Column Integrated Water Vapor and Aerosol Load Characterization with the New ZEN-R52 Radiometer
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2020
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Abstract
The study shows the first results of the column-integrated water vapor retrieved by the new ZEN-R52 radiometer. This new radiometer has been specifically designed to monitor aerosols and atmospheric water vapor with a high degree of autonomy and robustness in order to allow the expansion of the observations of these parameters to remote desert areas from ground-based platforms. The ZEN-R52 device shows substantial improvements compared to the previous ZEN-R41 prototype: a smaller field of view, an increased signal-to-noise ratio, better stray light rejection, and an additional channel (940 nm) for precipitable water vapor (PWV) retrieval. PWV is inferred from the ZEN-R52 Zenith Sky Radiance (ZSR) measurements using a lookup table (LUT) methodology. The improvement of the new ZEN-R52 in terms of ZSR was verified by means of a comparison with the ZEN-R41, and with the Aerosol Robotic Network (AERONET) Cimel CE318 (CE318-AERONET) at Izaña Observatory, a Global Atmosphere Watch (GAW) high mountain station (Tenerife, Canary Islands, Spain), over a 10-month period (August 2017 to June 2018). ZEN-R52 aerosol optical depth (AOD) was extracted by means of the ZEN–AOD–LUT method with an uncertainty of ±0.01 ± 0.13*AOD. ZEN-R52 PWV extracted using a new LUT technique was compared with quasi-simultaneous (±30 s) Fourier Transform Infrared (FTIR) spectrometer measurements as reference. A good agreement was found between the two instruments (PWV means a relative difference of 9.1% and an uncertainty of ±0.089 cm or ±0.036 + 0.061*PWV for PWV <1 cm). This comparison analysis was extended using two PWV datasets from the same CE318 reference instrument at Izaña Observatory: one obtained from AERONET (CE318-AERONET), and another one using a specific calibration of the 940-nm channel performed in this work at Izaña Atmospheric Research Center Observatory (CE318-IARC), which improves the PWV product.Reference Key |
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Authors | Antonio Fernando Almansa;Emilio Cuevas;Ăfrica Barreto;BenjamĂn Torres;Omaira Elena GarcĂa;Rosa Delia GarcĂa;Cristian Velasco-Merino;Victoria Eugenia Cachorro;Alberto BerjĂłn;Manuel MallorquĂn;CĂŠsar LĂłpez;RamĂłn Ramos;Carmen Guirado-Fuentes;RamĂłn Negrillo;Ăngel MĂĄximo de Frutos;Almansa, Antonio Fernando;Cuevas, Emilio;Barreto, Ăfrica;Torres, BenjamĂn;GarcĂa, Omaira Elena;Delia GarcĂa, Rosa;Velasco-Merino, Cristian;Cachorro, Victoria Eugenia;BerjĂłn, Alberto;MallorquĂn, Manuel;LĂłpez, CĂŠsar;Ramos, RamĂłn;Guirado-Fuentes, Carmen;Negrillo, RamĂłn;de Frutos, Ăngel MĂĄximo; |
Journal | remote sensing |
Year | 2020 |
DOI | 10.3390/rs12091424 |
URL | |
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