DocumentCode
1305367
Title
Two-dimensional current density imaging
Author
Pesikan, Predrag ; Joy, Michael L G ; Scott, Greig C. ; Henkelman, Mark R.
Author_Institution
Dept. of Electr. Eng., Inst. of Biomed. Eng., Toronto, Ont., Canada
Volume
39
Issue
6
fYear
1990
fDate
12/1/1990 12:00:00 AM
Firstpage
1048
Lastpage
1053
Abstract
Imaging of electrical current by measuring the magnetic field which it produces requires the solution of the magnetic inverse problem. For a current restricted to a plane, the inverse problem can theoretically be solved by a linear spatial filtering method. Experimental results indicate that currents restricted to the surface of a printed circuit board can be imaged using this method. To measure the magnetic field, a magnetic resonance imaging technique is used. The reconstructed current density images illustrate that a tradeoff exists between the spatial resolution and the signal-to-noise ratio (S /N ). The currents were restricted to the surface of a printed circuit board set in the xy plane. The circuit board was bathed in a nonconducting mineral oil to provide a magnetic resonance (MR) signal. The z component of the magnetic field produced by the current was measured using the magnetic resonance technique, and a spatial filtering technique was used to find the current density (J ). The spatial resolution with which one can measure electric current density depends strongly on the distance at which the magnetic field from these currents can be measured. Magnetic resonance imaging offers a way to measure magnetic fields noninvasively and thus the possibility of reducing this distance to zero (if the current flows in an appropriate medium). While less sensitive than a superconducting quantum interference device (SQUID), the MR imaging method might, under certain circumstances, be capable of higher spatial resolution
Keywords
current density; electric current measurement; magnetic field measurement; magnetic resonance spectroscopy; printed circuit testing; 2D; current density imaging; electric current density; linear spatial filtering; magnetic inverse problem; magnetic resonance imaging; nonconducting mineral oil; printed circuit board; reconstructed current density images; signal-to-noise ratio; spatial resolution; Current density; Current measurement; Density measurement; Electric variables measurement; Inverse problems; Magnetic field measurement; Magnetic resonance imaging; Magnetic separation; Printed circuits; Spatial resolution;
fLanguage
English
Journal_Title
Instrumentation and Measurement, IEEE Transactions on
Publisher
ieee
ISSN
0018-9456
Type
jour
DOI
10.1109/19.65824
Filename
65824
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