高压气体载荷下预制破片与空气冲击波的运动关系

夏晓旭 宁建国 李健

夏晓旭, 宁建国, 李健. 高压气体载荷下预制破片与空气冲击波的运动关系[J]. 高压物理学报, 2021, 35(5): 052301. doi: 10.11858/gywlxb.20210749
引用本文: 夏晓旭, 宁建国, 李健. 高压气体载荷下预制破片与空气冲击波的运动关系[J]. 高压物理学报, 2021, 35(5): 052301. doi: 10.11858/gywlxb.20210749
XIA Xiaoxu, NING Jianguo, LI Jian. Study on Motion Law of Prefabricated Fragment and Air Shock Wave under High Pressure Gas Load[J]. Chinese Journal of High Pressure Physics, 2021, 35(5): 052301. doi: 10.11858/gywlxb.20210749
Citation: XIA Xiaoxu, NING Jianguo, LI Jian. Study on Motion Law of Prefabricated Fragment and Air Shock Wave under High Pressure Gas Load[J]. Chinese Journal of High Pressure Physics, 2021, 35(5): 052301. doi: 10.11858/gywlxb.20210749

高压气体载荷下预制破片与空气冲击波的运动关系

doi: 10.11858/gywlxb.20210749
基金项目: 国家自然科学基金(11702026)
详细信息
    作者简介:

    夏晓旭(1994-),男,硕士研究生,主要从事战斗部数值仿真研究. E-mail:3120180256@bit.edu.cn

    通讯作者:

    李 健(1985-),男,博士,讲师,主要从事爆轰物理研究. E-mail:jian_li@bit.edu.cn

  • 中图分类号: O389; TJ410.1

Study on Motion Law of Prefabricated Fragment and Air Shock Wave under High Pressure Gas Load

  • 摘要: 冲击波与破片的运动关系直接决定两者对目标的联合毁伤效果,采用有限体积方法和网格自适应技术,对高温高压气体载荷作用下圆形刚体破片的运动规律、冲击波的衰减规律以及两者的运动关系进行了数值模拟研究。结果表明,高温高压气团形成的冲击波与破片作用发生反射和透射,在破片前后形成的压力差是导致其加速的主要原因。在破片数量一定的情况下,破片距离高温高压气团中心越远,初速越小。当破片与高温高压气团中心的间距相同时,破片数量越多,初速越大。同时研究发现,冲击波与刚体球存在复杂的追逐关系:当初速较大时,破片和冲击波相遇两次;初速减小时,二者相遇一次;初速进一步减小时,二者不能相遇。冲击波与刚体球破片的前后关系将会影响它们对目标的毁伤是否存在耦合关系。

     

  • 图  模型示意图

    Figure  1.  Schematic diagram of the model

    图  计算域设置示意图

    Figure  2.  Schematic of the computational domain

    图  网格收敛性测试结果

    Figure  3.  Grid resolution test results

    图  工况24-d0.02不同时刻密度纹影图

    Figure  4.  Schlieren diagram of density at different moments in case 24-d0.02

    图  工况24-d0.02不同时刻空间压力曲线

    Figure  5.  Pressure distribution at different moments in case 24-d0.02

    图  工况24-d0.02不同时刻的密度纹影图

    Figure  6.  Local schlieren photography at different moments in case 24-d0.02

    图  不同工况下冲击波和破片的速度及位移时程曲线

    Figure  7.  Time history curves of velocity and displacement of shock wave and fragment in different cases

    图  工况30-d0.04中局部的压力云图

    Figure  8.  Local pressure contours in case 30-d0.04

    图  不同工况下破片速度的空间分布曲线

    Figure  9.  Spatial distribution of fragment velocity under different working conditions

    图  10  不同工况下相遇时n-tn-xn-v曲线

    Figure  10.  n-t, n-x, n-v curves of encounter under different working conditions

    图  11  统计出的破片-冲击波的相遇情况

    Figure  11.  Encountering statistics of the fragment and shock wave

    表  1  数值模拟初始参数

    Table  1.   Initial parameters of numerical simulation

    R/m$\;\rho$0/(g·cm−3)p0/GPar/m$\;\rho $s0/(g·cm−3)l/m
    0.051.62.6880.017.8150
    下载: 导出CSV
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  • 收稿日期:  2021-03-18
  • 修回日期:  2021-04-15

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