Anim Kyei, Lee Jung-Nam, Jung Young-Bae
Electronics Engineering Department, Hanbat National University, Daejeon 34158, Korea.
Electronics and Telecommunications Research Institute (ETRI), Daejeon 34129, Korea.
Sensors (Basel). 2021 Jun 6;21(11):3914. doi: 10.3390/s21113914.
A high-gain millimeter-wave patch array antenna is presented for unmanned aerial vehicles (UAVs). For the large-scale patch array antenna, microstrip lines and higher-mode surface wave radiations contribute enormously to the antenna loss, especially at the millimeter-wave band. Here, the element of a large patch array antenna is implemented with a substrate integrated waveguide (SIW) cavity-backed patch fed by the aperture-coupled feeding (ACF) structure. However, in this case, a large coupling aperture is used to create strongly bound waves, which maximizes the coupling level between the patch and the feedline. This approach helps to improve antenna gain, but at the same time leads to a significant level of back radiation due to the microstrip feedline and unwanted surface-wave radiation, especially for the large patch arrays. Using the SIW cavity-backed patch and stripline feedline of the ACF in the element design, therefore, provides a solution to this problem. Thus, a full-corporate feed 32 × 32 array antenna achieves realized gain of 30.71-32.8 dBi with radiation efficiency above 52% within the operational band of 25.43-26.91 GHz. The fabricated antenna also retains being lightweight, which is desirable for UAVs, because it has no metal plate at the backside to support the antenna.
本文提出了一种用于无人机(UAV)的高增益毫米波贴片阵列天线。对于大规模贴片阵列天线,微带线和高阶模式表面波辐射对天线损耗有很大影响,尤其是在毫米波频段。在此,大型贴片阵列天线的单元采用由孔径耦合馈电(ACF)结构馈电的基片集成波导(SIW)背腔贴片实现。然而,在这种情况下,使用大耦合孔径来产生强束缚波,这使得贴片与馈线之间的耦合水平最大化。这种方法有助于提高天线增益,但同时由于微带馈线和不需要的表面波辐射会导致显著的背向辐射,特别是对于大型贴片阵列。因此,在单元设计中使用ACF的SIW背腔贴片和带状线馈线为解决这个问题提供了一种方案。这样,一个全并馈32×32阵列天线在25.43 - 26.91 GHz的工作频段内实现了30.71 - 32.8 dBi的增益,辐射效率高于52%。所制造的天线还保持了轻量化,这对于无人机来说是很理想的,因为它在背面没有金属板来支撑天线。