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Performance improvement of closely coupled Loop antenna by shielding effect of planar negative permeability SRR and OCSRR and Thin Wire Metamaterial

机译:平面负渗透性SRR和OCSRR和薄线超材料屏蔽效果屏蔽耦合环路的性能改进

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Though less physical separation between two loop antenna make the compact design but increases electromagnetic interference due to near and far field radiations and also due to surface waves. This disturbs antenna parameters. To avoid effect of mutual coupling for the same physical separation, mutual coupling between two antennas should decrease. Two loop antennas are separated by the distance of λ/16 which is approximately 7.8mm at 2.5 GHz. Array of Thin Wire Metamaterial which exhibits negative permittivity at 2.5 GHz is inserted at the center of both antennas. Insertion of this array diverts phase vector due to surface wave and near field radiations. Almost 40 dB enhancement in isolation is observed over impedance band of 800 MHz. This has also corrected far field radiation pattern. Split Ring resonator which exhibits negative permeability is etched on the patch side and Open Complementary SRR which exhibits negative permittivity is etched on ground plane for two loop antennas. The complete structure is fabricated on FR4. To neglect the loss tangent for FR4, sufficient amount of return loss in dB over the desired frequency band at plasma frequency was considered. SRR along with OCSRR lengthen the path for current propagation which optimizes the dimensions of Unit Cell Metamaterial to fit in the available space at desired plasma frequency. The proposed antenna structure is composed of two Loop antennas occupying a space with the dimensions of 47mm*24mm*2mm and three Metamaterial Unit Cells. Placement of Metamaterial cell improves the isolation almost by -45 dBs. Remarkable improvement in -10 dB impedance bandwidth had been observed at 2.5 GHz. Proposed technique improves the impedance bandwidth for loop antenna for same number of loops and also improves its radiation pattern for minimum physical separation between loop antennas. This also helps to reduce overall dimensions. This leads frequency selective system over desired band.
机译:虽然两个环路天线之间的物理分离较少,但是由于近乎和远场辐射而增加电磁干扰,并且还因表面波而增加。这扰乱了天线参数。为避免对相同物理分离的相互耦合的影响,两个天线之间的相互耦合应该减小。两个环形天线被λ/ 16的距离分开,距λ/ 16的距离为大约为7.8mm,在2.5 ghz。在2.5 GHz下表现出负介电常数的细线超材料阵列插入了两个天线的中心。由于表面波和近场辐射,将该阵列的插入转移相位载体。在800MHz的阻抗带上观察到近40 dB的增强。这也纠正了远场辐射模式。在贴片侧蚀刻出现负渗透性的分开环谐振器,并在接地平面上蚀刻在两个环形天线上蚀刻出负介电常数的打开互补SRR。完整的结构在FR4上制造。为了忽略FR4的损失切线,考虑了在等离子体频率下的所需频带上的足够量的DB返回损耗。 SRR以及OCSRR延长了当前传播的路径,该路径优化了单位电池超材料的尺寸以适应所需等离子体频率的可用空间。所提出的天线结构由两个环形天线构成,占据具有47mm * 24mm * 2mm和三个超材料单元电池的尺寸的空间。超材料细胞的位置几乎通过-45 dbs来改善隔离。在2.5 GHz中观察到-10 dB阻抗带宽的显着改善。所提出的技术改善了用于相同数量的环路的循环天线的阻抗带宽,并且还改善了其辐射图案,用于循环天线之间的最小物理分离。这也有助于减少整体尺寸。这引发了频率选择系统上所需的频带。

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