Numerical simulation and analysis of the muzzle flow during the revolving barrel gun firing

被引:0
|
作者
机构
[1] Yu, Wei
[2] Zhang, Xiaobing
来源
Zhang, X. (zhangxb680504@163.com) | 1600年 / American Society of Mechanical Engineers (ASME), United States卷 / 80期
关键词
The revolving barrel gun is the principal component of the close-in weapons system (CIWS) that provides important terminal defense against anti-ship cruise missiles that have penetrated fleet defenses. The muzzle flow field of the revolving barrel firing is extraordinarily complex. The 3D computational model was formulated to illustrate the details of the flow field produced by the revolving barrel gun firing. The algorithm of a second order monotone upstream-centered schemes (MUSCL) approach with the advection upstream splitting method (AUSM) solver was used to simulate the high pressure muzzle flow field. The interior ballistic process was coupled with the simulation. The predicted muzzle velocity and maximum bore pressure were in good agreement with those measured in gun firing. Moreover; the muzzle flow field was obtained during the revolving barrel firing and was subsequently analyzed. The maximum lateral velocity of the first and second projectile fired was about 1.6 and 3.8 m/s. Copyright © 2013 by ASME;
D O I
暂无
中图分类号
学科分类号
摘要
Journal article (JA)
引用
收藏
相关论文
共 50 条
  • [31] Numerical analysis of 100mm naval gun barrel composite cooling based on multiphase flow
    Liu, Xinyun
    Wu, Dalin
    Hou, Jian
    Engineering Letters, 2020, 28 (03): : 307 - 317
  • [32] Numerical simulation and analysis of the 3D transient muzzle flow field of underwater artillery
    Zhang, Xuan
    Yu, Yonggang
    Zhang, Xinwei
    OCEAN ENGINEERING, 2023, 284
  • [33] Numerical Simulation of gun propellant substitute in barrel during extrusion processing assisted with SC-CO2
    Ding, Yajun
    Ying, Sanjiu
    Xiao, Zhongliang
    Wei, Rongjun
    Xiao, Leqin
    SCIENCE AND TECHNOLOGY OF ENERGETIC MATERIALS, 2018, 79 (5-6) : 131 - 136
  • [34] Numerical simulation on dynamic recoil test with gun muzzle subjected to high-velocity impact
    Di, Chang-Chun
    Liu, Lin
    Zheng, Jian
    Chen, Yong-Cai
    Baozha Yu Chongji/Explosion and Shock Waves, 2012, 32 (03): : 323 - 327
  • [35] Numerical simulation of muzzle combustion flow field with brake by parallel computation
    Dai, Shu-Lan
    Xu, Hou-Qian
    Xiao, Zhong-Liang
    Dandao Xuebao/Journal of Ballistics, 2009, 21 (04): : 84 - 87
  • [36] OPTIMIZED GUN BARREL BASED ON NUMERICAL SIMULATION TO PRODUCED OIL WITH LOW BSW CONTENT
    Araujo Daza, Silvia
    Montanez Villamizar, Urbano
    PROCEEDINGS OF THE ASME 2020 FLUIDS ENGINEERING DIVISION SUMMER MEETING (FEDSM2020), VOL 3, 2020,
  • [37] Numerical simulation and experimental study on temperature field of segment enwound composite gun barrel
    Wu, Qi-Jun
    He, Lei
    Zeng, Xin
    Zhou, Ke-Dong
    Li, Jun-Song
    Dandao Xuebao/Journal of Ballistics, 2010, 22 (04): : 94 - 96
  • [38] Numerical investigation on the muzzle flow field of an underwater submerged launched ballistic gun at different water depths
    Zhang J.
    Yu Y.
    Baozha Yu Chongji/Explosion and Shock Waves, 2020, 40 (10):
  • [39] Numerical calculation of the unsteady gas flow around a projectile moving through a gun barrel
    Ponyavin, V
    Chen, Y
    Pepper, DW
    Computational Ballistics II, 2005, 40 : 313 - 323
  • [40] Numerical simulation of muzzle flow field based on ALE equation and chimera grids
    Key Laboratory of Ballistics, Nanjing University of Science and Technology, Nanjing 210094, China
    Binggong Xuebao, 2007, 12 (1512-1515):