Volume 44 Issue 4
Apr.  2024
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HUANG Bingyu, CHEN Xuemiao, ZHANG Xuping, XIONG Wei, WANG Guiji, ZHANG Xianfeng, SHUI Rongjie, XU Chao, TAN Fuli. Modes and influencing factors of electromagnetically driven high velocity formed projectile[J]. Explosion And Shock Waves, 2024, 44(4): 043301. doi: 10.11883/bzycj-2023-0388
Citation: HUANG Bingyu, CHEN Xuemiao, ZHANG Xuping, XIONG Wei, WANG Guiji, ZHANG Xianfeng, SHUI Rongjie, XU Chao, TAN Fuli. Modes and influencing factors of electromagnetically driven high velocity formed projectile[J]. Explosion And Shock Waves, 2024, 44(4): 043301. doi: 10.11883/bzycj-2023-0388

Modes and influencing factors of electromagnetically driven high velocity formed projectile

doi: 10.11883/bzycj-2023-0388
  • Received Date: 2023-10-24
  • Rev Recd Date: 2023-12-28
  • Available Online: 2024-01-18
  • Publish Date: 2024-04-07
  • To investigate the feasibility and characteristics of high-velocity formed projectile formation driven by electromagnetic loading, exploratory experiments of projectile formation by electromagnetically driven the linear liner were conducted using the pulsed power generator CQ-7. Photon Doppler velocimeter (PDV) was employed to measure the velocity of the electromagnetic-driven projectiles and validate their penetration into aluminum targets. A physical model and numerical simulation method for electromagnetic-driven projectile formation were established using fluid dynamics software and corresponding electromagnetic simulation modules. The changes in current density and magnetic pressure during the electromagnetic loading stage were studied and the dynamic processes of projectile formation and penetration into aluminum targets were simulated. The numerical simulation method was verified through the comparison between numerical results and experimental data. Based on this, the influences of liner configuration and loading energy on the projectile formation parameters of equal wall thickness hemispherical liner were explored. The results indicate that the outer curvature radius has a minor impact on the head velocity of the projectile, while the head velocity significantly increases with decreasing wall thickness and increasing loading energy. The aspect ratio of the projectile gradually increases with decreasing outer curvature radius and wall thickness, as well as increasing loading energy. The conversion between quasi-spherical and long rod-shaped projectile modes can be achieved by changing the structural parameters, and for the same structural parameter, the conversion between two modes can be achieved by controlling the loading energy. Finally, the feasibility of obtaining high-velocity and high-mass-formed projectiles using electromagnetic-driven technology was predicted using numerical simulation methods, and it can be figured out from the results that a projectile with a higher velocity and larger mass can be formed by increasing the loading energy and the sizes of the shaped liner, effectively breaking through the velocity limit of a traditional penetrator driven by explosive detonation.
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