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Ka-band measurement results of the irregular near-field scanning system PAMS

机译:不规则近场扫描系统PAMS的Ka波段测量结果

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The portable antenna measurement system PAMS was developed for arbitrary and irregular near-field scanning. The system utilizes a crane for positioning of the near-field probe. Inherent positioning inaccuracies of the crane mechanics are handled with precise knowledge of the probe location within the transformation algorithm. The probe position and orientation is tracked by a laser while the near-field is being sampled. Far-field patterns are obtained by applying modern multi-level fast multipole techniques. The measurement process includes full probe pattern correction of both polarizations and takes into account channel imbalances. Because the system is designed for measuring large antennas the RF setup utilizes fiber optic links for all signals from the ground instrumentation up to the gondola, at which the probe is mounted. This paper presents results of the Ka-band test campaign in the scope of an ESA/ESTEC project. First, the new versatile approach of characterizing antennas in the near-field without precise positioning mechanics is briefly summarized. The setup inside the anechoic chamber at Airbus Ottobrunn, Germany is shown. Test object was a linearly polarized parabolic antenna with 33 dBi gain at 33 GHz. The near-fields were scanned on a plane with irregular variations of over a wavelength in wave propagation. Allowing these phase variations in combination with a non-equidistant sampling grid gives more degree of freedom in scanning with less demanding mechanics at the cost of more complex data processing. The setup and the way of on-the-fly scanning are explained with respect to the crane speed and the receiver measurement time. Far-fields contours are compared to compact range measurements for both polarizations to verify the test results. The methodology of gain determination is also described under the uncommon near-field constraint of coarse positioning accuracy. Finally, the error level assessment is outlined on the basis of the classic 18-term near-field budgets. The assessment differs in the way the impact of the field transformation on the far-field pattern is evaluated. Evaluation is done by testing the sensitivity of the transformation with a combination of measured and synthetic data.
机译:便携式天线测量系统PAMS被开发用于任意和不规则的近场扫描。该系统利用起重机来定位近场探头。起重机技工固有的定位误差可通过对变换算法中探头位置的精确了解来处理。在采样近场时,激光跟踪探头的位置和方向。远场模式是通过应用现代的多级快速多极技术获得的。测量过程包括两个极化的完全探针模式校正,并考虑了信道不平衡。因为系统是为测量大型天线而设计的,所以RF设置利用光纤链路来传输从地面仪器到安装了探头的吊船的所有信号。本文介绍了ESA / ESTEC项目范围内的Ka波段测试活动的结果。首先,简要概述了无需精确定位机制即可表征近场天线的新型通用方法。显示了位于德国空客奥托布伦的消声室内的设置。测试对象是线性极化抛物线天线,在33 GHz时增益为33 dBi。在波传播中,在一个波长范围内不规则变化的平面上扫描近场。允许将这些相位变化与非等距采样网格结合使用,可以在要求较少的机械手的情况下提高扫描的自由度,但代价是要进行更复杂的数据处理。关于起重机的速度和接收器的测量时间,说明了实时扫描的设置和方式。将远场轮廓与两种偏振的紧凑范围测量结果进行比较,以验证测试结果。增益确定的方法也在粗糙定位精度的罕见近场约束下描述。最后,基于经典的18项近场预算概述了错误级别评估。评估的不同之处在于评估场变换对远场模式的影响。通过结合实测数据和合成数据测试转换的敏感性来进行评估。

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