3D printing materials: selection energy intensive materials

Authors

  • G.M. Naurzbayeva The institute of combustion problems, Bogenbai batyr str., 172, Almaty, Kazakhstan; Al-Farabi Kazakh national university, ave. Al-Farabi 71, Almaty, Kazakhstan
  • Sh.T. Sultakhan The institute of combustion problems, Bogenbai batyr str., 172, Almaty, Kazakhstan; Al-Farabi Kazakh national university, ave. Al-Farabi 71, Almaty, Kazakhstan
  • М. Нажипкызы The institute of combustion problems, Bogenbai batyr str., 172, Almaty, Kazakhstan; Al-Farabi Kazakh national university, ave. Al-Farabi 71, Almaty, Kazakhstan
  • G.R. Mitchell Polytechnic institute of Leiria, General Norton de Matos str., 2411-901, Leiria, Portugal; Centre for rapid and sustainable product development, Rua de Portugal str., 2430-028, Marinha Grande, Portugal

DOI:

https://doi.org/10.18321/cpc354

Keywords:

additive manufacturing, energy intensive (energetic) materials, 3D printing.

Abstract

In recent years, 3D printing techniques, also called as additive manufacturing (AM), have moved beyond their traditional applications in industrial production and prototyping. This article gives a brief discussion of energy-intensive (energetic) materials, as well as additive manufacturing most commonly used for technologies. In the process of experiment, we obtained suitable energyintensive materials for 3D printing, thermite, we used nitrocellulose as a binder. Thermodynamic analysis of gasification processes with the universal TERRA program was carried out. And energy-intensive materials were investigated in different ratios. Our goal is to choose the right energy-intensive material for adapted 3D printing.

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Published

2020-06-30

How to Cite

Naurzbayeva, G., Sultakhan, S., Нажипкызы, М., & Mitchell, G. (2020). 3D printing materials: selection energy intensive materials. Combustion and Plasma Chemistry, 18(2), 103–109. https://doi.org/10.18321/cpc354

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