Vol. 30, issue 04, article # 13

Desyatkov B. M., Lapteva N. A. Method for constructing optimal network monitoring stations of gases and aerosols emissions. // Optika Atmosfery i Okeana. 2017. V. 30. No. 04. P. 354–359. DOI: 10.15372/AOO20170413 [in Russian].
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Abstract:

A method is developed for organization of optimal network of monitoring stations of hazardous emissions of gases and aerosols from known sources during technogenic accidents and terrorist acts. A network built allows one to fix emissions in any real meteorological conditions. The basic features of test networks are analyzed depending on the instrumentation sensitivity threshold and source altitude.

Keywords:

boundary layer of the atmosphere, optimal emission monitoring network, sources of gases and aerosols

References:

  1. Jasenskij A.N., Bobrova V.K., Ziv A.D., Krasov V.I. Optimizacija prostranstvennoj seti nabljudenij pri kontrole zagrjaznenija atmosfery goroda // Trudy GGO. 1987. Issue 492. P. 13–23.
  2. Bezuglaja Je.Ju. Monitoring sostojanija zagrjaznenija atmosfery v gorodah. L.: Gidrometeoizdat, 1986. 203 p.
  3. Silva C., Quiroz A. Optimization of the atmospheric pollution monitoring networkat Santiago de Chile // Atmos. Environ. 2003. V. 37. P. 2337–2345.
  4. Ni-Bin Chang, Tseng C.C. Optimal design of a multi- pollutant air quality monitoring network in a metropolitan region using Kaohsing, Taiwan as an example // Environ. Monitor. Asses. 1999. V. 57. P. 121–148.
  5. Handscombe C.M., Elson D.M. Rationalization of the national survey of air pollution monitoring network of the United Kingdom using spatial correlation analysis: A case study of the Greater London area // Atmos. Environ. 1982. V. 16, N 5. P. 1061–1070.
  6. Liu M.K., Avrin J. Methodology for designing an optimum air quality monitoring network. EPA-600/4-81-002, PB81-17M91. 1981.
  7. Modak P.M., Lohani B.N. Optimization of ambient air quality monitoring networks (part I) // Environ. Monitor. Asses. 1985. N 5. P. 1–19.
  8. Modak P.M., Lohani B.N. Optimization of ambient air quality monitoring networks (part II) // Environ. Monitor. Asses. 1985. N 5. P. 20–38.
  9. Katoh H., Nagasawa S., Ootaki A., Shiozawa K. Study on representative ness of air monitoring station by statistical model (in Japanese) // J. Jpn. Soc. Air Pollut. 1985. N 20. P. 384–393.
  10. Pokrovskij O.M. O racionalizacii regional'nyh nabljudatel'nyh setej // Meteorol. i gidrol. 2000. N 8. P. 5–21.
  11. Corti A., Senatore A. Project of an air quality monitoring network for industrial site in Italy // Environ. Monitor. Asses. 2000. V. 65. P. 109–117.
  12. Van Egmond N.D., Onderdelinden D. Objective analysis of air pollution monitoring network data; spatial interpolation and network density // Atmos. Environ. 1981. V. 15. P. 1035–1046.
  13. Hougland E.S., Stephens N.T. Air pollutant monitor siting by analytical techniques // J. Air Pollut. Control. V. 26, N 11976. P. 51–53.
  14. Noll K.E., Miller T.L., Norco J.E., Raufer R.K. An objective air monitoring site selection methodology for large point sources // Atmos. Environ. 1986. V. 11. P. 1051–1059.
  15. Buell C.E. Objective procedures for optimum location of air pollution observation stations. EPA-650/4-75-005, PB-252622. 1975.
  16. Balin Ju.S., Belan B.D., Nadeev A.I., Panchenko M.V. Sistema operativnogo kontrolja zagrjaznenija vozdushnogo bassejna promyshlennyh centrov «Gorod» // Optika atmosf. i okeana. 1994. V. 7, N 2. P. 163–176.
  17. Borodulin A.I., Desjatkov B.M. Modelirovanie rasprostranenija primesej v pogranichnom sloe atmosfery. Novosibirsk: NGU, 2007. 376 p.
  18. Klimat Novosibirska / Pod red. S.D. Koshinskogo. L.: Gidrometeoizdat, 1979. 223 p.