Li Zhi, Yao Yuan, Xin Haiming, Xiang Daocai
EMC Research Center, China Electronics Standardization Institute, Beijing 100007, China.
School of Electronic Engineering, Beijing University of Posts and Telecommunications, Beijing 100876, China.
Sensors (Basel). 2025 Jun 15;25(12):3751. doi: 10.3390/s25123751.
This paper proposes a miniaturized design for a terahertz tri-mirror compact antenna test range (CATR) system, composed of a square-aperture paraboloid primary mirror with a side length of 0.2 m and two shaped mirrors with circular apertures of 0.06 m and 0.07 m in diameter. The design first employs the cross-polarization cancelation method based on beam mode expansion to determine the geometric configuration of the system, thereby enabling the structure to exhibit low cross-polarization characteristics. Subsequently, the shaped mirrors, with beamforming and wave-front control capabilities, are synthesized using dynamic ray tracing based on geometric optics (GO) and the dual-paraboloid expansion method. Finally, the strong edge diffraction effects induced by the small-aperture primary mirror are suppressed by optimizing the desired quiet-zone (QZ) field width, adjusting the feed-edge taper, and incorporating rolled-edge structures on the primary mirror. Numerical simulation results indicate that within the 100-500 GHz frequency band, the system's cross-polarization level is below -40 dB, while the amplitude and phase ripples of the co-polarization in the QZ are, respectively, less than 1.6 dB and 10°, and the QZ usage ratio exceeds 70%. The designed CATR was manufactured and tested. The results show that at 183 GHz and 275 GHz, the measured co-polarization amplitude and phase ripples in the system's QZ are within 1.8 dB and 15°, respectively. While these values deviate slightly from simulations, they still meet the CATR evaluation criteria, which specify QZ co-polarization amplitude ripple < 2 dB and phase ripple < 20°. The overall physical structure sizes of the system are 0.61 m × 0.2 m × 0.66 m. The proposed miniaturized terahertz tri-mirror CATR design methodology not only enhances the QZ characteristics but also significantly reduces the spatial footprint of the entire system, demonstrating significant potential for practical engineering applications.
本文提出了一种用于太赫兹三镜紧凑型天线测试场(CATR)系统的小型化设计,该系统由边长为0.2 m的方形孔径抛物面主镜以及直径分别为0.06 m和0.07 m的两个圆形孔径的成形镜组成。该设计首先采用基于波束模式展开的交叉极化抵消方法来确定系统的几何构型,从而使该结构呈现出低交叉极化特性。随后,利用基于几何光学(GO)的动态射线追踪和双抛物面展开方法合成具有波束形成和波前控制能力的成形镜。最后,通过优化所需的静区(QZ)场宽、调整馈电边缘锥度以及在主镜上采用卷边结构,抑制了小孔径主镜引起的强烈边缘衍射效应。数值模拟结果表明,在100 - 500 GHz频段内,系统的交叉极化水平低于 - 40 dB,而QZ内共极化的幅度和相位纹波分别小于1.6 dB和10°,且QZ利用率超过70%。所设计的CATR已制造并测试。结果表明,在183 GHz和275 GHz时,系统QZ内测得的共极化幅度和相位纹波分别在1.8 dB和15°以内。虽然这些值与模拟结果略有偏差,但仍满足CATR评估标准,该标准规定QZ共极化幅度纹波< 2 dB且相位纹波< 20°。系统的整体物理结构尺寸为0.61 m×0.2 m×0.66 m。所提出的小型化太赫兹三镜CATR设计方法不仅增强了QZ特性,还显著减小了整个系统的空间占用,在实际工程应用中显示出巨大潜力。