Experiment research of magnetic dipole model applicability for a magnetic object

被引:0
|
作者
Zhang Z. [1 ]
Xiao C. [1 ]
Gao J. [1 ]
Zhou G. [1 ]
机构
[1] Electric and Information Engineering College, Naval University of Engineering
关键词
Application condition; Equivalent magnetic moments; Magnetic dipole; Magnetic object;
D O I
10.3969/j.issn.1005-0930.2010.05.016
中图分类号
O441.2 [磁学]; TM12 [];
学科分类号
摘要
Magnetic dipole model is one simple but applied broadly magnetic model, and especially applied broadly in the magnetic detecting field. According to the case that the application of the model is only by rule of thumb and the application principle isn't known clearly, the thought of getting the magnetic dipole model application condition by experiment research was proposed. Based on the near field measurement, according to testing the astringency of equivalent magnetic moments and the relative error of magnetic field, a research method of getting magnetic dipole model application condition was found. Based on the theory analysis, 5 different magnetic object mockups were chosen for the experiment, and the results had indicated that beyond 2.5 times object length, the equivalent magnetic moments were convergent and the magnetic relative error was very small, which made clear that beyond 2.5 times object length, a magnetic object could be dealt with as a magnetic dipole and the demand of engineering could be satisfied. The result supplies basis for the magnetic dipole model's reasonable application.
引用
收藏
页码:862 / 868
页数:6
相关论文
共 11 条
  • [1] Mcfee J.E., Das Y., Fast nonrecursive method for estimating location and dipole moment components of a static magnetic dipole, IEEE Trans on Geoscience and Remote Sensing, 24, 5, pp. 663-673, (1986)
  • [2] Hirota M., Nanaura K., SQUID gradiometers for a fundamental study of underwater magnetic detection, IEEE Trans on Applied Superconductivity, 7, 2, pp. 2327-2330, (1997)
  • [3] Inaba T., Shima A., Konishi M., Magnetic dipole signal detection and location using subspace method, Electronics and Communications in Japan, 85, 5, pp. 23-34, (2002)
  • [4] Nara T., Suzuki S., Ando S., A closed-form formula for magnetic dipole location by measurement of its magnetic field and spatial gradients, IEEE Trans Magn, 42, 10, pp. 3291-3293, (2006)
  • [5] Tobely T.E., Salem A., Position detection of unexploded ordnance from airborne magnetic anomaly data using 3-D self organized feature map, IEEE International Symposium on Signal Processing and Information Technology, pp. 322-327, (2005)
  • [6] Bian G., Liu Y., Pei W., Determination of spacing and depth of detecting lines in magnetic substance detection in marine engineering, Ocean Technology, 27, 2, pp. 41-46, (2008)
  • [7] Yu B., Liu Y., Xiao F., Calculative method for optimum daggle interval in marine magnetic survey, Geomatics and Information Science of Wuhan University, 31, 11, pp. 999-1002, (2006)
  • [8] Wang J., Gong S., Liu S., High accuracy method for modeling magnetic objects, Journal of Naval University of Engineering, 13, 3, pp. 49-52, (2001)
  • [9] Watermann J., Lam J., Distribution of Magnetic Field Variations, Differences And Residuals, (1999)
  • [10] Gao J., Liu D., Yao Q., Testing the submarine magnetic field extrapolation with boundary element method through experiment, Acta Armamentarii, 27, 5, pp. 869-872, (2006)