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ISSN 1028-821X (Print)

RADAR INVESTIGATIONS OF THE AEOLIAN SAND AND DUST TRANSPORTING MANIFESTATIONS IN DESERT AREAS

Ivanov, VK, A. Matveev, Y, Tsymbal, VN, S. Yatsevich, Y
Organization: 

O. Ya. Usikov Institute for Radiophysics and Electronics of the National Academy of Sciences of Ukraine
12, Proskura st., Kharkov, 61085, Ukraine
E-mail: sey59@mail.ru

https://doi.org/10.15407/rej2015.01.048
Language: Russian
Abstract: 

Aeolian processes transporting sand and dust is a powerful erosive force that shapes the structure of the surface of the vast territories and loads the atmosphere with aerosols suspended dust spread by wind over long distances. The presence of atmospheric dust in the environment of the planet is one of the factors significantly affecting the temperature and climatic conditions of vast regions. There are no published data on the characteristics of the radio waves scattering features manifested in radar studies of aeolian sand and dust transport processes in desert regions, which can be used for determining the parameters of a remote transport. The article presents the results of the analysis of multiyear surveys of desert areas by side-looking radars (SLR) of “Cosmos-1500” and “Sich-1” satellites, synthetic aperture radars (SAR) of ERS-1, ERS-2 and Envisat-1, aimed at identifying the radio waves scattering features manifested in radar studies of aeolian sand and dust transportation processes in desert regions, which can be used for remote determining the parameters of transportation. It was proposed to explain the mechanism of the effect of a highly directional intense radio waves backscatter, which manifests itself in areas covered with deep sand at the direction of irradiating the surface towards the general direction of the surface wind in the range of local irradiation angle surface Q » 31¸34°, due to their interaction with consistently oriented ionized air layers bordering on sand ripples structures in the process of forming it with aeolian transportation of sand-dust mixture. Ionization is caused by strong inhomogeneous electric field arising in the aeolian transport process. Results of the study allow to create new remote monitoring methods of processes in desert areas that affect the climate of vast regions of the Earth.

Keywords: aeolian transport of sand and dust, highly directional radio wave backscatter, ionization, radar sensing, sand ripples, the electric field

Manuscript submitted 10.12.2014
PACS 07.87.+v, 84.40.−x, 89.60.Gg, 92.60.Mt, 92.60.Sz
Radiofiz. elektron. 2015, 20(1): 48-57
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References: 
  1. Lancaster, N., 2009. Aeolian features and processes. In: Young, R. and Norby, L., 2009. Geological Monitoring: Boulder, Colorado, Geological Society of America. pp. 1–25. DOI: 10.1130/2009.monitoring(01)
  2. Schmidt, D. S., Schmidt, R. A. and Dent, J. D., 1998. Electrostatic force on saltating sand. J. Geophys. Res. 103(8), pp. 8997–9001.
  3. Boyev, A. G., Yefimov, V. B., Tsymbal, V. N. (ed.), Yatsevich, S. Ye., Kalmykov, I. A., Konyukhov, S. N. (ed.), Dranovsky, V. I. (ed.), (2010). Radar Techniques and Facilities for On-Line Remote Sensing of the Earth from Aerospace Carriers. Kharkov: Publ. house O. V. Sheynina (in Russian).
  4. Archiv-Version des Animationstools [online]. Available from: http://www.wetter3.de/Archiv/index.html.
  5. Duran, O., Claudin, P. and Andreotti, B., 2011. On Aeolian transport: Grain-scale interactions, dynamical mechanisms and scaling laws. Aeolian Res. 3, pp. 243–270.
  6. Velikanov, М. А., 1981. Inland hydrology. Leningrad: Gidrometeoizdat (in Russian).
  7. Kok, J. F., Parteli, E. J. R., Michaels, T. I. and Diana Bou Karam, 2012. The physics of windblown sand and dust. Rep. Prog. Phys. 75(10), pp. 106901 (72 p.)
  8. Kok, J. F. and Renno, N. O., 2008. Electrostatics in Wind-Blown Sand. Phys. Rev. Lett. 100(1), pp. 014501 (4 p.).
  9. Stow, C. D., 1969. Dust and sand storm electrification. Weather. 24(4), pp. 134–144.
  10. Namikas, S. L., 2003. Field Measurement and Numerical Modeling of Aeolian Mass-Flux Distributions on a Sandy Beach. Sedimentology. 50(2), pp. 303–326.
  11. Greeley, R., Blumberg, D. G. and Williams, S. H., 1996. Field Measurements of the Flux and Speed of Wind-blown Sand. Sedimentology. 43(1), pp. 41–52.
  12. Dust storms [online]. Available from: http://www.diary.ru/~ AgentSniper/p171617329.htm?oam.
  13. Zheng, X.-J., 2013. Electrification of wind-blown sand: Recent advances and key issues. Eur. Phys. J. E. 36(12), p. 138.
  14. Imyanitov, I. М., 1988. Atmospheric electricity. In: Physical Encyclopedia. Vol. 1. Moscow: Sov. Encyclopedia Publ. (in Russian).
  15. Encyclopedia of physics and technology [online]. Available from: DOI: http://www.femto.com.ua/articles/part_1/0217.html.
  16. Helicopter Static-Electricity Phenomenon [online]. Available from: DOI: http://defence.pk/threads/helicopter-static-electricity-phenomenon.75190/.
  17. Kok, J. F., 2009. Understanding Wind-Blown Sand And The Electrification Of Granular Systems. DEd. (Appl. Phys.) University of Michigan [online]. Available from: http://deepblue.lib.umich.edu/bitstream/handle/2027.42/ 63669/jfkok_1.pdf?sequence=1.
  18. Wikipedia. Dune [online]. Available from: http://ru.wikipedia.org/wiki/%D0%94%D1%8E%D0%BD% D0%B0.
  19. Site about the planet Earth. Dune ridges [online]. Available from: http://5materik.ru/stati/dyunnye-gryady.
  20. Мauritania: brief geological survey [online]. Available from: http://www.shirkunov.org/mauritania.html.
  21. Natural radiation background: origin and evolution [online]. Available from: http://phys.rsu.ru/web/students/ RadSec/10.pdf.
  22. Кovalev, D. А. and Мikhailov, V. N., 2011. Detection of radioactive emissions in the atmosphere using radar means and forecasting of their propagation. In: Proc. 4th Int. congress “Millennium development goals” and innovation principles of stable development of Arctic regions. Scientific Practical Conf. “Scientific and innovation technologies in saving the problems of forecasting and combating emergency situations and their consequences”. San-Petersburg, Russia, 24–25 Nov. 2011.
  23. Danilov, A. V., Ilchenko, S. A., Kunavin, A. T., Markov, A. V., Permyakov, V. A., Sapozhnikov, D. V., Tsemko, S. N., Volsky, V. A. and Yakovlev, V. Y., 1997. Electromagnetic wave scattering by an array of tubes filled with plasma. J. Phys. D: Appl. Phys. 30(16), pp. 2313–2319.