학술논문

A Domain-Decomposition-Based Surface Integral Equation Simulator for Characterizing EM Wave Propagation in Mine Environments
Document Type
Periodical
Source
IEEE Transactions on Antennas and Propagation IEEE Trans. Antennas Propagat. Antennas and Propagation, IEEE Transactions on. 71(6):5133-5144 Jun, 2023
Subject
Fields, Waves and Electromagnetics
Aerospace
Transportation
Components, Circuits, Devices and Systems
Surface waves
Propagation
Ores
Memory management
Magnetic tunneling
Magnetic domains
Integral equations
Butterfly-based direct solver
domain decomposition (DD)
electromagnetic (EM) wave propagation
fast Fourier transform (FFT)
fast multipole method (FMM)
mine tunnels
path loss
surface integral equation (SIE)
Language
ISSN
0018-926X
1558-2221
Abstract
A domain-decomposition (DD)-based surface integral equation (SIE) technique for simulating electromagnetic (EM) wave propagation in large and realistic mine environments is proposed. After partitioning the mine into subdomains, the simulator characterizes EM wave propagation in each subdomain using a butterfly-based direct solver in conjunction with a fast multipole method (FMM)–fast Fourier transform (FFT) iterative scheme. Next, it constructs and solves a composite system characterizing inter-domain interactions. The simulator requires fewer CPU and memory resources than conventional SIE simulators to analyze EM wave propagation in electrically large mine environments. When applied to mines composed of a small set of identical “building blocks,” the simulator’s computational and memory requirements scale logarithmically as opposed to quasi-linearly with mine size. When used in closed-loop uncertainty quantification or wireless node placement studies, the simulator realizes additional computational savings by recycling many computations performed offline. Numerical results demonstrate the simulator’s accuracy and applicability to mine tunnels and galleries with arbitrary cross sections, rough walls, and debris from a partial cave-in.