减小u槽和l探针宽带贴片天线的贴片尺寸

A. Shackelford, Kai-fong Lee, D. Chatterjee
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引用次数: 11

摘要

同轴馈电u槽矩形贴片天线和l探针馈电矩形贴片天线是近年来发展起来的两种单层单贴片宽带微带贴片天线。在这两种情况下,第二个共振是通过u型槽或l型探头在主贴片共振附近引入的。u型槽或l型探头还引入电容,抵消同轴馈电的电感,允许使用厚衬底(0.08-0.1 /spl Lambda//sub 0/),其中/spl Lambda//sub 0/是自由空间波长。使用泡沫基板(/spl epsiv//sub //spl ap/1),这些天线在基模下工作的阻抗带宽在30-40%范围内,具有稳定的方向图和增益特性。这些带宽对于大多数无线通信应用来说是绰绰有余的。基模的共振长度约为自由空间波长的一半。对于许多应用程序,减小贴片的大小以节省实际空间是可取的。因此,人们对贴片尺寸减小技术进行了广泛的研究。一种方法是使用值为/spl epsiv//sub />1的微波衬底。另一种方法是在零电场位置加短壁,使谐振长度减半,产生四分之一波贴片。还有一种方法是在馈线附近使用短针。这将电容耦合引入到贴片谐振中,从而增加有效/spl epsiv//sub r/,并降低频率,这意味着对于给定的谐振频率,贴片尺寸变小。本文介绍了其中一些研究的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On reducing the patch size of U-slot and L-probe wideband patch antennas
The coaxially-fed U-slot rectangular patch antenna and the L-probe fed rectangular patch antenna are two recently developed single-layer single-patch wideband microstrip patch antennas. In both cases, a second resonance is introduced near the main patch resonance, either by the U-slot or by the L-probe. The U-slot or the L-probe also introduce a capacitance which counteracts the inductance of the coaxial feed, allowing for the use of thick substrates (0.08-0.1 /spl Lambda//sub 0/) where /spl Lambda//sub 0/ is the free space wavelength. Using foam substrates (with /spl epsiv//sub r//spl ap/1) the impedance bandwidths of these antennas operating in the fundamental mode are in the 30-40% range, with stable pattern and gain characteristics. These bandwidths are more than sufficient for most wireless communication applications. The resonant length of the fundamental mode is about half of the free space wavelength. For many applications, it is desirable to reduce the size of the patch to conserve real estate space. For this reason, there have been extensive investigations on patch size reduction techniques. One method uses microwave substrates with values of /spl epsiv//sub r/>1. Another method uses a shorting wall at the location of zero electric field so that the resonant length is halved, resulting in the quarter-wave patch. Yet another method uses a shorting pin near the feed. This introduces capacitive coupling to the patch resonance, thereby increasing the effective /spl epsiv//sub r/, and reducing the frequency, which means that, for a given resonant frequency, the patch size becomes smaller. In this paper, results of some of these investigations are presented.
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