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Method of ballistic control and projectile rotation in a novel railgun 被引量:4

Method of ballistic control and projectile rotation in a novel railgun
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摘要 In order to realize the ballistic control of the railgun and the flight stability of the projectile, a new type of railgun is designed, which can control the muzzle velocity and rotation rate. The method of the muzzle velocity and overload control is to adjust the voltage or other parameters of pulse power supply. It would be easy to change velocity accurately in large wide. Another widespread concern problem is launching the spinning stability projectile by railgun. This paper designed a new structure of additional rails to generate an unsymmetrical magnetic field to produce rotational torque in armature. The structure is simple and can control the rotation rate by linear changing the barrel parameters. The calculation formulas of interior ballistic are derived by Biot-Safar law. The important parameter is the deflection angle of the additional rails relative to the symmetry plane of main rail. The larger the angle, the greater the rotation torque generated in the armature. To maintain the flight stability of the projectile, the barrel structural parameters should be proportional to the projectile structural parameters. When changing the muzzle velocity, the rotation rate will also be the equal proportion change. So that the gyro stability is the same. The experiment proves that the railgun designed in this paper can launch the projectile to rotate. And the rotational projectile may not cause the transition or much arcs. This method expands the application of the railgun. In order to realize the ballistic control of the railgun and the flight stability of the projectile, a new type of railgun is designed, which can control the muzzle velocity and rotation rate. The method of the muzzle velocity and overload control is to adjust the voltage or other parameters of pulse power supply. It would be easy to change velocity accurately in large wide. Another widespread concern problem is launching the spinning stability projectile by railgun. This paper designed a new structure of additional rails to generate an unsymmetrical magnetic field to produce rotational torque in armature. The structure is simple and can control the rotation rate by linear changing the barrel parameters. The calculation formulas of interior ballistic are derived by Biot-Safar law. The important parameter is the deflection angle of the additional rails relative to the symmetry plane of main rail. The larger the angle, the greater the rotation torque generated in the armature. To maintain the flight stability of the projectile, the barrel structural parameters should be proportional to the projectile structural parameters. When changing the muzzle velocity, the rotation rate will also be the equal proportion change. So that the gyro stability is the same. The experiment proves that the railgun designed in this paper can launch the projectile to rotate. And the rotational projectile may not cause the transition or much arcs. This method expands the application of the railgun.
出处 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2018年第5期628-634,共7页 Defence Technology
关键词 BALLISTIC CONTROL RAILGUN ROTATION Spin-stabilized PROJECTILE Ballistic control Railgun Rotation Spin-stabilized projectile
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  • 1Keshtkar A. Effect of rail dimension on current distribution and inductance gradient[J]. IEEE Transactions on Magnetics, 2005, 41(1): 383-386.
  • 2Keshtkar A, BayatiS. Effect of rail's material on railgun inductance gradient and losses[C]. Victoria: 14th Symposium on Electromagnetic Launch Technology Proceedings, Canada, 2008: 130-133.
  • 3Yuan W Q, Sun L Q. Investigation on the time varying inductance gradient of railgun[C]. Victoria: 14th Symposium on Electromagnetic Launch Technology Proceedings, Canada, 2008: 569-572.
  • 4Kerrisk. J F. Current distribution and inductance calculations for railgun conductors[R]. New Mexico, USA Los Alamos National Laboratory, 1981: 2-3.
  • 5Grover F W. Inductance calculations: working formulas and tables[M]. New York, USA: Dover Publications, 1962 28-66.
  • 6Batteh J H. Momentum equation for arc-driven railguns[J]. Journal of Applied Physics, 1984, 56(11): 3182-3186.
  • 7Marshall, R. A. Ying W. Railguns: their science and technology[M]. Beijing: China Machine Press, 2004: 12-14.
  • 8周媛,严萍,袁伟群,孙立强.电磁轨道发射装置中导轨几何参数对电感梯度的影响[J].电工电能新技术,2009,28(3):23-27. 被引量:21
  • 9聂建新,韩晶晶,焦清介,金兆鑫,张锋.电磁轨道发射器的几何尺寸对电感梯度的影响[J].高电压技术,2010,36(3):728-732. 被引量:20
  • 10胡玉伟,马萍,杨明,焦松,王子才.一种电磁轨道炮系统的仿真模型[J].兵工自动化,2012,31(9):54-58. 被引量:7

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