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Seasonal and spatial variability of surface seawater fluorescence properties in the Baltic and Nordic Seas: results of lidar experiments

Autorzy
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper analyses experimental measurements of laser-induced fluorescence (LIF) spectra in different seawaters. The fluorescence parameters, calculated from LIF spectra as the ratio of the integrals of fluorescence and Raman signal intensities, provide information about the relative changes in the concentrations of fluorescing molecules. Gathered during several cruises in 1994-2004 in the Baltic and Nordic Seas, all the data are presented as scatter plots of the fluorescence parameters of chlorophyll a (Chl a) and coloured dissolved organic matter (CDOM). Satisfactory correlations between these two parameters were found a) for open Nordic Seas waters, b) for the southern Baltic in blooming periods only, and c) for the Gulf of Gdańnsk in non-blooming periods only.
Czasopismo
Rocznik
Strony
59--69
Opis fizyczny
bibliogr. 21 poz., wykr.
Twórcy
  • Institute of Oceanology, Polish Academy of Sciences, Powstańców Warszawy 55, PL-81-712 Sopot, Poland, drozdowska@iopan.gda.pl
Bibliografia
  • [1].Babichenko S., 2001, Spectral fluorescent signatures in diagnostics of water environment, Inst. Ecol., Tallinn Pedag. Univ., Tallinn, 194 pp.
  • [2].Babichenko S., Poryvkina, L., Arikese V., Kaitala S., Kuosa H., 1993, Remote sensing of phytoplankton using laser induced fluorescence, Remote Sens. Environ., 45, 43-50.
  • [3].Babichenko S., Veigel M., Dudelzek A., Koger R., Poryvkina L., Saar K., 1989, Multifrequency lidar with excimer laser for marine research, Sci. Instru., 4 (1), 95-102.
  • [4].Barbini R., Colao F., Fantoni R., Micheli C., Palucci A., Ribezzo S., 1998, Design and application of a lidar fluorosensor system for remote monitoring of phytoplankton, J. Mar. Sci., 55, 793-802.
  • [5].Barbini R., Colao F., Fantoni R., Palucci A., Ribezzo S., 2001, Differential lidar fluorosensor system used for phytoplankton bloom and seawater quality monitoring in Antarctica, Int. J. Remote Sens., 22, 369-384.
  • [6].Darecki M., Stramski D., 2004, An evaluation of MODIS and SeaWiFS bio-optical algorithms in the Baltic Sea, Remote Sens. Environ., 89 (3), 326-350.
  • [7].Determann S., Reuter R., Wagner P., Willkomm R., 1994, Fluorescent matter in the eastern Atlantic Ocean. Part 1: method of measurements and near surface distribution, Deep-Sea Res. Pt. I, 41 (4), 659-675.
  • [8].Drozdowska V., 2005, Investigations of the lidar-induced fluorescence spectra of different sea waters, Ph. D. thesis, Inst. Oceanol. PAS, Sopot, 116 pp., (in Polish), (unpublished).
  • [9].Drozdowska V., Babichenko S., Lisin A., 2002, Natural water fluorescence characteristics based on lidar investigations of a surface water layer polluted by an oil film; the Baltic cruise - May 2000, Oceanologia, 44 (3), 339-354.
  • [10].Drozdowska V., Darecki M., 2005, Organic matter distribution in the upper layer of the Baltic water based on the lidar and in situ data, [in:] New strategies for European remote sensing, M. Oluić (ed.), Millpress, Rotterdam, 309-313.
  • [11].Drozdowska V., Kowalczuk P., 1999, Response of a lidar-induced fluorescence signal to yellow substance absorption, Oceanologia, 41 (4), 601-608.
  • [12].Drozdowska V., Król T., 2005, The investigation of the fluorescence spectra of the upper seawater layer - by lidar method, 5th Workshop on Atomic and Molecular Physics, J. Kwela, R. Drozdowski & T. Wasowicz (eds.), Proc. SPIE, 5849, 134-139, [doi: 10.1117/12.629480].
  • [13].Drozdowska V., Król T., 2006, Using of a water Raman backscattering signal for remote sensing of oil pollution on the seawater, [in:] Physicochemical problems of natural waters ecology, Vol. IV, H. Gurgul & W. Staroń (eds.), Uniw. Szcz., Szczecin, 17-22.
  • [14].Drozdowska V., Walczowski W., Hapter R., Stoń J., Piskozub J., Irczuk M., Zieliński T., 2004 Fluorescence characteristics of the upper water layer of the Arctic Seas based on lidar, spectrophotometric and optical methods, EARSeL Proc., 3 (1), 136-142.
  • [15].Fadeev V.V., 1999, Possibility of standardisation of normalised fluorescent parameter as a measure of organic admixtures concentration in water and atmosphere, Proc. SPIE, 3821, 458-466.
  • [16].Klyshko D.N., Fadeev V.V., 1978, Remote detection of water admixtures by laser spectroscopy with Raman scattering calibration, Doklady AN SSSR, 238, 320 -323.
  • [17].Patsayeva S., 1995, New methodological aspects of the old problem. Laser diagnostics of dissolved organic matter, EARSeL Adv. Remote Sens., 3 (3), 170-178.
  • [18].Pavlov A. N., Skorochod G. V., Chekunkova V.V., Tsareva O. S., Tarhova T. I., 2000, Relationships between LIF spectra parameters and seawater cases, Atm. Ocean Opt., 13 (11), 1011-1014.
  • [19].Piskozub J., Drozdowska V., Irczuk M., 1998, A water extinction lidar system for detecting thin oil spills preliminary results of field tests, Oceanologia, 40 (1), 3-10.
  • [20].Salyuk P.A., Bukin O.A., Permyakov M. S., Podoprigora E.T., Burov D.V., 2003, Classification of the Okhotsk waters by the laser induced fluorescence spectra parameters, Proc. 2nd Int. Conf. on Current Problems in Optics of Natural Waters, ONW'2003, 176-181.
  • [21].Woźniak B., Dera J., Ficek D., Kaczmarek S., Ostrowska M., Koblentz-Mishke O. I., 2000, Model of the in vivo spectral absorption of algal pigments. Part 1. Mathematical apparatus, Oceanologia, 42 (2), 177-190.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUS5-0003-0054
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