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Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance

In order to solve the problems of the complicated forming process, poor adaptability, low safety, and high cost of special-shaped energetic grains, light-curing 3D printing technology was applied to the forming field of energetic grains, and the feasibility of 3D printing (additive manufacturing) co...

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Autores principales: Chen, Yongjin, Ba, Shuhong, Ren, Hui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705653/
https://www.ncbi.nlm.nih.gov/pubmed/34945359
http://dx.doi.org/10.3390/mi12121509
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author Chen, Yongjin
Ba, Shuhong
Ren, Hui
author_facet Chen, Yongjin
Ba, Shuhong
Ren, Hui
author_sort Chen, Yongjin
collection PubMed
description In order to solve the problems of the complicated forming process, poor adaptability, low safety, and high cost of special-shaped energetic grains, light-curing 3D printing technology was applied to the forming field of energetic grains, and the feasibility of 3D printing (additive manufacturing) complex special-shaped energetic grains was explored. A photocurable resin was developed. A demonstration formula of a 3D printing energetic slurry composed of 41 wt% ultra-fine ammonium perchlorate (AP), 11 wt% modified aluminum (Al), and 48 wt% photocurable resin was fabricated. The special-shaped energetic grains were successfully 3D printed based on light-curing 3D printing technology. The optimal printing parameters were obtained. The microstructure, density, thermal decomposition, combustion performance, and mechanical properties of the printed grain were characterized. The microstructure of the grain shows that the surface of the grain is smooth, the internal structure is dense, and there are no defects. The average density is 1.606 g·cm(−3), and the grain has good uniformity and stability. The thermal decomposition of the grain shows that it can be divided into three stages: endothermic, exothermic, and secondary exothermic, and the Al of the grain has a significant catalytic effect on the thermal decomposition of AP. The combustion performance of the grain shows that a uniform flame with a one-way jet is produced, and the average burning rate is 5.11 mm·s(−)(1). The peak pressure of the sample is 45.917 KPa, and the pressurization rate is 94.874 KPa·s(−)(1). The analysis of the mechanical properties shows that the compressive strength is 9.83 MPa and the tensile strength is 8.78 MPa.
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spelling pubmed-87056532021-12-25 Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance Chen, Yongjin Ba, Shuhong Ren, Hui Micromachines (Basel) Article In order to solve the problems of the complicated forming process, poor adaptability, low safety, and high cost of special-shaped energetic grains, light-curing 3D printing technology was applied to the forming field of energetic grains, and the feasibility of 3D printing (additive manufacturing) complex special-shaped energetic grains was explored. A photocurable resin was developed. A demonstration formula of a 3D printing energetic slurry composed of 41 wt% ultra-fine ammonium perchlorate (AP), 11 wt% modified aluminum (Al), and 48 wt% photocurable resin was fabricated. The special-shaped energetic grains were successfully 3D printed based on light-curing 3D printing technology. The optimal printing parameters were obtained. The microstructure, density, thermal decomposition, combustion performance, and mechanical properties of the printed grain were characterized. The microstructure of the grain shows that the surface of the grain is smooth, the internal structure is dense, and there are no defects. The average density is 1.606 g·cm(−3), and the grain has good uniformity and stability. The thermal decomposition of the grain shows that it can be divided into three stages: endothermic, exothermic, and secondary exothermic, and the Al of the grain has a significant catalytic effect on the thermal decomposition of AP. The combustion performance of the grain shows that a uniform flame with a one-way jet is produced, and the average burning rate is 5.11 mm·s(−)(1). The peak pressure of the sample is 45.917 KPa, and the pressurization rate is 94.874 KPa·s(−)(1). The analysis of the mechanical properties shows that the compressive strength is 9.83 MPa and the tensile strength is 8.78 MPa. MDPI 2021-12-04 /pmc/articles/PMC8705653/ /pubmed/34945359 http://dx.doi.org/10.3390/mi12121509 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Yongjin
Ba, Shuhong
Ren, Hui
Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance
title Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance
title_full Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance
title_fullStr Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance
title_full_unstemmed Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance
title_short Additive Manufacturing of a Special-Shaped Energetic Grain and Its Performance
title_sort additive manufacturing of a special-shaped energetic grain and its performance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705653/
https://www.ncbi.nlm.nih.gov/pubmed/34945359
http://dx.doi.org/10.3390/mi12121509
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