Articles | Volume 9, issue 9
https://doi.org/10.5194/amt-9-4673-2016
https://doi.org/10.5194/amt-9-4673-2016
Research article
 | 
21 Sep 2016
Research article |  | 21 Sep 2016

The Zugspitze radiative closure experiment for quantifying water vapor absorption over the terrestrial and solar infrared – Part 2: Accurate calibration of high spectral-resolution infrared measurements of surface solar radiation

Andreas Reichert, Markus Rettinger, and Ralf Sussmann

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Cited articles

Bolsée, D., Pereira, N., Decuyper, W., Gillotay, D., Yu, H., Sperfeld, P., Pape, S., Cuevas, E., Redondas, A., Hernandéz, Y., and Weber, M.: Accurate Determination of the TOA Solar Spectral NIR Irradiance Using a Primary Standard Source and the Bouguer–Langley Technique, Sol. Phys., 289, 2433–2457, https://doi.org/10.1007/s11207-014-0474-1, 2014.
Borsdorff, T. and Sussmann, R.: On seasonality of stratomesospheric CO above midlatitudes: New insight from solar FTIR spectrometry at Zugspitze and Garmisch, Geophys. Res. Lett., 36, L21804, https://doi.org/10.1029/2009GL040056, 2009.
Burch, D. E.: Continuum absorption by H2O. Report AFGL-TR-81-0300, Air Force Geophys. Laboratory, Hanscom AFB, MA, USA, 1982.
Clough, S. A., Shephard, M. W., Mlawer, E. J., Delamere, J. S., Iacono, M. J., Cady-Pereira, K., Boukabara, S., and Brown P. D.: Atmospheric radiative transfer modeling: a summary of the AER codes, Short Communication, J. Quant. Spectrosc. Ra., 91, 233–244, https://doi.org/10.1016/j.jqsrt.2004.05.058, 2005.
Delamere, J. S., Clough, S. A., Payne, V. H., Mlawer, E. J. Turner, D. D., and Gamache, R. R.: A far-infrared radiative closure study in the Arctic: Application to water vapor, J. Geophys. Res., 115, D17106, https://doi.org/10.1029/2009JD012968, 2010.
Short summary
Quantitative knowledge of infrared absorption by water vapor is crucial for remote sensing and climate simulations. Near-infrared (NIR) continuum absorption currently still lacks quantification by atmospheric measurements but can be investigated with radiative closure experiments using radiometrically calibrated solar spectra. We demonstrate for the first time a calibration method with sufficient accuracy (1.0–1.7 %) for continuum quantification in the 2500 to 7800 cm−1spectral range.