Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers

This work aims to assess differences in the aerosol optical depth (AOD) trend estimations when using high-quality AOD measurements from two different instruments with different technical characteristics and operational (e.g. measurement frequency), calibration and processing protocols. The different...

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Published in:Atmospheric Measurement Techniques
Main Authors: A. Karanikolas, N. Kouremeti, J. Gröbner, L. Egli, S. Kazadzis
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2022
Subjects:
Online Access:https://doi.org/10.5194/amt-15-5667-2022
https://doaj.org/article/3faedac1d5fa4478b087e5a495aceb34
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author A. Karanikolas
N. Kouremeti
J. Gröbner
L. Egli
S. Kazadzis
author_facet A. Karanikolas
N. Kouremeti
J. Gröbner
L. Egli
S. Kazadzis
author_sort A. Karanikolas
collection Directory of Open Access Journals: DOAJ Articles
container_issue 19
container_start_page 5667
container_title Atmospheric Measurement Techniques
container_volume 15
description This work aims to assess differences in the aerosol optical depth (AOD) trend estimations when using high-quality AOD measurements from two different instruments with different technical characteristics and operational (e.g. measurement frequency), calibration and processing protocols. The different types of sun photometers are the CIMEL that is part of AERONET (AErosol RObotic NETwork) and a precision filter radiometer (PFR) that is part of the Global Atmosphere Watch Precision Filter Radiometer network. The analysis operated for two wavelengths (500 and 501 and 870 and 862 nm for CIMEL–PFR) in Davos, Switzerland, for the period 2007–2019. For the synchronous AOD measurements, more than 95 % of the CIMEL–PFR AOD differences are within the WMO-accepted limits, showing very good measurement agreement and homogeneity in calibration and post-correction procedures. AOD trends per decade in AOD for Davos for the 13-year period of analysis were approximately − 0.017 and − 0.007 per decade for 501 and 862 nm (PFR), while the CIMEL–PFR trend differences have been found 0.0005 and 0.0003, respectively. The linear trend difference for 870 and 862 nm is larger than the linear fit standard error. When calculating monthly AODs using all PFR data (higher instrument frequency) and comparing them with the PFR measurements that are synchronous with CIMEL, the trend differences are smaller than the standard error. Linear trend differences of the CIMEL and PFR time series presented here are not within the calculated trend uncertainties (based on measurement uncertainty) for 870 and 862 nm. On the contrary, PFR trends, when comparing high- and low-measurement-frequency datasets are within such an uncertainty estimation for both wavelengths. Finally, for time-varying trends all trend differences are well within the calculated trend uncertainties.
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spelling ftdoajarticles:oai:doaj.org/article:3faedac1d5fa4478b087e5a495aceb34 2025-01-16T18:38:39+00:00 Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers A. Karanikolas N. Kouremeti J. Gröbner L. Egli S. Kazadzis 2022-10-01T00:00:00Z https://doi.org/10.5194/amt-15-5667-2022 https://doaj.org/article/3faedac1d5fa4478b087e5a495aceb34 EN eng Copernicus Publications https://amt.copernicus.org/articles/15/5667/2022/amt-15-5667-2022.pdf https://doaj.org/toc/1867-1381 https://doaj.org/toc/1867-8548 doi:10.5194/amt-15-5667-2022 1867-1381 1867-8548 https://doaj.org/article/3faedac1d5fa4478b087e5a495aceb34 Atmospheric Measurement Techniques, Vol 15, Pp 5667-5680 (2022) Environmental engineering TA170-171 Earthwork. Foundations TA715-787 article 2022 ftdoajarticles https://doi.org/10.5194/amt-15-5667-2022 2022-12-30T21:35:44Z This work aims to assess differences in the aerosol optical depth (AOD) trend estimations when using high-quality AOD measurements from two different instruments with different technical characteristics and operational (e.g. measurement frequency), calibration and processing protocols. The different types of sun photometers are the CIMEL that is part of AERONET (AErosol RObotic NETwork) and a precision filter radiometer (PFR) that is part of the Global Atmosphere Watch Precision Filter Radiometer network. The analysis operated for two wavelengths (500 and 501 and 870 and 862 nm for CIMEL–PFR) in Davos, Switzerland, for the period 2007–2019. For the synchronous AOD measurements, more than 95 % of the CIMEL–PFR AOD differences are within the WMO-accepted limits, showing very good measurement agreement and homogeneity in calibration and post-correction procedures. AOD trends per decade in AOD for Davos for the 13-year period of analysis were approximately − 0.017 and − 0.007 per decade for 501 and 862 nm (PFR), while the CIMEL–PFR trend differences have been found 0.0005 and 0.0003, respectively. The linear trend difference for 870 and 862 nm is larger than the linear fit standard error. When calculating monthly AODs using all PFR data (higher instrument frequency) and comparing them with the PFR measurements that are synchronous with CIMEL, the trend differences are smaller than the standard error. Linear trend differences of the CIMEL and PFR time series presented here are not within the calculated trend uncertainties (based on measurement uncertainty) for 870 and 862 nm. On the contrary, PFR trends, when comparing high- and low-measurement-frequency datasets are within such an uncertainty estimation for both wavelengths. Finally, for time-varying trends all trend differences are well within the calculated trend uncertainties. Article in Journal/Newspaper Aerosol Robotic Network Directory of Open Access Journals: DOAJ Articles Atmospheric Measurement Techniques 15 19 5667 5680
spellingShingle Environmental engineering
TA170-171
Earthwork. Foundations
TA715-787
A. Karanikolas
N. Kouremeti
J. Gröbner
L. Egli
S. Kazadzis
Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers
title Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers
title_full Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers
title_fullStr Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers
title_full_unstemmed Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers
title_short Sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers
title_sort sensitivity of aerosol optical depth trends using long-term measurements of different sun photometers
topic Environmental engineering
TA170-171
Earthwork. Foundations
TA715-787
topic_facet Environmental engineering
TA170-171
Earthwork. Foundations
TA715-787
url https://doi.org/10.5194/amt-15-5667-2022
https://doaj.org/article/3faedac1d5fa4478b087e5a495aceb34