Articles | Volume 7, issue 1
https://doi.org/10.5194/amt-7-65-2014
https://doi.org/10.5194/amt-7-65-2014
Research article
 | 
10 Jan 2014
Research article |  | 10 Jan 2014

Propagation of radiosonde pressure sensor errors to ozonesonde measurements

R. M. Stauffer, G. A. Morris, A. M. Thompson, E. Joseph, G. J. R. Coetzee, and N. R. Nalli

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Cited articles

da Silveira, R. B., Fisch, G. F., Machado, L. A. T., Dall'Antonia, A. M., Sapucci, L. F., Fernandes, D., Marques, R., and Nash, J.: WMO intercomparison of GPS radiosondes, Alcantara, Brazil, 20 May–10 June, 2001, WMO/TD–No. 1314, 65 pp., available at: http://www.wmo.int/pages/prog/www/IMOP/publications/IOM-90_RSO-Brazil/IOM-90_RSO_EMA_Alcantara2001.pdf, 2006.
De Muer, D. and De Backer, H.: The discrepancy between stratospheric ozone profiles from balloon soundings and from other techniques: A possible explanation, Proceedings of the Quadrennial Ozone Symposium 1992 NASA Conf. Publ. 3266, 815–818, 1992.
Deshler, T.: Transfer functions for SPC6A-ENSCI-SST1, available at: http://www-das.uwyo.edu/ deshler/NDACC_O3Sondes/O3s_DQA/O3S-DQA-8.1.2_sst1_vs_sst0.5&spc_vs_ensci.pdf, (last access: 25 July 2013), 2012.
Deshler, T., Mercer, J. L., Smit, H. G. J., Stubi, R., Levrt, G., Johnson, B. J., Oltmans, S. J., Kivi, R., Thompson, A. M., Witte, J. C., Davies, J., Schmidlin, F. J., Brothers, G., and Sasaki, T.: Atmospheric comparison of electrochemical cell ozonesondes from different manufacturers, and with different cathode solution strengths: The Balloon Experiment on Standards for Ozonesondes, J. Geophys. Res., 113, D04307, https://doi.org/10.1029/2007JD008975, 2008.
Dobson, G. M. B.: Atmospheric ozone and the movement of air in the stratosphere, Pure Appl. Geophys., 106–108, 1520–1530, https://doi.org/10.1007/BF00881102, 1973.