基于开口谐振环结构S频段宽带极化不敏感能量选择表面设计

    Design of Broadband Polarization-insensitive Energy Selective Surface for S-band Based on Split Resonance Ring Structure

    • 摘要: 面对复杂的高功率电磁环境,现有的大多数能量选择表面(ESS)不能同时对TE极化波、TM极化波进行防护。文中设计了一种用于屏蔽高功率微波的S频段极化不敏感ESS。该ESS基本单元由外围四个方形开口谐振环(SRR)与四个PIN二极管连接的十字形(CS)复合结构和FR-4介质层组成,基于全波电磁分析法和等效电路模型对复合结构参数进行优化并分析其传输特性。仿真结果表明,在工作频段内,该ESS的插入损耗小于1 dB,屏蔽效能超过20 dB。通过表面电场、电流分布和模拟空间电场的分析进一步阐述了其工作机制。通过电磁仿真研究了不同结构参数和不同极化模式斜入射角度对传输性能的影响。结果表明,在TE极化波和TM极化波入射下,ESS具有良好的极化不敏感性和宽角度稳定性。此外,制备的样品采用波导法进行了测试,测量结果与仿真结果基本吻合。文中设计的双极化ESS结构在高功率微波和天线罩保护领域展现出巨大的应用潜力。

       

      Abstract: In the presence of complex high-power electromagnetic fields, energy selective surfaces (ESS) often struggle to simultaneously protect against both transverse electric (TE) polarized waves and transverse magnetic (TM) polarized waves. The main goal of this study is to design a polarization insensitive ESS for high-power microwave shielding. The unit-cell of the designed ESS consists of four split resonance rings (SRR) connected with four PIN diodes and a cross shaped (CS) composite structure and a FR-4 dielectric layer. Based on full electromagnetic wave and equivalent circuit model analysis, the composite structure parameters are optimized and the transmission characteristics are analyzed. Simulation results show that the proposed ESS exhibits insertion loss of less than 1 dB and shielding effectiveness (SE) of more than 20 dB in the operating frequency band. The working mechanism of the ESS was analyzed in detail by means of surface electric field, current distribution, and simulated spatial electric field. The electromagnetic simulations were conducted to investigate the effects of different structural parameters and oblique incident angles with different polarization on transmission performance. The results show that the ESS exhibits excellent polarization insensitivity and wide angular stability under the incidence of TE polarized waves and TM polarized waves. In addition, the prepared samples were tested by the waveguide test method, and the measurement results were found to be in good agreement with the simu-lation results. The proposed dual-polarization protected ESS structure has significant application potentials in the field of high-power microwave and radome protection.

       

    /

    返回文章
    返回