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Asymmetric micro-Doppler frequency comb generation via magnetoelectric coupling

机译:磁电耦合产生非对称微多普勒频率梳

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摘要

Electromagnetic scattering from moving bodies, being an inherently time-dependent phenomenon, gives rise to a generation of new frequencies, which can be used to characterize the motion. Whereas an ordinary motion along a linear path produces a constant Doppler shift, an accelerated scatterer can generate a micro-Doppler frequency comb. The spectra produced by rotating objects were studied and observed in a bistatic lock-in detection scheme. The internal geometry of a scatterer was shown to determine the spectrum, and the degree of structural asymmetry was suggested to be identified via signatures in the micro-Doppler comb. In particular, hybrid magnetoelectric particles, showing an ultimate degree of asymmetry in forward and backward scattering directions, were investigated. It was shown that the comb in the backward direction has signatures at the fundamental rotation frequency and its odd harmonics, whereas the comb of the forward scattered field has a prevailing peak at the doubled frequency and its multiples. Additional features of the comb were shown to be affected by the dimensions of the particle and by the strength of the magnetoelectric coupling. Experimental verification was performed with a printed circuit board antenna based on a wire and a split ring, while the structure was illuminated at a 2 GHz carrier frequency. Detailed analysis of micro-Doppler combs enables remote detection of asymmetric features of distant objects and could find use in a span of applications, including stellar radiometry and radio identification.
机译:来自运动物体的电磁散射是一种固有的与时间相关的现象,会产生新的频率,可用于表征运动。沿着线性路径的普通运动会产生恒定的多普勒频移,而加速的散射体会产生微多普勒频梳。在双基地锁定检测方案中研究和观察了旋转物体产生的光谱。显示了散射体的内部几何形状来确定光谱,并且建议通过微多普勒梳中的特征来识别结构的不对称程度。特别地,研究了在向前和向后散射方向上显示出最终的不对称程度的混合磁电粒子。结果表明,后向梳在基本旋转频率及其奇次谐波处具有特征,而前向散射场的梳在双倍频率及其倍数处具有占优势的峰值。梳子的其他特征显示受粒子尺寸和磁电耦合强度的影响。使用基于电线和开口环的印刷电路板天线进行了实验验证,同时以2 GHz载波频率对结构进行了照明。对微多普勒梳的详细分析能够远程检测远处物体的不对称特征,并可以在包括恒星辐射测量和无线电识别在内的多种应用中找到用途。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第23期|235139.1-235139.7|共7页
  • 作者单位

    School of Electrical Engineering, Tel Aviv University, Tel Aviv 69978, Israel,Information Technologies, Mechanics and Optics (HMO) University, St. Petersburg 197101, Russia;

    School of Electrical Engineering, Tel Aviv University, Tel Aviv 69978, Israel;

    School of Electrical Engineering, Tel Aviv University, Tel Aviv 69978, Israel,Information Technologies, Mechanics and Optics (HMO) University, St. Petersburg 197101, Russia;

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