Emulating Variable Spherical Wave by Compact Zoom Range

Zhiping Li, Yongheng Zhao, Peng Huo
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Abstract

The aims of this work are to propose a fast and efficient spherical wave synthesis (SWS) approach and demonstrate the physical feasibility of emulating desired spherical wave in a compact range by a reflector compact zoom range (CZR). The intersection approach (IA) and near-field (NF) transmission in the spatial and angular spectrum domain is fundamental theory of the SWS approach. The goal of the SWS approach is calculating the aperture source plane field that can generate a required spherical wave in test quiet zone (QZ). To find the intersection of achieved aperture source plane field and desired aperture source plane field, alternating projection (AP) correction is applied in the SWS approach. A Fourier transform pair relates the near field between the spatial and the angular spectrum domain, so Fast Fourier Transform (FFT) is utilized to accelerate AP correction between the aperture source plane and spherical wave field plane. The aperture source field calculated by the SWS approach is mathematical foundation of generating variable spherical wave in a compact range. For validating the physical feasibility of synthesizing a variable spherical wave environment, a reflector CZR is designed and simulated a high-performance spherical wave whose virtual source is 200 m away from QZ by full wave tool.
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紧凑变焦范围模拟可变球面波
本文的目的是提出一种快速有效的球面波合成方法,并论证了用反射镜紧凑变焦范围(CZR)在紧凑范围内模拟所需球面波的物理可行性。空间和角谱域的交会方法和近场传输是SWS方法的基本理论。SWS方法的目标是计算能够在测试安静区(QZ)产生所需球面波的孔径源平面场。为了求出所得孔径源面场与期望孔径源面场的交点,在SWS方法中采用交替投影(AP)校正。傅里叶变换对将近场空间域与角谱域联系起来,利用快速傅里叶变换(Fast Fourier transform, FFT)加速孔径源面与球面波场面之间的AP校正。SWS法计算的孔径源场是产生小范围变球面波的数学基础。为了验证合成可变球面波环境的物理可行性,设计了反射器CZR,并利用全波工具模拟了虚拟源距QZ 200 m的高性能球面波。
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