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Original Articles

Depolarization ratio profiling at several wavelengths in pure Saharan dust during SAMUM 2006

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Pages 165-179 | Received 02 Jan 2008, Accepted 18 Aug 2008, Published online: 18 Jan 2017

References

  • Althausen, D., Muller, D., Ansmann, A., Wandinger, U., Hube, H. and co-authors. 2000. Scanning 6-wavelength 11-channel aerosol lidar. J. Atmos. Ocean. TechnoL 17, 1469–1482.
  • Alvarez, J. M., Vaughan, M. A., Hostetler, C. A., Hunt, W. H. and Winker, D. M. 2006. Calibration technique for polarization-sensitive lidars. J. Atmos. Ocean. TechnoL 23, 683–699.
  • Ansmann, A., Bösenberg, J., Chaikovsky, A., Comerón, A., Eckhardt, S. and coauthors. 2003. Long-range transport of Saharan dust to northern Europe: the 11-16 October 2001 outbreak observed with EARUNET. J. Geophys. Res. 108, 10.1029/2003JDO03757.
  • Ansmann, A., Mattis, I., Muller, D., Wandinger, U., Radlach, M. and co-authors. 2005. Ice formation in Saharan dust over central Europe observed with temperature/humidity/aerosol Raman lidar. J. Geophys. Res. 110, 10.1029/2005JD005000.
  • Ansmann, A., Tesche, M., Althausen, D., Muller, D., Freudenthaler, V. and co-authors. 2007. Influence of Saharan dust on cloud glacia-tion in southern Morocco during SAMUM. J. Geophys. Res. 112, 10.1029/2007JD008575.
  • Behrendt, A. and Nakamura, T. 2002. Calculation of the calibration constant of polarization lidar and its dependency on atmospheric tem-perature. Optics Exp. 10, 805–817.
  • Biele, J., Beyerle, G. and Baumgarten G. 2000. Polarization lidar: cor-rections of instrumental effects. Optics Exp. 7, 427–435.
  • Cairo, E, Di Donfrancesco, G., Adriani, A., Lucio, P. and Federico, E 1999. Comparison of various linear depolarization parameters mea-sured by lidar. AppL Opt. 38, 4425–4432.
  • Chen, W. N., Tsai, F. J., Chou, C. C. K., Chang, S. Y., Chen, Y. W. and co-authors. 2007. Optical properties of Asian dust in the free atmosphere measured by raman lidar at Taipei, Taiwan. Atmos. Environ. 41, 7698–7714.
  • Dubovilc, O., Sinyuk, A., Lapyonok, T., Holben, B. N., Mishchenko, M. and co-authors. 2006. Application of spheroid models to account for aerosol particle nonsphericity in remote sensing of desert dust. J. Geophys. Res. 111, 10.1029/2005JDO06619.
  • Esselborn, M., Wirth, M. Fix, A., Tesche, M. and Ehret, G. 2008. Airborne high spectral resolution lidar for measuring aerosol extinction and backscatter coefficients. AppL Opt. 47, 346–358.
  • Esselborn, M., Wirth, M., Fix, A., Weinzierl, B., Rasp, K. and co-authors. 2008. Spatial distribution and optical properties of Saharan dust ob-served by airborne high spectral resolution lidar during SAMUM 2006. Tellus 61B, 10.1111/j.1600-0889.2008.00394.x.
  • Fernald, E G. 1984. Analysis of atmospheric lidar observations: some comments. Appl. Opt. 23, 652–653.
  • Freudenthaler, V, Homburg, F. and Jager, H. 1996. Optical parameters of contrails from lidar measurements: linear depolarization. Geophys. Res. Lett. 23, 3715–3718.
  • Gobbi, G. R, 1998. Polarization lidar returns from aerosols and thin clouds: a framework for the analysis. AppL Opt. 37, 5505–5508.
  • Gobbi, G. R, Barnaba, F., Giorgi, R. and Santacasa, A. 2000. Altitude—resolved properties of a Saharan dust event over the Mediterranean. Atmos. Environ. 34, 5119–5127.
  • Hayashida, S., Kobayashi, A. and Iswasaka, Y. 1984. Lidar measure-ments of stratospheric aerosol content and depolarization ratios after the eruption of El Chichon volcano: measurements at Nagoya, Japan. Geofis. Int. 23, 277–288.
  • Heese, B., Freudenthaler, V., Seefeldner, M. and Wiegner, M. 2002. POLIS: a new portable system for ground-based and airborne mea-surements of aerosols and clouds. In: Lidar Remote Sensing in Atmospheric and Earth Sciences (eds. L. R. Bissonnette, G. Roy and G. Vallee). Defence Research and Development, Canada-Valcartier, Val-Belair, QU, Canada, 71–74.
  • Iwasaka, Y., Shibata, T., Nagatani, T., Shi, G.-Y., Kim, Y. S. and co-authors. 2003. Large depolarization ratio of free tropospheric aerosols over the Taklamakan desert revealed by lidar measurements: possi-ble diffusion and transport of dust particles. J. Geophys. Res. 108, 10.1029/2002JD003267.
  • Kandler, K., Schiitz, L., Deutscher, C., Ebert, M., Hofmann, H. and co-authors. 2008. Size distribution, mass concentration, chemical and mineralogical composition and derived optical parameters of the boundary layer aerosol at Tinfou, Morocco, during SAMUM 2006. Tellus 61B, 10.1111/j.1600-0889.2008.00385.x.
  • Klett, J. D. 1985. Lidar Inversion with Variable Bacicscatter/Extinction Ratios. AppLOpt. 24, 1638–1643.
  • Knippertz, P., Ansmann, A., Althausen, D., Tesche, M., Bierwirth, E. and co-authors. 2008. Dust mobilization and transport in the northern Sahara during SAMUM 2006-a meteorological overview. Tellus 61B, 10.1111/j.1600-0889.2008.00380.x.
  • McNeil, W. R. and Carswell, A. I. 1975. Lidar polarization studies of the troposphere. AppL Opt. 14, 2158–2168.
  • Mishchenlco, M. I. and Sassen, K. 1998. Depolarization of lidar returns by small ice crystals: an application to contrails. Geophys. Res. Lett. 25, 309–312.
  • Muller, D., Mattis, I., Wandinger, U., Ansmann, A., Althausen, D. and co-authors. 2003. Saharan dust over a central European EARUNET-AERONET site: combined observations with Raman lidar and Sun photometer. J. Geophys. Res. 108, 10.1029/2002JDO02918.
  • Murayama, T., Furushima, M., Oda, A. and Iwasaka, N. 1996. Depo-larization ratio measurements in the atmospheric boundary layer by lidar in Tokyo. J. Meteorol. Soc. Japan 74, 571–578.
  • Murayama, T., Masonis, S. J., Redemann, J., Anderson, T. L., Schmid, B. and co-authors. 2003. An intercomparison of lidar-derived aerosol optical properties with airborne measurements near Tokyo during ACE-Asia. J. Geophys. Res. 108, 10.1029/2002JD003259.
  • Murayama, T., Muller, D., Wada, K., Shimizu, A., Selciguchi, M. and co-authors. 2004. Characterization of Asian dust and Siberian smoke with multiwavelength Raman lidar over Tokyo, Japan in spring 2003. Geophys. Res. Lett. 31, 10.1029/2004GL021105.
  • Reichardt, J., Tsias, A. and Behrendt, A. 2000. Optical properties of PSC Ia-enhanced at UV and visible wavelengths: model and observations. Geophys. Res. Lett. 27, 201–204.
  • Reichardt, J., Baumgart, R. and McGee, T. J. 2003. Three—signal method for accurate measurements of depolarization ratio with lidar. AppL Opt. 42, 4909–4913.
  • Sakai, T., Shibata, T., Kwon, S.-A., Kim, Y.-S., Tamura, K. and co-authors. 2000. Free tropospheric aerosol backscatter, depolarization ratio, and relative humidity measured with the Raman lidar at Nagoya in 1994-1997: contribution of aerosols from the Asian contient and the Pacific Ocean. Atmos. Environ. 34, 431–442.
  • Sakai, T., Shibata, T., Iwasaka, Y., Nagai, T., Nalcazato, M. and co-authors. 2002. Case study of Raman lidar measurements of Asian dust events in 2000 and 2001 at Nagoya and Tsukuba, Japan. Atmos. Environ. 36, 5479–5489.
  • di Sarra, A., Di Iorio, T., Cacciani, M., Fiocco, G. and Fuh., D. 2001. Saharan dust profiles measured by lidar at Lampedusa. J. Geophys. Res. 106, 10335–10347.
  • Sassen, K. 1991. The polarization lidar technique for cloud research: a reviwe and current assessments. Bull. Am. MeteoroL Soc. 72, 1848–1866.
  • Sassen, K. 2005. Polarization in lidar. In: Lidar (ed. C. Weiticamp). Springer, New York, 19–42.
  • Sassen, K., Zhu, J., Webley, P., Dean, K. and Cobb, P. 2007. Volcanic ash plume identification using polarization lidar: Augustine eruption, Alaska. Geophys. Res. Lett. 34, 10.1029/2006GL027237.
  • Schotland, R. M., Sassen, K. and Stone, R. 1971. Observations by lidar of linear depolarization ratios for hydrometeors. J. AppL MeteoroL 10, 1011–1017.
  • Shimizu, A., Sugimoto, N., Matsui, I., Arao, K., Uno, I. and co-authors. 2004. Continuous observations of Asian dust and other aerosols by polarization lidar in China and Japan during ACE-Asia. J. Geophys. Res. 109, D19517, 10.1029/2002JD003253.
  • Sugimoto, N., Matsui, I., Shimizu, A., Uno, I., Asai, K. and co-authors. 2002. Observation of dust and anthropogenic aerosol plumes in the Northwest Pacific with a two-wavelength polarization li-dar on board the research vessel Mirai. Geophys. Res. Lett. 29, 10.1029/2002GL015112.
  • Tesche, M., Ausmann, A., Muller, D., Althausen, D., Mattis, I. and co-authors. 2008. Vertical profiling of Saharan dust with Raman Lidars and airborne HSRL in southern Morocco during SAMUM. Tellus 61B, 10.1111/j.1600-0889.2008.00390.x.
  • Toledano, C., Wiegner, M., Garhammer, M., Seefeldner, M., Freuden-thaler, V. and co-authors. 2008. Spectral aerosol optical depth characterization of desert dust during SAMUM 2006. Tellus 61B, 10.1111/j.1600-0889.2008.00382.x.
  • Toon, O., Tabazadeh, A., Browell, E. and Jordan, J. 2000. Analysis of lidar observations of Arctic polar stratospheric clouds during January 1989. J. Geophys. Res. 105, 20589–20615.
  • Weinzierl, B., Pretzold, M., Esselborn, M., Wirth, K., Rasp, K. and co-authors. 2008. Airborne measurements of dust layer properties, particle size distribution and mixing state of Saharan dust during SAMUM 2006. Tellus 61B, 10.1111/j.1600-0889.2008.00392.x.
  • Wiegner, M., Gasteiger, J., Kandler, K., Weinzierl, B., Rasp, K. and co-authors. 2008. Numerical simulations of optical properties of Saharan dust aerosols with special emphasis on the linear depolarization ratio. Tellus 61B, 10.1111/j.1600-0889.2008.00381.x.
  • Winker, D. and Osborn, M. 1992. Preliminary analysis of observations of the Pinatubo volcanic plume with a polarization-sensitive lidar. Geophys. Res. Lett. 19, 161–174.