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Correction of non-ideal probe orientations for spherical near-field antenna measurements

机译:用于球形近场天线测量的非理想探头方向的校正

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Spherical near-field scanning is a standard method to measure the radiation characteristic of an antenna under test (AUT). Due to the required near-field to far-field transformation of the measured data, an accurate position and orientation of the probe during the measurement is crucial. This might be difficult to achieve if, for example, a robotic arm system is used to position the probe. Different methods for correction of non-ideal measurement positions have been presented in the past. In contrast, the related non-ideal probe orientations in a spherical near-field measurement system have not been comprehensively analyzed due to the assumption that the error is small since the probe receiving pattern is typically broad (e.g. an open-ended waveguide). In this paper, it is shown that non-ideal probe orientations can be included in the spherical near-field to far-field transformation. This is achieved by additional rotations of the probe receiving coefficients in the probe response calculation. The introduced pointwise higher-order probe correction scheme allows an exact spherical wave expansion of the radiated AUT field. The proposed method is used to investigate the error due to non-ideal probe orientations by simulation and measurement. The presented results can be used to estimate the error due to non-ideal probe orientations. It is verified that the error is typically small compared to other error sources in a practical measurement even if a directive higher-order probe is used. Nevertheless, including the probe orientation generally improves the accuracy of the measurement result.
机译:球形近场扫描是测量下测试天线(AUT)的辐射特性的标准方法。由于所需的近场到测量数据的远场变换,测量期间探针的精确位置和取向至关重要。例如,如果例如,机器人臂系统用于定位探针,这可能难以实现。过去介绍了不同的校正非理想测量位置的方法。相反,由于误差较小的假设通常宽(例如,开放式波导),因此尚未全面地分析球形近场测量系统中的相关非理想探针取向。在本文中,示出了非理想的探针方向可以包括在球形近场中到远场变换。这是通过在探测响应计算中的探针接收系数的额外旋转来实现的。引入的点亮高阶探针校正方案允许辐射自动节场的精确球形波扩展。所提出的方法用于通过模拟和测量来研究由于非理想探测方向引起的误差。所呈现的结果可用于估计由于非理想探针方向引起的误差。验证,即使使用指令高阶探针,误差通常在实际测量中与其他误差源相比很小。然而,包括探头方向通常提高测量结果的准确性。

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