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首页> 外文期刊>IEEE Transactions on Antennas and Propagation >Second Higher-Order-Mode Microstrip Leaky-Wave Antenna With I-Shaped Slots for Single Main Beam Radiation in Cross Section
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Second Higher-Order-Mode Microstrip Leaky-Wave Antenna With I-Shaped Slots for Single Main Beam Radiation in Cross Section

机译:具有I形槽的第二个高阶模微带漏波天线,用于横截面中的单个主波束辐射

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摘要

This paper presents a second higher-order-mode microstrip leaky-wave antenna (LWA) for single main beam radiation. Different from its conventional second higher-order leaky-mode counterpart with two symmetric radiation beams, the proposed antenna with an array of I-shaped slots radiates only one main radiation beam at the cross-sectional center plane. By introducing a transversally loaded slot array along the microstrip line, the cross-polarization of the antenna can be largely enhanced, while a longitudinally loaded slot array interrupts the current flow and thus effectively reduces the original two radiation beams. Subsequently, an array of I-shaped slots, including transversal- and longitudinal-slot portions, is etched on the strip conductor and its unique characteristics are then analyzed to obtain a single main radiation beam in the center plane. To validate this proposal, a prototype of single main beam LWA with second higher-order mode is designed, implemented, and fabricated. Owing to larger leakage constant, the LWA presented in this paper radiates higher power within a shorter length in terms of guided wavelength, resulting in a higher gain. The measured results show a beam-scanning capability from 20 degrees to 55 degrees as the frequency varies from 5.1 to 4.6 GHz, while the maximum gain of 14.6 dBi is achieved at 4.9 GHz.
机译:本文提出了第二种用于单束主辐射的高阶模微带泄漏波天线(LWA)。与具有两个对称辐射束的常规第二高阶泄漏模式对应物不同,所提出的具有I形缝隙阵列的天线在横截面中心平面仅辐射一个主辐射束。通过沿微带线引入横向加载的缝隙阵列,可以大大增强天线的交叉极化,而纵向加载的缝隙阵列会中断电流,从而有效地减少了原来的两个辐射束。随后,在带状导体上蚀刻包括横向和纵向槽部分的I形槽阵列,然后分析其独特特性,以在中心平面中获得单个主辐射束。为了验证该建议,设计,实现和制造了具有第二高阶模式的单主光束LWA的原型。由于较大的漏电常数,本文介绍的LWA会在较短的波长范围内以导波波长辐射较高的功率,从而获得更高的增益。测量结果显示,随着频率从5.1到4.6 GHz的变化,波束扫描能力从20度到55度,而在4.9 GHz时可获得14.6 dBi的最大增益。

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