通过三维打印制备 HNS 基棒及其燃烧性能

Hongyang Chen , Yaofeng Mao , Jie Chen , Ruolei Zhong , Bo Jin , Fude Nie , Rufang Peng , Jun Wang
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引用次数: 0

摘要

微尺度高能材料因其可集成到微机电系统中以实现多种潜在应用而备受关注。由于具有出色的热稳定性和冲击稳定性,以及对短脉冲冲击波的高灵敏度,六硝基苯乙烯(HNS)已被广泛应用于点火和起爆装置中。为了满足微型引爆装置的能量释放要求,我们采用直接墨水写入法制备了 HNS 棒,并对其反应和火焰传播特性进行了研究。制备的 HNS 粒子大小为 17.5 µm 至 5 µm,直径为 500 nm。然后,当粒度减小或 HNS 含量从 97 wt.%、95 wt.% 和 92 wt.% 降至 90 wt.% 时,通过声共振技术制备的 HNS 基油墨的粘度降低。此外,不同粘合剂的 HNS 基油墨表现出不同的粘度。研究还阐明了针的内径(0.4 毫米、0.6 毫米和 0.9 毫米)、印刷速度(13 毫米/秒、15 毫米/秒、17 毫米/秒、19 毫米/秒)和压力(0.05 兆帕、0.1 兆帕、0.15 兆帕、0.2 兆帕)对 HNS 粘棒宽度的影响。直径为 0.9 毫米的 HNS 棒发生了自持燃烧反应,当粒径从 17.5 微米减小到 500 纳米时,燃烧速率从 5.1 毫米/秒增加到 6.8 毫米/秒。总之,这项工作提供了一种制备微尺度 HNS 的有效方法,可用于集成到微型能源设备中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preparation of HNS-based sticks through 3D printing and its combustion performance

Microscale energetic materials have garnered considerable attention because they can be integrated in microelectromechanical systems for several potential applications. Hexanitrostilbene (HNS) has been widely utilized in ignition and initiation devices owing to its excellent thermal and shock stability and high sensitivity to short pulse shock waves. To meet the energy release requirements of micro-detonation devices, HNS sticks were prepared using direct ink writing and their reaction and flame propagation properties were studied. HNS particles sized 17.5 µm to 5 µm and ∼500 nm was prepared. Then, the viscosity of HNS-based inks prepared via acoustic resonance technology decreased when the particle size decreased or when the HNS content reduced from 97 wt.%, 95 wt.%, and 92 wt.%, to 90 wt.%. Additionally, the HNS-based inks with different binders exhibited different viscosity. The effect of the inner diameter of needle (0.4 mm, 0.6 mm, and 0.9 mm), printing rate (13 mm/s, 15 mm/s, 17 mm/s, 19 mm/s), and pressure (0.05 MPa, 0.1 MPa, 0.15 MPa, 0.2 MPa) on the width of HNS sticks was also elucidated. HNS-based sticks with a diameter of 0.9 mm underwent self-sustaining combustion reactions, and the burning rate increased from 5.1 mm/s to 6.8 mm/s as the particle size decreased from 17.5 µm to 500 nm. Overall, this work provides an effective approach to prepare microscale HNS for integration into micro-energetic devices.

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