Description of the Coupling of two Loop Antennas using Electrical Equivalent Circuit Diagrams

IF 0.6 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Maik Rogowski, S. Fisahn, H. Garbe
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引用次数: 1

Abstract

Abstract. EMC measurements must be carried out in standardized and defined measuring environments. The frequency range between 9 kHz and 30 MHz is a major challenge for measurement technology. The established test sites are designed with an perfect elelctrically conducting ground. For the considered lower frequency range, the metrological validation is carried out with magnetic field antennas in this frequency range. The aim is therefore to take into account the ferromagnetic properties of the ground plane in such a measurement environment and to describe them analytically or numerically with an electrical equivalent circuit diagram. In this article we simplify the model to two loopantennas in Freespace without groundplane to check if the approache with the ECD will work. Therefore we use various numerical field calculation programs in the frequency range up to 30 MHz. The results from simulations are to be checked for correctness with describing them analytically or numerically. For this purpose, a model consisting of two loop antennas was created and simulated in a numerical simulation program. In order to validate the results from the simulation, two different approaches to creating an electrical equivalent circuit (ECD) are examined. The first approach is based on the real equivalent circuit diagram of a coil and the second approach forms a parallel resonant circuit of the first resonance of an antennas input impedance. The focus here is on the mutual inductance, which represents the coupling between the two antennas.
用等效电路图描述两个环形天线的耦合
摘要EMC测量必须在标准化和定义好的测量环境中进行。9 kHz到30 MHz之间的频率范围是测量技术的主要挑战。已建立的试验场设计有完善的导电地面。对于所考虑的较低频率范围,使用该频率范围内的磁场天线进行了计量验证。因此,目的是在这种测量环境中考虑到地平面的铁磁特性,并用等效电路图对其进行解析或数值描述。在本文中,我们将模型简化为没有地平面的Freespace中的两个环天线,以检查ECD方法是否有效。因此,我们使用了各种数值场计算程序,频率范围高达30mhz。通过解析或数值描述来检验模拟结果的正确性。为此,建立了一个由两个环形天线组成的模型,并在数值模拟程序中进行了仿真。为了验证仿真结果,研究了创建等效电路(ECD)的两种不同方法。第一种方法基于线圈的真实等效电路图,第二种方法形成天线输入阻抗第一共振的并联谐振电路。这里的重点是互感,它表示两个天线之间的耦合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in Radio Science
Advances in Radio Science ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
0.90
自引率
0.00%
发文量
3
审稿时长
45 weeks
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