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Accurate Measurement of the True Plane-Wave Shielding Effectiveness of Thick Polymer Composite Materials via Rectangular Waveguides

机译:通过矩形波导精确测量厚聚合物复合材料的真平面波屏蔽效能

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摘要

This paper presents a methodology for accurately gauging the true plane wave shielding effectiveness of composite polymer materials via rectangular waveguides. Since the wave propagation of the waveguides is not in the form of plane wave patterns, it is necessary to post-process the S-parameters for the measured data of the waveguide lines to obtain such patterns and ascertain the effectiveness of true plane wave shielding. The authors propose two different methods to achieve this. The first applies simple renormalization of S-parameters, where reference impedance is changed from the value for the waveguide to that for free space, which ensures good accuracy of shielding effectiveness with a small degree of discontinuity across the range of frequencies. The other relies on rigorous extraction of the composite materials’ effective permittivity and permeability ascertained from rectangular waveguides; afterward, plane wave shielding effectiveness is calculated analytically and gives very high accuracy. Both procedures assume the given samples are isotropic in character. We validated the accuracy of the methodologies by conducting tests on a set of synthetic samples of 2 mm thickness with unit permittivity and variable conductivity and on a dielectric material of known permittivity (FR4 laminate). The applicability of both methods was further proven by analyzing the isotropic composite materials, a process involving the use of iron particles embedded in a dielectric matrix. The synthetic samples and an FR4 material were tested to check the accuracy of the methods. Based on numerical studies and measurements, we concluded that materials with a shielding effectiveness of up to 25 dB could be measured at a maximum amplitude error of 1 dB to 3dB to a frequency of 18 GHz, depending on the relative permittivity of the material; hence, the first method was suitable for approximation purposes. For maximal accuracy, the second method typically demonstrated an amplitude error of below 0.5 dB to the same frequency across the entire range.
机译:本文提出了一种通过矩形波导精确测量复合聚合物材料的真实平面波屏蔽效果的方法。由于波导的波传播不是平面波图形的形式,因此有必要对波导线的测量数据的S参数进行后处理以获得这种图形并确定真实平面波屏蔽的有效性。作者提出了两种不同的方法来实现这一目标。第一种方法是对S参数进行简单的重新归一化,其中参考阻抗从波导的值更改为自由空间的值,从而确保了屏蔽效果的良好准确性,并且在整个频率范围内具有较小的不连续性。另一种方法是从矩形波导中严格提取复合材料的有效介电常数和磁导率。之后,通过分析计算出平面波屏蔽效果,并给出了很高的精度。两种方法均假定给定的样本具有各向同性的特征。我们通过对一组2 mm厚度,单位电容率和可变电导率的合成样品以及已知介电常数的电介质材料(FR4层压板)进行测试,验证了方法学的准确性。两种方法的适用性通过分析各向同性复合材料得到了进一步证明,该过程涉及使用嵌入电介质基体中的铁颗粒。测试了合成样品和FR4材料,以检查方法的准确性。根据数值研究和测量,我们得出结论,根据材料的相对介电常数,可以在频率范围为18 GHz的最大幅度误差为1 dB至3dB的情况下,测量屏蔽效率最高为25 dB的材料。因此,第一种方法适合于近似目的。为了获得最大的精度,第二种方法通常在整个范围内对同一频率显示低于0.5 dB的幅度误差。

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