Articles | Volume 7, issue 7
https://doi.org/10.5194/amt-7-1979-2014
https://doi.org/10.5194/amt-7-1979-2014
Research article
 | 
03 Jul 2014
Research article |  | 03 Jul 2014

What is the benefit of ceilometers for aerosol remote sensing? An answer from EARLINET

M. Wiegner, F. Madonna, I. Binietoglou, R. Forkel, J. Gasteiger, A. Geiß, G. Pappalardo, K. Schäfer, and W. Thomas

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Cited articles

Anderson, G. P., Clough, S. A., Kneizys, F. X., Chetwynd, J. H., and Shettle, E. P.: AFGL Atmospheric Constituent Profiles (0–120 km), AFGL-TR-86-0110, Hanscom AFB, MA 01736, US.
Ansmann, A., Wandinger, U., Riebesell, M., Weitkamp, C., and Michaelis, W.: Independent measurement of extinction and backscatter profiles in cirrus clouds by using a combined Raman elastic-backscatter lidar, Appl. Optics, 31, 7113–7131, 1992.
Baars, H., Ansmann, A., Engelmann, R., and Althausen, D.: Continuous monitoring of the boundary-layer top with lidar, Atmos. Chem. Phys., 8, 7281–7296, https://doi.org/10.5194/acp-8-7281-2008, 2008.
Barreto, A., Cuevas, E., Damiri, B., Guirado, C., Berkoff, T., Berjón, A. J., Hernández, Y., Almansa, F., and Gil, M.: A new method for nocturnal aerosol measurements with a lunar photometer prototype, Atmos. Meas. Tech., 6, 585–598, https://doi.org/10.5194/amt-6-585-2013, 2013.
Binietoglou, I., Amodeo, A., D'Amico, G., Giunta, A., Madonna, F., and Pappalardo, G.: Examination of possible synergy between lidar and ceilometer for the monitoring of atmospheric aerosols, Proc. SPIE 8182, Lidar Technologies, Techniques, and Measurements for Atmospheric Remote Sensing VII, SPIE 8182, 818209, https://doi.org/10.1117/12.897530, 2011.
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