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Design of multiband metamaterial absorber based on artificial magnetic conductor

机译:基于人工磁导体的多频带超材料吸收器设计

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We present a general method to design multiband absorber by replacing the ground plane in a conventional metamaterial absorber with an artificial magnetic conductor. Due to its unique property of in-phase reflection at some specific frequency, the artificial magnetic conductor is used to introduce new absorption in the operation band. Meanwhile, out of the in-phase reflection band, the original absorbing capability of the absorber is reserved. To demonstrate it, we design a metamaterial absorber comprising three layers which are grids patterned resistive frequency selective surface, dielectric layer and the ground plane respectively. With an appropriate design, the absorber performs an absorbing peak at about 10 GHz. Then, we utilize a single band artificial magnetic conductor at 6.25 GHz and a dual-band one at 6.27 GHz and 8.17 GHz, which are both lossy and comprised of patches array varying in periodic size with a thickness of 0.6 mm, to replace the ground plane in the metamaterial absorber separately. The reflectivity of these multiband absorbers are simulated, and experiments are carried out later. Experimental results agree well with the simulations. All results verified that the method presented at the beginning is effective. The results show that additional absorptions exist at the frequencies where microwaves are nearly reflected in phase on the artificial magnetic conductor. Meanwhile the original absorbing capability of the metamaterial absorber has been preserved mostly. Based on the artificial magnetic conductor, the multiband absorber performs better with an increasing absorption bandwidth from 8.5 GHz to 10 GHz compared to the metamaterial absorber.
机译:我们提出了一种通用方法,通过用人造磁导体代替常规超材料吸收器中的接地层来设计多频带吸收器。由于其在某些特定频率上的同相反射的独特特性,人造磁导体被用于在工作频带中引入新的吸收。同时,在同相反射带之外,保留了吸收体的原始吸收能力。为了证明这一点,我们设计了一种超材料吸收器,该吸收器包括三层,分别是网格构图的电阻频率选择表面,介电层和接地层。通过适当的设计,吸收器会在约10 GHz处产生吸收峰。然后,我们使用6.25 GHz的单波段人造磁导体和6.27 GHz和8.17 GHz的双波段人造磁导体,它们都是有损耗的,并且由周期大小各异的贴片阵列组成,厚度为0.6 mm,以替换地面在超材料吸收器中分别平面。模拟了这些多波段吸收体的反射率,随后进行了实验。实验结果与仿真结果吻合良好。所有结果都证明了本文开头提出的方法是有效的。结果表明,在人造磁导体上微波几乎同相反射的频率处存在额外的吸收。同时,大部分保留了超材料吸收体的原始吸收能力。与超材料吸收器相比,基于人造磁导体的多频带吸收器在从8.5 GHz到10 GHz的吸收带宽增加的情况下表现更好。

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