FDM - 3D printing of thermoplastic composites with high energetic solids content designed for gun propellants

推进剂 复合材料 材料科学 热塑性塑料 热塑性复合材料 工程类 航空航天工程
作者
Marin Alexandru,Ovidiu Iorga,Gabriela Toader,Cristiana Epure,Mihail Munteanu,Adrian Rotariu,Marius Mărmureanu,Gabriel F. NOJA,Aurel Diacon,Tudor Viorel Țigănescu,Florin-Marian Dîrloman
出处
期刊:Defence Technology [Elsevier BV]
卷期号:49: 165-179 被引量:3
标识
DOI:10.1016/j.dt.2025.02.024
摘要

This study represents an important step forward in the domain of additive manufacturing of energetic materials. It presents the successful formulation and fabrication by 3D printing of gun propellants using Fused Deposition Modeling (FDM) technology, highlighting the immense potential of this innovative approach. The use of FDM additive manufacturing technology to print gun propellants is a significant advancement due to its novel application in this field, which has not been previously reported. Through this study, the potential of FDM 3D-printing in the production of high-performance energetic composites is demonstrated, and also a new standard for manufacturability in this field can be established. The thermoplastic composites developed in this study are characterized by a notably high energetic solids content, comprising 70% hexogen (RDX) and 10% nitrocellulose (NC), which surpasses the conventional limit of 60% energetic solids typically achieved in stereolithography and light-curing 3D printing methods. The primary objective of the study was to optimize the formulation, enhance performance, and establish an equilibrium between printability and propellant efficacy. Among the three energetic formulations developed for 3D printing feedstock, only two were suitable for printing via the FDM technique. Notably, the formulation consisting of 70% RDX, 10% NC, and 20% polycaprolactone (PCL) emerged as the most advantageous option for gun propellants, owing to its exceptional processability, ease of printability, and high energetic performance. • FDM-3D-printed gun propellant formulations with high energetic solids content, while ensuring the printability of the energetic thermoplastic composites, were obtained. • The 3D-printed energetic composites surpass the typical 60 wt.% energetic solids loading limit in gun propellants obtained via stereolithography or light curing 3D printing. • The use of FDM additive manufacturing technology to print gun propellants is a significant advancement due to its novel application in this field, which was not previously reported. • The FDM printing strategy for gun propellants offers both performance enhancement and scalability of the fabrication with practical implications for the defense and security sector.
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