DocumentCode :
411268
Title :
Application of TSA formulation for inversion of a metallic object´s electromagnetic properties from EMI data
Author :
Sun, K. ; O´Neill, K. ; Shubitidze, F. ; Shamatava, I. ; Paulsen, K.D.
Author_Institution :
Thayer Sch. of Eng., Dartmouth Coll., Hanover, NH, USA
Volume :
6
fYear :
2003
fDate :
21-25 July 2003
Firstpage :
3860
Abstract :
Estimating electric conductivity σ (S/m) and magnetic permeability μ (F/m) is of great interest both for industry, mineral exploration, and for geophysical discrimination of buried objects such as unexploded ordnance (UXO). We present here a technique for inferring physical parameters of a metallic object in the EMI frequency range (from tens of Hz to several hundred kHz). Electric conductivity and magnetic permeability are inferred by an inversion algorithm operating on inphase and quadrature received components. The forward model is based on the BIE-TSA formulation, which works well over the majority of the EMI frequency range, especially for magnetic material. The formulation is organized so that most matrices related to object geometry need only be calculated once and the Jacobian matrix can be constructed easily from these matrices. Therefore, both forward solution and Jacobian matrix can be calculated quickly. For material with high magnetic permeability, forward solutions indicate that the scattered field is mostly only sensitive to the ratio of σ and μ. In this case the inversion algorithm becomes ill conditioned and some kind of regularization is needed. The performance of the inversion algorithm was studied under different kinds of regularization, via both theoretical analysis and numerical experiments. An optimized method for choosing regularization is suggested which may also benefit more general inverse problems.
Keywords :
Jacobian matrices; buried object detection; electromagnetic induction; electromagnetic wave scattering; geophysical techniques; magnetic permeability; matrix inversion; EMI data; EMI frequency range; Jacobian matrix; buried object geophysical discrimination; electric conductivity; industry; inphase components; inversion algorithm; magnetic material; magnetic permeability; metallic object electromagnetic properties; mineral exploration; numerical experiments; quadrature received component; scattered field; theoretical analysis; thin skin depth approximation formulation; unexploded ordnance; Buried object detection; Conductivity; Electromagnetic interference; Frequency; Geometry; Jacobian matrices; Magnetic materials; Minerals; Mining industry; Permeability;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Geoscience and Remote Sensing Symposium, 2003. IGARSS '03. Proceedings. 2003 IEEE International
Print_ISBN :
0-7803-7929-2
Type :
conf
DOI :
10.1109/IGARSS.2003.1295294
Filename :
1295294
Link To Document :
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