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A self-consistent impedance method for electromagnetic surface impedance modeling

机译:用于电磁表面阻抗建模的自洽阻抗方法

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摘要

A two-dimensional, self-consistent impedance method has been derived and used to calculate the electromagnetic surface impedance above buried objects at very low frequencies. The earth half space is discretized using an array of impedance elements. Inhomogeneities in the complex permittivity of the earth are reflected in variations in these impedance elements. The magnetic field is calculated for each cell in the solution space using a difference equation derived from Faraday's and Ampere's laws. It is necessary to include an air layer above the earth's surface to allow the scattered magnetic field to be calculated at the surface. The source field is applied above the earth's surface as a Dirichlet boundary condition, whereas the Neumann condition is employed at all other boundaries in the solution space. This, in turn, enables users to use both finite and infinite magnetic field sources as excitations. The technique is shown to be computationally efficient and yields reasonably accurate results when applied to a number of one- and two-dimensional earth structures with a known surface impedance distribution.
机译:推导了一种二维自洽阻抗方法,该方法用于在非常低的频率下计算掩埋物体上方的电磁表面阻抗。地球半空间使用一系列阻抗元件离散化。地球复介电常数的不均匀性反映在这些阻抗元件的变化中。使用从法拉第定律和安培定律得出的差分方程,为溶液空间中的每个单元计算磁场。必须在地球表面上方包括一个空气层,以允许在表面计算出散射磁场。源场作为Dirichlet边界条件施加在地球表面上方,而Neumann条件则用于解空间中的所有其他边界。反过来,这使用户可以使用有限和无限磁场源作为激励。当将该技术应用于具有已知表面阻抗分布的许多一维和二维接地结构时,该技术显示出计算效率高并且产生合理准确的结果。

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