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Nocturnal aerosol optical depth measurements with modified sky radiometer POM-02 using the moon as a light source

机译:夜间气溶胶光学深度测量与改进的天空辐射计POM-02使用月球作为光源

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The majority of aerosol data are obtained from daytime measurements, and there are few datasets available for studying nighttime aerosol characteristics. In order to estimate the aerosol optical depth (AOD) and the precipitable water vapor (PWV) during the nighttime using the moon as a light source, a sky radiometer (POM-02, Prede Ltd., Japan) was modified. The amplifier was adjusted so that POM-02 could measure lower levels of input irradiance. In order to track the moon based on the calculated values, a simplified formula was incorporated into the firmware. A new position sensor with a four-quadrant detector to adjust the tracking of the Sun and moon was also developed. The calibration constant, which is the sensor output for the extraterrestrial solar and lunar irradiance at the mean Earth–Sun distance, was determined by using the Langley method. The measurements for the Langley calibration were conducted at the National Oceanic and Atmospheric Administration/Mauna Loa Observatory (NOAA/MLO) from 28?September?2017 to 7?November?2017. By assuming that the correct reflectance is proportional to the reflectance estimated by the Robotic Lunar Observatory (ROLO) irradiance model, the calibration constant for the lunar direct irradiance was successfully determined using the Langley method. The ratio of the calibration constant for the moon to that of the Sun was often greater than 1; the value of the ratio was 0.95 to 1.18 in the visible and near-infrared wavelength regions. This indicates that the ROLO model often underestimates the reflectance. In addition, this ratio depended on the phase angle. In this study, this ratio was approximated by a quadratic equation of the phase angle. By using this approximation, the reflectance of the moon can be calculated to within an accuracy of 1% or less. In order to validate the estimates of the AOD and PWV, continuous measurements with POM-02 were conducted at the Japan Meteorological Agency/Meteorological Research Institute (JMA/MRI) from January?2018 to May?2018, and the AOD and PWV were estimated. The results were compared with the AOD and PWV obtained by independent methods. The AOD was compared with that estimated by the National Institute for Environmental Studies (NIES) High Spectral Resolution Lidar measurements (wavelength: 532nm), and the PWV was compared with the PWV obtained from a radiosonde and the Global Positioning System. In addition, the continuity of the AOD (PWV) before and after sunrise and sunset in Tsukuba was examined, and the AOD (PWV) of AERONET and that of POM-02 at MLO were compared. In the results, the daytime and nighttime AOD (PWV) measurements are shown to be statistically almost equivalent. The AODs (PWVs) during the daytime and nighttime for POM-02 are presumed to have the same degree of precision and accuracy within the measurement uncertainty.
机译:大部分气溶胶数据是从白天测量获得的,并且很少有用于学习夜间气溶胶特性的数据集。为了估计气溶胶光学深度(AOD)和可沉淀的水蒸气(PWV)使用月球作为光源,可以修改天空辐射计(POM-02,Pum-02,Prede Ltd.,Japan)。调整放大器,以便POM-02可以测量较低水平的输入辐照度。为了基于计算值跟踪月亮,将简化的公式纳入固件。还开发了一种具有四象象限探测器的新位置传感器,用于调整太阳和月亮的跟踪。通过使用Langley方法确定是用于平均地球距离的外星太阳能和月球辐照度的传感器输出的校准常数。从28岁的国家海洋和大气管理/ Mauna Loa天文台(NOAA / MLO)进行了兰尼校准的测量来自28岁?9月?2017到7?11月?2017年。假设正确的反射率与由机器人月球天文台(ROLO)辐照模型估计的反射率成正比,使用Langley方法成功确定了月球直接辐照度的校准常数。月球对太阳的校准常数比率通常大于1;在可见和近红外波长区域中,该比率的值为0.95至1.18。这表明ROLO模型通常低估了反射率。另外,该比率依赖于相位角。在该研究中,该比率通过相位角的二次方程来近似。通过使用这种近似,可以将月球的反射率计算为1%或更小的精度。为了验证AOD和PWV的估计,从1月至5月的日本气象学局/气象研究所(JMA / MRI)进行了与POM-02的连续测量,2018年至5月?2018年,AOD和PWV估计。将结果与通过独立方法获得的AOD和PWV进行比较。将AOD与国家环境研究所(NIES)高光谱分辨率激光雷达测量(波长:532nm)进行比较,并将PWV与从无线电钻孔和全球定位系统获得的PWV进行比较。此外,研究了在筑波的日出和日落之前和之后的AOD(PWV)的连续性,并比较了AORET的AOD(PWV)和POM-02在MLO上。在结果中,日间和夜间AOD(PWV)测量显示在统计上几乎等效。在白天和夜间的POM-02期间AODS(PWV)被假定在测量不确定性内具有相同程度的精度和精度。

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