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Design methodology for Sievenpiper high-impedance surfaces: an artificial magnetic conductor for positive gain electrically small antennas

机译:Sievenpiper高阻抗表面的设计方法:用于正增益电小型天线的人造磁导体

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The Sievenpiper high-impedance surface is a periodic structure characterized by a substrate filled with an array of vertical vias, capped by a capacitive frequency selective surface (FSS). It functions as the ideal antenna groundplane for wireless applications because it simultaneously enhances the gain of the antenna as it suppresses the surface waves associated with it (thus reducing the undesired back-lobe and the reactive coupling to nearby circuits). These two properties are known to occur approximately over the frequency bandwidth where the phase of the reflection coefficient of the surface changes from +90° to -90°. Since this behavior takes place at frequencies where the unit cell of the structure is small compared to the wavelength, it can be modeled in terms of a layered homogeneous material where each layer has an anisotropic magneto-dielectric tensor. These tensors, readily derived using an effective medium model, can be designed to obtain independent control of the bandwidths of gain increase and surface wave suppression. Based on a transverse resonance model of the effective medium material model, it is shown that Sievenpiper high-impedance surfaces exist that can suppress TE surface waves alone or TM surface waves alone, or both TE and TM surface waves at the same time. Maximum TM surface wave suppression bandwidth is obtained when the distance between the vias in the via array is as close as possible to λ/2. Maximum TE bandwidth is obtained when the conductors of the capacitive FSS offer maximum blockage to the normal magnetic field of the wave. A reduction of the transverse resonance solution to nearly closed form is used to obtain a simple picture of the design space available when the desired operating frequency is fixed.
机译:Sievenpiper高阻抗表面是一种周期性结构,其特征在于衬底填充有垂直通孔阵列,并由电容性频率选择表面(FSS)覆盖。它可作为无线应用的理想天线接地板,因为它在抑制与之相关的表面波的同时提高了天线的增益(从而减少了不需要的后瓣和与附近电路的无功耦合)。已知这两个属性大约在整个频率带宽上发生,在该频率带宽上,表面的反射系数的相位从+ 90°变为-90°。由于此行为发生在与波长相比结构的单位晶胞较小的频率上,因此可以用层状均质材料进行建模,其中每层均具有各向异性的磁介电张量。可以使用有效的介质模型轻松得出这些张量,以对增益增加和表面波抑制的带宽进行独立控制。基于有效介质材料模型的横向共振模型,表明存在Sievenpiper高阻抗表面,可以单独抑制TE表面波或单独抑制TM表面波,或同时抑制TE和TM表面波。当过孔阵列中过孔之间的距离尽可能接近λ/ 2时,可获得最大的TM表面波抑制带宽。当电容性FSS的导体对波的法向磁场提供最大的阻挡时,可获得最大的TE带宽。将横向共振解简化为近乎封闭的形式用于获得固定所需工作频率时可用的设计空间的简单图。

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