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Field Intercomparison of Radiometers Used for Satellite Validation in the 400–900 nm Range

机译:用于400–900 nm范围内的卫星验证的辐射计的现场比对

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An intercomparison of radiance and irradiance ocean color radiometers (the second laboratory comparison exercise—LCE-2) was organized within the frame of the European Space Agency funded project Fiducial Reference Measurements for Satellite Ocean Color (FRM4SOC) May 8–13, 2017 at Tartu Observatory, Estonia. LCE-2 consisted of three sub-tasks: (1) SI-traceable radiometric calibration of all the participating radiance and irradiance radiometers at the Tartu Observatory just before the comparisons; (2) indoor, laboratory intercomparison using stable radiance and irradiance sources in a controlled environment; (3) outdoor, field intercomparison of natural radiation sources over a natural water surface. The aim of the experiment was to provide a link in the chain of traceability from field measurements of water reflectance to the uniform SI-traceable calibration, and after calibration to verify whether different instruments measuring the same object provide results consistent within the expected uncertainty limits. This paper describes the third phase of LCE-2: The results of the field experiment. The calibration of radiometers and laboratory comparison experiment are presented in a related paper of the same journal issue. Compared to the laboratory comparison, the field intercomparison has demonstrated substantially larger variability between freshly calibrated sensors, because the targets and environmental conditions during radiometric calibration were different, both spectrally and spatially. Major differences were found for radiance sensors measuring a sunlit water target at viewing zenith angle of 139° because of the different fields of view. Major differences were found for irradiance sensors because of imperfect cosine response of diffusers. Variability between individual radiometers did depend significantly also on the type of the sensor and on the specific measurement target. Uniform SI traceable radiometric calibration ensuring fairly good consistency for indoor, laboratory measurements is insufficient for outdoor, field measurements, mainly due to the different angular variability of illumination. More stringent specifications and individual testing of radiometers for all relevant systematic effects (temperature, nonlinearity, spectral stray light, etc.) are needed to reduce biases between instruments and better quantify measurement uncertainties.
机译:2017年5月8日至13日,在欧洲航天局资助的项目“卫星海洋颜色基准参考测量”(FRM4SOC)的框架内,组织了辐射度和辐照度海洋色辐射仪的比对(第二次实验室比较练习-LCE-2)爱沙尼亚天文台。 LCE-2包括三个子任务:(1)在比较之前,塔尔特天文台对所有参与的辐射度和辐照度辐射计进行SI跟踪的辐射度校准; (2)在可控环境中使用稳定的辐射和辐照源进行室内,实验室比对; (3)在自然水面上的室外,自然辐射源的现场比对。该实验的目的是在从水反射率的现场测量到统一的SI可追溯校准的可追溯性链中提供一个链接,并在校准后验证用于测量同一对象的不同仪器是否在预期的不确定性范围内提供一致的结果。本文介绍了LCE-2的第三阶段:现场实验的结果。同一期刊的相关论文中介绍了辐射计的校准和实验室比较实验。与实验室比较相比,现场比对显示了新校准的传感器之间的较大差异,这是因为辐射校准期间的目标和环境条件在光谱和空间上都不同。由于视场不同,在以139度的天顶角测量日照水目标的辐射传感器中发现了主要差异。由于散射体的余弦响应不完美,因此辐照度传感器存在主要差异。各个辐射计之间的差异确实也很大程度上取决于传感器的类型和特定的测量目标。统一的SI可溯源辐射定标,确保室内,实验室测量的一致性非常好,不足以进行室外,野外测量,这主要是由于照明的角度可变性不同。为了降低仪器之间的偏差并更好地量化测量不确定度,需要针对所有相关系统效应(温度,非线性,光谱杂散光等)的辐射计进行更严格的规范和单独测试。

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