Simplified prediction of transient electromagnetic response

Geophysics ◽  
1984 ◽  
Vol 49 (7) ◽  
pp. 913-917 ◽  
Author(s):  
A. Becker ◽  
R. DeCarle ◽  
P. G. Lazenby

In general the target response to an electromagnetic system is a complex function of target geometry and of the geometrical and electrical parameters of the apparatus used to make the measurements. Thus, the prediction of system performance is usually done with respect to a particular target. Under some circumstances, however, one can predict the effect of changing one of the system parameters by assuming that the typical conductor in a given area is well represented by a shorted single‐turn loop. This simple, classical concept is shown to be valid for evaluating the effect of primary pulse width on target response to the Input airborne electromagnetic system. The justification of our basic technique for predicting this aspect of AEM system performance is provided by the analysis of Input surveys done in two areas of the Precambrian Shield in Canada. Repeat surveys were done in each area with a 1 ms and a 2 ms primary pulse width. The change in system performance that could be expected by doubling the pulse width was correctly predicted after an analysis of the 1 ms data.

Geophysics ◽  
1983 ◽  
Vol 48 (7) ◽  
pp. 934-952 ◽  
Author(s):  
P. Weidelt

An exact solution is given for the electromagnetic induction in a dipping dike of finite conductivity, represented as a thin half‐sheet in a nonconducting surrounding. The problem is formulated for arbitrary dipole or circular loop [Formula: see text] configurations. The formal solution obtained by the Wiener‐Hopf technique is cast into a rapidly convergent triple integral suitable for an effective numerical treatment. A good agreement is found between numerical results and analog measurements available for harmonic excitation. The transient response is obtained as a superposition of the half‐sheet free‐decay modes and is illustrated by some numerical examples for coincident loops, including a diagram for the approximate determination of conductance and depth of a vertical dike.


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