人体可穿透介质板聚焦毫米波散射模拟

A. Morgenthaler, C. Rappaport
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引用次数: 0

摘要

预测3D毫米波近场雷达建模需要在计算尺寸和精度之间进行具有挑战性的权衡。对于光栅扫描聚焦点天线系统,聚焦阵列天线和目标区域都必须进行精细、充分的采样,但中间空间较大,计算空间巨大。为了在距离上只有物质变化的情况下沿目标几何形状的轴线聚焦,可以将发射机/接收机阵列及其与目标的距离按2或4倍进行缩放。但是,即使是少量的离轴聚焦,也必须小心地进行缩放,以避免可能错过缩放的收发器阵列的镜面反射光线。基于射线分析、偶极子解析阵列和准轴对称有限差分频域(QAFDFD)的模拟结果比较好。然而,只有QAFDFD可以模拟大地平面存在下的目标边缘效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling Focused CW Mm-Wave Scattering of a Penetrable Dielectric Slab Affixed to a Human Body
Predictive 3D mm-wave nearfield radar modeling requires challenging tradeoffs between computational size and accuracy. For raster-scanned focused spot antenna systems, both the focusing array antenna and the target region must be finely and fully sampled, but the intervening space is large, making the computational space huge. For focusing along the axis in target geometries with only material variation in range, it is possible to scale the transmitter/receiver array and its range to target by a factor of two or four. But for even small amounts of off-axis focusing, the scaling must be done with care to avoid specular reflected rays that might miss the scaled transceiver array. Simulations based on ray analysis, analytic arrays of dipoles, and Quasi-Axisymmetric Finite Difference Frequency Domain (QAFDFD) compare well with each other. Only QAFDFD, however, can model target edge effects in the presence of large ground planes.
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