Abstract

This paper presents a novel numerical method for simulation controlled-source audio-magnetotellurics (CSAMT) and radio-magnetotellurics (CSRMT) data. These methods are widely used in mineral exploration. Interpretation of the CSAMT and CSRMT data collected over an area with the complex geology requires application of effective methods of numerical modeling capable to represent the geoelectrical model of a deposit well. In this paper, we considered an approach to 3D electromagnetic (EM) modeling based on new types of preconditioned iterative solvers for finite-difference (FD) EM simulation. The first preconditioner used fast direct inversion of the layered Earth FD matrix (Green’s function preconditioner). The other combined the first with a contraction operator transformation. To illustrate the effectiveness of the developed numerical modeling methods, a 3D resistivity model of Aleksandrovka study area in Kaluga Region, Russia, was prepared based on drilling data, AMT, and a detailed CSRMT survey. We conducted parallel EM simulation of the full CSRMT survey. Our results indicated that the developed methods can be effectively used for modeling EM responses over a realistic complex geoelectrical model for a controlled source EM survey with hundreds of receiver stations. The contraction-operator preconditioner outperformed the Green’s function preconditioner by factor of 7–10, both with respect to run-time and iteration count, and even more at higher frequencies.

Highlights

  • Controlled-source audio-magnetotellurics (CSAMT) is a popular method for mineral exploration [1,2,3,4,5]

  • Otherwise observed components of the electromagnetic field cannot be matched to the computed quasi-stationary ones; this is known as the propagation effect

  • We considered an X-oriented horizontal electric dipole (HED) located at the origin of Cartesian coordinate system and two receiver stations (Figure 2)

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Summary

Introduction

Controlled-source audio-magnetotellurics (CSAMT) is a popular method for mineral exploration [1,2,3,4,5]. Connected to CSAMT is the controlled-source radio-magnetotellurics (CSRMT) This method is gaining popularity in the near-surface geophysics [7,8,9,10,11]. In CSAMT/CSRMT setups the transmitters are grounded, making their numerical treatment more difficult comparing to the conventional audio and radio magnetotellurics (AMT/RMT), respectively. We assess performance of the two preconditioned iterative solvers introduced by the authors in [23] They have been successfully tested on MT and marine controlled-source electromagnetic (CSEM) [23] and land CSEM [24] setups. We applied the two preconditioners to quasi-stationary simulation in the CSRMT frequency range Both serial and parallel modeling performance were evaluated.

Efficient Finite-Difference Simulation
Applicability of Quasi-Statinary Simulation
Implementation stepsForward were parallelized
Numerical
Benchmark
Conductivity
Lithology explanation:
Discussion
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