019). Improvement of 3D printing object equipment. Bulletin of Prydniprovs’ka State Academy of Civil Engineering and Architecture. 1. 90-101.

https://doi.org/10.30838/J.BPSACEA.2312.261119.91.593

Savytskyi N. V., Shatov S. V., Ozhyshchenko O. A. (2016). 3D-printing of build objects. Вісник Придніпровської державної академії будівництва та архітектури. 3. 18-26.

Kuhudzai R.J. (2022). Apis Cor Is Ready to Scale Up The 3D-Printed Home & Building Sector With Its Advanced Compact Mobile Robot Tech. [Electronic resource]. - Access mode:

https://cleantechnica.com/2022/02/09/apis-cor-is-ready-to-scale-up-the-3d-printed-home-building-sector-with-its-advanced-compact-mobile-robot-tech/

K. Mok. (2018). Huge Modular 3D Printer Creates $1,000 Tiny House Out of Mud. [Electronic resource]. - Access mode:

https://www.treehugger.com/gaia-house-d-printed-out-mud-wasp-4857768

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Published

2023-06-19

How to Cite

Nesterenko, M., Orysenko, O., Zhyla, I., & Sidan, D. (2023). Mobile complex of equipment for 3D printing. Збірник наукових праць Галузеве машинобудування будівництво Academic Journal Industrial Machine Building Civil Engineering, 1(60), 12–18. https://doi.org/10.26906/znp.2023.60.3179