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Extraction of Illumination Efficiency by Solely Radiometric Measurements for Improved Brightness-Temperature Characterization of Microwave Blackbody Target

机译:通过仅辐照度测量提取照明效率以改善微波黑体靶的亮度-温度特性

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摘要

We report our recent progress toward the development of microwave brightness-temperature (BT) standards. As one of the crucial parameters, the target illumination efficiency (IE) was traditionally determined from the relative antenna pattern. We propose a measurement technique to extract the target IE solely by the use of passive radiometric measurements for characterizing the BT of the blackbody radiator. Such a technique allows us to skip the complexities that are often encountered during the measurement and calculation of the antenna pattern. Taking advantage of the variable heating capability available on most blackbody targets, we varied the temperature of a heated blackbody target and ran a series of radiometric measurements when the target was separated at different distances away from the the antenna with the radiometer operating at a few frequencies. Our experimental results show excellent measurement accuracy on the IE, with uncertainty of about 1% at close separation distance between the antenna and the target. We further measured and computed the BT of the blackbody target at the locations where we had measured the extracted IE. The BT was slightly lower than the physical temperature of the target and exhibited 0.7 K to about 1 K uncertainty when the target was located no more than 1 m away from the antenna. A measurement uncertainty of 1 K already meets the accuracy requirements of some climate variables, and such results reflect a significant step toward the establishment of BT standards at microwave frequencies.
机译:我们报告了我们在开发微波亮度-温度(BT)标准方面的最新进展。作为关键参数之一,传统上是根据相对天线方向图确定目标照明效率(IE)。我们提出一种测量技术,仅通过使用被动辐射测量来提取目标IE,以表征黑体辐射器的BT。这种技术使我们可以跳过在天线方向图的测量和计算过程中经常遇到的复杂性。利用大多数黑体目标的可变加热能力,我们改变了加热的黑体目标的温度,并在以几个频率运行的辐射计将目标与天线隔开不同距离的情况下,进行了一系列辐射测量。我们的实验结果表明,在IE上具有出色的测量精度,在天线与目标之间的近距离处,不确定度约为1%。我们进一步在测量提取的IE的位置测量并计算了黑体目标的BT。 BT略低于目标物的物理温度,并且当目标物距天线的距离不超过1 m时,其不确定性为0.7 K至约1K。 1 K的测量不确定度已经满足某些气候变量的精度要求,并且这些结果反映了朝着建立微波频率BT标准迈出的重要一步。

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