TY - JOUR
T1 - The STRatospheric Estimation Algorithm from Mainz (STREAM)
T2 - Estimating stratospheric NO2 from nadir-viewing satellites by weighted convolution
AU - Beirle, Steffen
AU - Hörmann, Christoph
AU - Jöckel, Patrick
AU - Liu, Song
AU - Penning de Vries, M.
AU - Pozzer, Andrea
AU - Sihler, Holger
AU - Valks, Pieter
AU - Wagner, Thomas
N1 - Publisher Copyright:
© Author(s) 2016.
PY - 2016/7/4
Y1 - 2016/7/4
N2 - The STRatospheric Estimation Algorithm from Mainz (STREAM) determines stratospheric columns of NO2 which are needed for the retrieval of tropospheric columns from satellite observations. It is based on the total column measurements over clean, remote regions as well as over clouded scenes where the tropospheric column is effectively shielded. The contribution of individual satellite measurements to the stratospheric estimate is controlled by various weighting factors. STREAM is a flexible and robust algorithm and does not require input from chemical transport models. It was developed as a verification algorithm for the upcoming satellite instrument TROPOMI, as a complement to the operational stratospheric correction based on data assimilation. STREAM was successfully applied to the UV/vis satellite instruments GOME 1/2, SCIAMACHY, and OMI. It overcomes some of the artifacts of previous algorithms, as it is capable of reproducing gradients of stratospheric NO2, e.g., related to the polar vortex, and reduces interpolation errors over continents. Based on synthetic input data, the uncertainty of STREAM was quantified as about 0.1-0.2×1015molecules cm-2, in accordance with the typical deviations between stratospheric estimates from different algorithms compared in this study.
AB - The STRatospheric Estimation Algorithm from Mainz (STREAM) determines stratospheric columns of NO2 which are needed for the retrieval of tropospheric columns from satellite observations. It is based on the total column measurements over clean, remote regions as well as over clouded scenes where the tropospheric column is effectively shielded. The contribution of individual satellite measurements to the stratospheric estimate is controlled by various weighting factors. STREAM is a flexible and robust algorithm and does not require input from chemical transport models. It was developed as a verification algorithm for the upcoming satellite instrument TROPOMI, as a complement to the operational stratospheric correction based on data assimilation. STREAM was successfully applied to the UV/vis satellite instruments GOME 1/2, SCIAMACHY, and OMI. It overcomes some of the artifacts of previous algorithms, as it is capable of reproducing gradients of stratospheric NO2, e.g., related to the polar vortex, and reduces interpolation errors over continents. Based on synthetic input data, the uncertainty of STREAM was quantified as about 0.1-0.2×1015molecules cm-2, in accordance with the typical deviations between stratospheric estimates from different algorithms compared in this study.
KW - ITC-CV
UR - https://www.scopus.com/pages/publications/84978036852
U2 - 10.5194/amt-9-2753-2016
DO - 10.5194/amt-9-2753-2016
M3 - Article
AN - SCOPUS:84978036852
SN - 1867-1381
VL - 9
SP - 2753
EP - 2779
JO - Atmospheric measurement techniques
JF - Atmospheric measurement techniques
IS - 7
ER -