基于介质匹配层阻抗渐变的超宽带紧耦合阵列天线设计

Design of an ultra-wideband tightly coupled array antenna based on dielectric matching layer impedance gradient

  • 摘要: 针对传统紧耦合阵列采用单一介质匹配层而导致天线剖面高、重量大的问题,提出一种基于多层介质阻抗渐变的轻量化设计方法。基于等效电路与传输线模型,分析了介质—空气界面阻抗突变引起的低频失配机理,提出采用Rogers RO4350B基板以及介电常数依次减小的F4B、PTFE材料构建匹配层阻抗渐变结构。对不同厚度组合的介质层进行了仿真优化,表明采用这种双层阻抗渐变结构,能够有效提升紧耦合阵列的阻抗匹配性能;随着匹配层总厚度减小,阵列下限截止频率升高,总厚度小于1 mm后,下限频率基本保持不变。综合考虑工作带宽与工程可行性,采用0.5 mm+0.5 mm双层阻抗渐变结构研制天线样机,实测其电压驻波比≤3的工作频段为313 MHz~6.77 GHz,带宽比为21.63∶1,剖面高度为下限频率波长的5.3%。与现有5 mm单层Rogers RO4350B匹配结构相比,阵列样机整体减重41.7%,有效电势增益提高40.9%,实现轻量化的同时,提高了天线的辐射性能,为超宽谱高功率微波辐射系统的轻量化设计奠定了技术基础。

     

    Abstract:
    Background Tightly coupled array (TCA) generally employ dielectric matching layers to achieve ultrawideband radiation. Conventional TCA use a single dielectric matching layer, which must be relatively thick to maintain low-frequency impedance matching, thereby increasing the antenna profile and mass.
    Purpose This study proposes a lightweight TCA design based on a multilayer graded-impedance dielectric matching structure to reduce the profile and mass while maintaining ultrawideband performance.
    Methods Equivalent-circuit and transmission-line models were used to analyze the low-frequency mismatch caused by the abrupt impedance transition at the dielectric-air interface. A graded matching structure was constructed using a Rogers RO4350B substrate and F4B and PTFE layers arranged in descending order of relative permittivity. Several matching-layer thickness combinations were simulated and optimized. Considering both operating bandwidth and engineering feasibility, a six-element prototype with a 0.5 mm + 0.5 mm double-layer configuration was fabricated, and its voltage standing-wave ratio, pulsed-radiation characteristics, effective potential gain, and mass were measured.
    Results The double-layer graded-impedance structure effectively improved the impedance matching of the TCA. As the total matching-layer thickness decreased, the lower cutoff frequency increased; when the total thickness was reduced from 1 mm to 0.5 mm, the lower cutoff frequency remained nearly unchanged. The measured active voltage standing-wave ratio was not greater than 3 from 313 MHz to 6.77 GHz, corresponding to a bandwidth ratio of 21.63∶1. The profile was 5.3% of the free-space wavelength at the lower cutoff frequency. Compared with the reference array using a 5 mm single-layer Rogers RO4350B matching structure, the total mass of the prototype was reduced by 41.7%, and the effective potential gain was increased by 40.9%.
    Conclusions The proposed graded-impedance dielectric matching structure achieves substantial profile and mass reduction while preserving ultrawideband impedance matching and improving pulsed-radiation performance. It provides a practical basis for the lightweight design of ultrawideband high-power microwave radiation systems.

     

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