Combination type magnetic-field source for simulating submarine magnetic field

被引:0
|
作者
Liu Z. [1 ]
Shi J. [1 ]
Wen W. [1 ]
Zhou M. [2 ]
机构
[1] Department of Weaponry Engineering, Naval University of Engineering, Wuhan
[2] Military Representative Office of Navy in Wuxi District, Wuxi
来源
Shi, Jian (j_shi@foxmail.com) | 1600年 / Chinese Society of Astronautics卷 / 38期
关键词
Aeromagnetic detection; Genetic algorithm; Magnetic field in air; Magnetic-field source; Power; Submarine decoy;
D O I
10.7527/S1000-6893.2017.321240
中图分类号
学科分类号
摘要
With the development of aeromagnetic detection and signal processing technologies, aeromagnetic detection equipment is highly likely to have the ability to recognize the magnetic field components of the magnetic anomaly source in the near future. However, in the current research on the magnetic decoy, the two-electrode direct opening magnetic-field source cannot simulate the components of the submarine magnetic field in the air. To solve this problem, a decoy magnetic field source scheme combining three types of magnets and the two-electrode magnetic-field source are proposed, and the calculation formulas for the magnetic fields in the air have been modeled.Based on the measured data of a submarine model, the optimal parameters of all kinds of magnetic-field sources are determined by the genetic algorithm. The simulation results are then analyzed, and thermal calculations and power calculations are carried out. A comparison with the two-electrode type, as well as multi-magnet two-electrode magnetic-field sources, the single-magnet two-electrode magnetic-field source is a better structure scheme for the decoy, which can better simulate the components of the magnetic induction intensity of the target submarine when the overall structure of the magnetic-field source is relatively simple. © 2017, Press of Chinese Journal of Aeronautics. All right reserved.
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共 22 条
  • [1] Sun M.T., Aviation Antisubmarine Introduction, pp. 4-10, (1998)
  • [2] Zeng X.N., Li X.H., Review of aviation anti-submarine technology based on magnetic anomaly detection, Chinese Geophysical Symposium on Security, pp. 44-52, (2009)
  • [3] Cui X.T., Yang R.J., He Y., Sonobuoy and magnetic detector joint search simulation study, Journal of System Simulation, 20, 16, pp. 4357-4359, (2008)
  • [4] Leliak P., Identification and evaluation of magnetic-field source of magnetic airborne detector equipped aircraft, IEEE Transactions on Aerospace & Navigational Electronics, 8, 3, pp. 95-105, (1961)
  • [5] Hirota M., Furuse T., Ebana K., Et al., Magnetic detection of a surface ship by an airborne LTS SQUID MAD, IEEE Transactions on Applied Superconductivity, 11, 1, pp. 884-887, (2001)
  • [6] Han R.X., Li C.H., Lu Q.F., Et al., Simulation for magnetic anomaly detection in air anti-Submarine, Journal of System Simulation, 21, 9, pp. 2753-2757, (2009)
  • [7] Wang J.L., Liu J.R., Lv Z.L., Et al., The aeromagnetic exploration analysis method based on spatial magnetic field model, Journal of China Academy of Electronics and Information Technology, 11, 1, pp. 32-35, (2016)
  • [8] Wang X.Y., Liu Z.L., Method for generating magnetic field of submarine magnetic decoy based on small motion carrier, Mine Warfare & Ship Self-Defence, 14, 4, pp. 18-21, (2006)
  • [9] Czipott P.V., Perry A.R., Whitecotton B.R., Et al., Magnetic detection and tracking of military vehicles: Technical Report, AD-A409217, (2002)
  • [10] Sheinker A., Frumkis L., Ginzburg B., Et al., Magnetic anomaly detection using a three-axis magnetometer, IEEE Transactions on Magnetics, 45, 1, pp. 160-167, (2009)