DOI: 10.17586/1023-5086-2018-85-07-33-38
УДК: 53.082
Some results of tests of a hydrobiophysical system
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Долгих Г.И., Долгих С.Г., Плотников А.А., Чупин В.А., Швец В.А., Яковенко С.В. Некоторые результаты испытаний гидробиофизического комплекса // Оптический журнал. 2018. Т. 85. № 7. С. 33–38. http://doi.org/10.17586/1023-5086-2018-85-07-33-38
Dolgikh G.I., Dolgikh S.G., Plotnikov A.A., Chupin V.A., Shvets V.A., Yakovenko S.V. Some results of tests of a hydrobiophysical system [in Russian] // Opticheskii Zhurnal. 2018. V. 85. № 7. P. 33–38. http://doi.org/10.17586/1023-5086-2018-85-07-33-38
G. I. Dolgikh, S. G. Dolgikh, A. A. Plotnikov, V. A. Chupin, V. A. Shvets, and S. V. Yakovenko, "Some results of tests of a hydrobiophysical system," Journal of Optical Technology. 85(7), 401-405 (2018). https://doi.org/10.1364/JOT.85.000401
The results of tests of a hydrobiophysical system consisting of a laser meter, for determining the hydrosphere pressure variations in the frequency range from 0 (conventional) to 1000 Hz with an accuracy of 2.45 mPa, and a fluorimeter are presented. It is established that the dynamics of chlorophyll emission in the blue and red spectral bands at a certain depth depends on the hydrosphere processes of the range of wind waves, seiches, and tides.
laser meter for determining hydrosphere pressure variations, fluorimeter, experimental data, phytoplankton, spectra, wind waves, seiches, tides
Acknowledgements:The research was partially supported by the Russian Science Foundation (RSF) (14-50-00034).
OCIS codes: 260.2510, 120.5475
References:1. E. G. Starodubtsev, A. A. Loginov, and S. P. Zakharkov, “Chlorophyll A in the northwestern part of the Pacific Ocean,” Okeanologiya 28(1), 122–126 (1988).
2. Yu. N. Kul’chin, O. A. Bukin, O. G. Konstantinov, S. S. Voznesenskiĭ, A. N. Pavlov, E. L. Gamayunov, A. Yu. Maĭor, S. Yu. Stolyarchuk, A. A. Korotenko, and A. Yu. Popik, “Comprehensive monitoring of the state of marine areas by optical methods. Part 1. The concept of building multilevel measuring systems for monitoring the ecology of coastal waters,” Opt. Atmos. Okeana 25(7), 633–637 (2012).
3. Yu. A. Gol’din, A. V. Shatravin, V. A. Levchenko, Yu. I. Ventskut, B. A. Gureev, and O. V. Kopelevich, “Investigation of spatial variability of fluorescence intensity of sea water in the western part of the Black Sea,” Fundam. Prikl. Gidrofiz. 8(1), 17–26 (2015).
4. G. I. Dolgikh, S. G. Dolgikh, S. N. Kovalev, V. A. Shvets, V. A. Chupin, and S. V. Yakovenko, “Laser meter for hydrosphere pressure variations,” Prib. Tekh. Eksp. 6, 137–138 (2005).
5. G. Dolgikh, S. Dolgikh, S. Kovalev, V. Chupin, V. Shvets, and S. Yakovenko, “Super-low-frequency laser device for measuring hydrosphere pressure variations,” J. Mar. Sci. Technol. 14(4), 436–442 (2009).
6. G. I. Dolgikh, A. A. Plotnikov, and S. S. Budrin, “A mobile laser meter of hydrosphere pressure variations,” Prib. Tekh. Eksp. 54(4), 598–599 (2011).
7. P. Mayerfeld and T. Brumett, C3 Submersible Fluorometer, http://www.turnerdesigns.com/t2/doc/presentations/C3-Ocean-Bus-Presentation-2009.pdf.
8. ECO FL Fluorescence Sensor, Sea Bird Scientific, http://www.seabird.com/sites/default/files/documents/datasheet-ECO-FL_0.pdf.
9. Seapoint Chlorophyll Fluorimeter, http://www.seapoint.com/scf.htm.
10. L. D. Landau and E. M. Lifshits, Theoretical Physics, Volume 7: Theory of Elasticity (Nauka, Moscow, 1987).
11. K. F. Bowden, Physical Oceanography of Coastal Waters, Ellis Horwood Series in Marine Science (John Wiley & Sons, Somerset, NJ, 1985).
12. G. I. Dolgikh, S. G. Dolgikh, S. V. Smirnov, V. A. Chupin, V. A. Shvets, and S. V. Yakovenko, “Infrasound fluctuations of the Sea of Japan,” Dokl. Akad. Nauk 441(1), 98–102 (2011).