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A Novel Artificial Magnetic Material Based on a CPW Series-Connected Resonator and its Implementation in Original Applications

机译:一种基于CPW系列连接谐振器的新型人工磁性材料及其在原始应用中的实现

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In this paper, a new class of artificial magnetic materials (AMMs) based on a modified uniplanar series resonator folded to form a close-loop inclusion which contains a distributed capacitance and inductance is introduced. Many advantages of the proposed design over conventional split ring resonators are discussed. The resonant frequency at which a banstop region occurs due to the presence of negative effective permeability in the dielectric slab of the host transmission line near the resonance is calculated and compared with simulated results. Two prototype microwave devices are provided to illustrate the potentiality of the proposed inclusion; The first design represents a dual-band bandstop filter with a designed center band frequencies at 1.8 GHz and 2.4 GHz, the lumped element model of this filter contains four series-connected parallel LC resonators which are implemented using our high Q-factor AMMs patterned on the backside of a CPW transmission line. The second device is a miniaturized hybrid branch line coupler operates at 2.4 GHz; based on a special loading technique that increases the electric length of transmission lines by patterning the ground plane under the conductor trace in microstrip lines with the complementary, dual-behavior, configuration of AMMs, a miniaturization factor up to 18.41 % is achieved compared to the conventional couplers. For both design examples the simulated responses show their high performance which validates our work.
机译:在本文中,引入了一种新的一种人造磁性材料(AMM),其基于改进的Uniplanar系列谐振器折叠以形成包含分布电容和电感的闭环夹杂物。讨论了所提出的常规分流环谐振器的所提出的设计的许多优点。计算横叉部区域由于在谐振附近的主体传输线的介电板中存在负有效磁体而发生的谐振频率,并与模拟结果进行比较。提供两个原型微波器件以说明所提出的包含的潜力;第一个设计代表双频带式滤波器,具有1.8GHz和2.4 GHz的设计中心频段频率,该滤波器的集成元件模型包含四个系列连接的并联LC谐振器,该谐振器使用我们的高Q因子AMM图案化了。 CPW传输线的背面。第二装置是小型化混合分支线耦合器,在2.4 GHz下工作;基于特殊的装载技术,通过在微带线下的导体迹线下进行图案化的接地平面来增加传输线的电长,与互补,双行为,AMM的配置,相比,达到18.41%的小型化因子。传统耦合器。对于两个设计示例,模拟响应显示了它们的高性能,验证我们的工作。

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