High-quality and homogeneous HMX-based aluminized explosives using droplet microfluidic technology

IF 3.3 Q2 CHEMISTRY, MULTIDISCIPLINARY Energetic Materials Frontiers Pub Date : 2022-12-01 DOI:10.1016/j.enmf.2022.01.004
Jin-qiang Zhou, Bi-dong Wu, Rui Zhu, Yun-yan Guo, Jia-hui Shi, Chong-wei An, Jing-yu Wang
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引用次数: 6

Abstract

The aggregation of nano-aluminum powder seriously hinders the energy release of aluminized explosives. This study developed a strategy of using the droplet microfluidic technology to prepare HMX/15 ​wt% n-Al/2 ​wt% (NC and F2604) high-energy microspheres and systematically studied the effects of different binders on the morphology (i.e., roundness) and dispersion properties of microspheres. Moreover, it investigated the thermal decomposition, mechanical sensitivity, and combustion performance using TG, differential scanning calorimetry (DSC), and mechanical sensitivity and combustion experiments. Results show that all the prepared microspheres are regular spherical and enjoy excellent dispersion and high packing density. Using NC as a binder offers more advantages, including favorable roundness, angle of repose, and bulk density values, which were found to be 0.921, 27.1°, and 0.723 ​g·cm-3, respectively. Using fluorine rubber (F2604) as a binder promotes the oxidation of nano-aluminum and delays the decomposition of HMX. Meanwhile, the microsphere structure can effectively reduce the sensitivity, and the use of F2604 as a binder can significantly improve the safety performance. As a result, the obtained aluminum-containing explosives have impact and friction sensitivities of 60 ​J and 220 ​N, respectively. In addition, compared to physically mixed samples, the microsphere samples have significantly improved combustion performance, more intense combustion reactions, and a shorter burning time, all of which are attributed to their uniform structures and the interactions between components. These results indicate that the strategy using the droplet microfluidic technology provides a new method for preparing high quality aluminized explosives efficiently and safely.

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液滴微流控技术制备高质量均质hmx基铝化炸药
纳米铝粉的聚集严重阻碍了加铝炸药的能量释放。本研究提出了利用液滴微流控技术制备HMX/ 15wt % n-Al/ 2wt % (NC和F2604)高能微球的策略,并系统研究了不同黏结剂对微球形貌(即圆度)和分散性能的影响。利用热重分析(TG)、差示扫描量热法(DSC)、机械灵敏度和燃烧实验对其热分解、机械灵敏度和燃烧性能进行了研究。结果表明,所制备的微球呈规则球形,具有良好的分散性和较高的堆积密度。使用NC作为粘结剂具有更多的优势,包括良好的圆度,休止角和堆积密度值,分别为0.921,27.1°和0.723 g·cm-3。氟橡胶(F2604)作为粘结剂促进纳米铝的氧化,延缓HMX的分解。同时,微球结构可以有效降低灵敏度,使用F2604作为粘结剂可以显著提高安全性能。所得含铝炸药的冲击感度为60 J,摩擦感度为220 N。此外,与物理混合的样品相比,微球样品的燃烧性能明显提高,燃烧反应更强烈,燃烧时间更短,这都归功于其均匀的结构和组分之间的相互作用。这些结果表明,采用微流控技术的策略为高效、安全制备高质量的铝化炸药提供了一条新途径。
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来源期刊
Energetic Materials Frontiers
Energetic Materials Frontiers Materials Science-Materials Science (miscellaneous)
CiteScore
6.90
自引率
0.00%
发文量
42
审稿时长
12 weeks
期刊最新文献
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