CHINESE JOURNAL OF ENERGETIC MATERIALS
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燃烧型防暴弹药防反投性能数值模拟研究
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1沈阳理工大学 装备工程学院, 辽宁 沈阳 110159;2核生化灾害防护化学全国重点实验室, 北京 102205

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Numerical Simulation Study on Anti-rethrow Performance of Riot Control Ammunition
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1School of Equipment Engineering, Shenyang Ligong University, Shenyang 110159, China;2State Key Laboratory of Chemistry for NBC Hazards Protection, Beijing 102205, China

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    摘要:

    弹体快速运动形成防反投性能是燃烧型防暴弹药重要的作战效能指标,为实现对该性能的有效模拟评估,基于典型的防暴彩烟弹结构和组分,建立了弹体内腔气体扩散模型,并基于计算流体动力学方法得到弹体喷孔处气体流速和气体压力,进而通过喷气推力公式计算得到推力,然后建立弹体地面运动动力学模型并进行有限元数值模拟,分析弹药的运动情况。为进一步验证模拟仿真准确性和对比不同弹体结构对防反投性能的影响,采用实弹进行试验测量分析弹体轨迹,并模拟仿真了不同发烟孔数量、孔径和夹角等不同弹体结构对运动距离和垂直位移的影响,结果表明典型结构弹体的数值模拟结果与试验结果吻合较好,两者弹体运动位移偏差仅为4.96%。数值模拟过程中点火发烟6 s后弹体喷孔出口流速、出口壁面压力和内腔压力的变化趋于稳定,与实际工况下6 s后弹体进入稳定旋转运动相对应。此外,孔径和孔数对弹体运动过程具有显著影响,减小孔径时垂直位移曲线易出现大幅不规则振荡;孔数越少,喷孔壁面压力越大,喷孔出口流速越大,推力相应提高。综合防反投性能,推荐采用4孔、孔径3 mm、夹角40°~50°的结构或3孔、孔径3 mm、夹角40°~50°的结构。该研究可以有效指导未来该类弹药的防反投性能的设计。

    Abstract:

    The anti-rethrow performance, which is realized through rapid ground motion of the projectile, is a critical operational effectiveness indicator for combustion-type anti-riot ammunition. To effectively simulate and evaluate this performance, a gas diffusion model within the projectile cavity was established based on the typical structure and composition of an anti-riot colored smoke projectile. The gas velocity and pressure at the orifices were obtained using computational fluid dynamics (CFD) methods, from which the thrust was calculated via the jet thrust formula. Subsequently, a dynamic model of the projectile ground motion was developed and solved using finite element numerical simulation to analyze the movement of the ammunition. To further validate the simulation accuracy and compare the effects of different projectile structures on the anti-rethrow performance, experimental measurements using actual projectiles were conducted to analyze the projectile motion trajectory, and additional simulations were performed to investigate the influence of varying orifice numbers, diameters, and inclination angles on the projectile’s travel distance and vertical displacement. The results demonstrate that the numerical simulation results for the typical projectile structure agree well with the experimental data, with only a 4.96% discrepancy in projectile displacement. During the numerical simulation, the variations in the orifice outlet velocity, orifice wall pressure, and cavity pressure tend to stabilize 6 s after ignition and smoke generation, which corresponds to the projectile entering a steady rotational motion after 6 s under actual operating conditions. Furthermore, the orifice diameter and the number of orifices significantly affect the projectile motion process: a reduction in orifice diameter tends to induce significant irregular oscillations in the vertical displacement curve; a smaller number of orifices leads to higher orifice wall pressure, higher outlet velocity at the orifice, and consequently greater thrust. Based on a comprehensive consideration of the anti-rebound performance, a configuration with four orifices, a diameter of 3 mm, and an inclination angle of 40°–50°, or a configuration with three orifices, a diameter of 3 mm, and an inclination angle of 40°-50°, is recommended. This study can effectively guide the future design of the anti-rethrow performance for such ammunition.

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黄征,张骢,岳明凯,等. 燃烧型防暴弹药防反投性能数值模拟研究[J]. 含能材料,DOI:10.11943/CJEM2026157.

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  • 收稿日期: 2026-06-30
  • 最后修改日期: 2026-09-30
  • 录用日期: 2026-10-08
  • 在线发布日期: 2026-10-09
  • 出版日期: