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Frequency responses of ground-penetrating radars operating over highly lossy grounds

机译:在高损耗地面上运行的探地雷达的频率响应

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The finite-difference time-domain (FDTD) method is used to investigate the effects of highly lossy grounds and the frequency-band selection on ground-penetrating-radar (GPR) signals. The ground is modeled as a heterogeneous half space with arbitrary background permittivity and conductivity. The heterogeneities encompass both embedded scatterers and surface holes, which model the surface roughness. The decay of the waves in relation to the conductivity of the ground is demonstrated. The detectability of the buried targets is investigated with respect to the operating frequency of the GPR, the background conductivity of the ground, the density of the conducting inhomogeneities in the ground, and the surface roughness. The GPR is modeled as transmitting and receiving antennas isolated by conducting shields, whose inner walls are coated with absorbers simulated by perfectly matched layers (PML). The feed of the transmitter is modeled by a single-cell dipole with constant current density in its volume. The time variation of the current density is selected as a smooth pulse with arbitrary center frequency, which is referred to as the operating frequency of the GPR.
机译:有限差分时域(FDTD)方法用于研究高损耗地面和频带选择对探地雷达(GPR)信号的影响。地面被建模为具有任意背景介电常数和电导率的异质半空间。异质性包括嵌入式散射体和表面孔,它们对表面粗糙度建模。证明了波相对于地面电导率的衰减。根据GPR的工作频率,地面的背景电导率,地面中导电不均匀性的密度以及表面粗糙度,研究了掩埋目标的可探测性。 GPR建模为通过传导屏蔽隔离的发射和接收天线,其内壁覆盖有完全匹配层(PML)模拟的吸收体。发射器的馈电由体积恒定的单细胞偶极子模拟。电流密度的时间变化被选作具有任意中心频率的平滑脉冲,这被称为GPR的工作频率。

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