CHINESE JOURNAL OF ENERGETIC MATERIALS
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微流控制备HNS/F2604复合微球及其力学性能研究
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西南科技大学国防科技学院

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基金项目:

国家自然科学基金(22405223)


Study on the Preparation of HNS/F2604 Composite Microspheres by Microfluidics and Mechanical Properties
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School of National Defense Science and Technology, Southwest University of Science and Technology

Fund Project:

Grant support: National Natural Science Foundation of China (22405223)

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    摘要:

    针对Ⅳ型六硝基茋(HNS)晶体形貌不规则、力学性能差等问题,采用微流控技术制备HNS/F2604微球,结合巴西实验与有限元模拟,系统研究其力学性能与增强机理。结果表明:分散相流速0.05 mL·min-1、连续相流速2.0 mL·min-1(流速比1∶40)、收集温度60 ℃时,可获得球形度良好、表面光滑的HNS/F2604微球。该微球保持HNS原有晶型,热分解峰温较HNS提前4.6 ℃。巴西实验显示,HNS药柱峰值载荷0.0065 kN,呈脆性断裂特征;HNS/F2604微球药柱峰值载荷提升至0.072 kN,峰后曲线呈多阶段衰减,反映韧性转变。有限元仿真得到的裂纹扩展形貌与试验断口特征具备较高一致性。微流控制备的HNS/F2604复合微球表现出显著的增韧效果。

    Abstract:

    To address the problems of irregular morphology and poor mechanical properties of conventional hexanitrostilbene (HNS) crystals, HNS/F2604 microspheres were fabricated via microfluidic technology. By combining Brazilian splitting tests with finite element simulations, the mechanical properties and enhancement mechanism of the as-prepared microspheres were systematically investigated.The results show that HNS/F2604 microspheres with good sphericity and smooth surfaces can be obtained when the dispersed phase flow rate is 0.05 mL·min-1, the continuous phase flow rate is 2.0 mL·min-1 (flow rate ratio of 1∶40), and the collection temperature is 60 ℃. The microspheres retain the original crystalline structure of HNS, while their peak thermal decomposition temperature is 4.6 ℃ lower than that of pure HNS.Brazilian splitting tests indicate that the pure HNS pellet has a peak load of 0.0065 kN and exhibits brittle fracture characteristics; in contrast, the peak load of the HNS/F2604 microsphere pellet increases to 0.072 kN, and its post-peak stress-displacement curve shows multi-stage attenuation, reflecting a transition to ductile fracture. The crack propagation morphology obtained from finite element simulations is in good agreement with the experimental fracture features. The HNS/F2604 composite microspheres prepared by microfluidic technology exhibit a remarkable toughening effect.

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刘纪鸿,徐聪,张言,等. 微流控制备HNS/F2604复合微球及其力学性能研究[J]. 含能材料,DOI:10.11943/CJEM2026105.

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  • 收稿日期: 2026-04-24
  • 最后修改日期: 2026-06-15
  • 录用日期: 2026-05-26
  • 在线发布日期: 2026-06-10
  • 出版日期: