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Application of the translated-SWE algorithm for the characterization of antennas installed on cars using a minimum number of samples

机译:转换SWE算法在使用最少样本数表征汽车上天线的应用中的应用

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Automotive antenna measurements are increasingly demanding. Modern cars are equipped with a large number of integrated antennas, spanning a wide frequency range for a large number of applications. Integrated antennas are strongly coupled with the structure, final testing are thus performed on the vehicle to accurately determine the performance. The physical and electrical size of typical cars, impose different measurement challenges while performing radiated testing in automotive Spherical Near Field (SNF) ranges. At higher frequencies, the coupling between antenna and vehicle is often limited to the near vicinity of the antenna. It is therefore customary to position the vehicle in the range such that the measurement coordinate system is centered on the antenna. The sampling requirement, to represent the antenna and nearby environment, can be reduced while maintaining acceptable accuracy. In many cases, such desirable arrangement becomes impractical, either due to a high number of antennas to be tested in different positions or due to size of the range. The Translated Spherical Wave Expansion (Translated-SWE) has recently been introduced as an advanced post-processing tool to place the local coordinate system in any position within the measurement range [1-2]. This eliminate the necessity to move the vehicle during testing. In this paper, the Translated-SWE is applied to typical automotive measurements scenarios of antennas in displaced positions on vehicles. Sampling guidelines for full vehicle testing using this method are presented for the first time. Measurement accuracy is investigated experimentally on a 1:12 scaled vehicle with integrated antenna in a standard multi-probe system.
机译:汽车天线的测量要求越来越高。现代汽车配备了大量集成天线,跨越了广泛的频率范围,可满足大量应用的需求。集成天线与该结构紧密耦合,因此可以在车辆上进行最终测试以准确确定性能。在汽车球形近场(SNF)范围内进行辐射测试时,典型汽车的物理尺寸和电气尺寸会带来不同的测量挑战。在较高的频率下,天线与车辆之间的耦合通常仅限于天线附近。因此,通常将车辆定位在一定范围内,以使测量坐标系位于天线的中心。代表天线和附近环境的采样要求可以降低,同时保持可接受的精度。在许多情况下,由于在不同位置要测试的天线数量很大或范围的大小,这种理想的布置变得不切实际。最近,作为一种先进的后处理工具,平移球面波扩展(Translated-SWE)被引入,以将局部坐标系放置在测量范围内的任何位置[1-2]。这消除了在测试期间移动车辆的必要性。本文将Translated-SWE应用于车辆在位移位置的天线的典型汽车测量场景。首次提出了使用这种方法进行完整车辆测试的采样准则。在具有标准多探针系统的集成天线的1:12比例缩放车辆上,通过实验研究了测量精度。

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