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首页> 外文期刊>IEEE Antennas and Wireless Propagation Letters >Partially Filled Half-Mode Substrate Integrated Waveguide Leaky-Wave Antenna for 24 GHz Automotive Radar
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Partially Filled Half-Mode Substrate Integrated Waveguide Leaky-Wave Antenna for 24 GHz Automotive Radar

机译:用于24 GHz汽车雷达的部分填充的半模式衬底集成波导漏波天线

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摘要

A novel highly efficient leaky-wave antenna (LWA), based on a periodic set of holes created in a half-mode substrate integrated waveguide (SIW), is conceived for automotive radar. The computer-aided design of this partially filled SIW (PFSIW) LWA is carried out using a full-wave electromagnetic simulator. As a proof-of-concept, an LWA prototype having a plate size of 15 x 126 mm(2) is fabricated through a standard low-cost printed circuit board (PCB) manufacturing process. Our manufactured prototype yields more than 25% impedance bandwidth, targeting the 24 GHz automotive short-range-radar band. Moreover, the measured peak gain and total antenna efficiency reach up to 15.5 dBi and 85% at 24 GHz. Furthermore, themain radiating direction steers continuously from 38 degrees to 58 degrees with an average half-power beamwidth of 12. when the operating frequency changes from 22 to 26 GHz. In comparison, a 160 mm long dielectric-filled SIW (DFSIW) LWA yields ameasured scanning range of 49 degrees and a total antenna efficiency of 43.8%, whereas an 80.3 mm long air-filled SIW (AFSIW) LWA exhibits a measured scanning range of 9 degrees and a total antenna efficiency of 80%. Therefore, PFSIW technology provides an optimal tradeoff between DFSIW and AFSIW for the envisaged short-range automotive radar application.
机译:基于在半模式衬底集成波导(SiW)中产生的基于周期性的一组高效的漏洞波天线(LWA)被构思用于汽车雷达。使用全波电磁模拟器执行该部分填充的SIW(PFSIW)LWA的计算机辅助设计。作为概念验证,通过标准的低成本印刷电路板(PCB)制造工艺制造具有15×126mm(2)的板尺寸的LWA原型。我们制造的原型产生了超过25%的阻抗带宽,瞄准了24 GHz汽车短程雷达带。此外,测量的峰值增益和总天线效率高达15.5 dBi,在24 GHz时达到85%。此外,主题辐射方向使方向连续地从38度到58度,平均半功率波束宽度为12.当工作频率从22到26GHz变化时。相比之下,160mm长的介电填充的SiW(DFSIW)LWA产生49度的扫描范围,总天线效率为43.8%,而80.3mm长的充气SIW(AFSIW)LWA表现出测量的扫描范围9度和总天线效率为80%。因此,PFSIW技术在设想的短程汽车雷达应用中提供了DFSIW和AFSIW之间的最佳权衡。

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