CHINESE JOURNAL OF ENERGETIC MATERIALS
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微流控制备B/KNO3点火药及其燃烧性能研究
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1西南科技大学国防科技学院,四川 绵阳 621010;2西南科技大学四川省新型含能材料军民融合协同创新中心,四川 绵阳 621010

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国家自然科学基金(22405223);中国科学技术大学-西南科技大学对口合作发展联合基金(KY2490002501);西南科技大学优秀人才培育基金资助(23zx7147)


Research on the Preparation and Ignition Performance of B/KNO3 Ignition Powder Based on Microfluidic Technology
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1School of National Defense Science and Technology, Southwest University of Science and Technology, Mianyang 621010, China;2Sichuan Co-Innovation Center for New Energetic Materials, Southwest University of Science and Technology, Mianyang 621010, China

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    摘要:

    针对传统机械混合法制备的B/KNO3点火药存在组分分布不均、发火性能散差大等问题,采用微流控技术实现了B/KNO3点火药的原位制备。通过FLUENT软件开展数值模拟优化液滴生成条件,以无水乙醇为连续相,以含硼粉(B)、酚醛树脂(PF)及石墨烯/Fe2O3的KNO3水溶液为分散相,确定连续相与分散相最优流速比为10:1;在此工艺下,借助微流控技术实现了KNO3的原位重结晶以及石墨烯、Fe2O3的原位掺杂。采用SEM、EDS、BET、FTIR、TG-DSC等手段对B/KNO3点火药进行结构与热性能表征,结合Kissinger法计算热分解动力学参数,并通过平行燃烧试验验证燃烧时间一致性。结果表明:微流控制备的B/KNO3点火药组分分布均匀,粒径更小,比表面积较机械混合样品提升104.5%,平均燃烧速度较机械混合样品从80.67 ms减少到64.33 ms,提升20.2%;石墨烯的导热性与Fe2O3的催化作用形成的协同效应可显著降低体系的反应活化能、主分解起始温度与放热峰值温度,进一步加快燃烧速度,0.8%石墨烯、2% Fe2O3为最优添加量,体系平均燃烧时长缩短至50.33 ms。

    Abstract:

    To address issues such as uneven component distribution and significant variability in ignition performance of B/KNO₃ propellants prepared by traditional mechanical mixing methods, microfluidic technology was employed to achieve in-situ preparation of this propellant. Numerical simulations using FLUENT software optimized droplet formation conditions, employing anhydrous ethanol as the continuous phase and a KNO₃ aqueous solution containing B powder, phenolic resin, and graphene/Fe₂O₃ as the dispersed phase, with an optimal flow rate ratio of 10∶1 between the phases. This approach enabled in-situ recrystallization of KNO₃ and in-situ doping of graphene and Fe₂O₃ via microfluidic techniques. Structural and thermal properties were characterized using SEM, EDS, BET, FTIR, and TG-DSC; thermal decomposition kinetics parameters were calculated via the Kissinger method, and combustion time consistency was verified through parallel combustion tests. Results demonstrated that microfluidically prepared B/KNO₃ propellants exhibited uniform component distribution, smaller particle sizes, a 104.5% increase in specific surface area compared to mechanically mixed samples, and a reduction in average combustion time from 80.67 ms to 64.33 ms (a 20.2% improvement). The synergistic effect of graphene""s thermal conductivity combined with Fe₂O₃""s catalytic activity significantly lowered the system""s activation energy, primary decomposition onset temperature, and exothermic peak temperature, further accelerating combustion rates. Optimal addition concentrations were determined as 0.8% graphene and 2% Fe₂O₃, reducing the average combustion duration to 50.33 ms.

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张言,陈秋汛,李旭涵,等. 微流控制备B/KNO3点火药及其燃烧性能研究[J]. 含能材料,DOI:10.11943/CJEM2026138.

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  • 收稿日期: 2026-06-08
  • 最后修改日期: 2026-08-05
  • 录用日期: 2026-08-17
  • 在线发布日期: 2026-08-17
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