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@article{MM_2002_14_4_a6, author = {E. V. Korolenok and O. V. Nagornov}, title = {Simulation of ozone landing concentration of town region}, journal = {Matemati\v{c}eskoe modelirovanie}, pages = {80--94}, publisher = {mathdoc}, volume = {14}, number = {4}, year = {2002}, language = {ru}, url = {http://geodesic.mathdoc.fr/item/MM_2002_14_4_a6/} }
E. V. Korolenok; O. V. Nagornov. Simulation of ozone landing concentration of town region. Matematičeskoe modelirovanie, Tome 14 (2002) no. 4, pp. 80-94. http://geodesic.mathdoc.fr/item/MM_2002_14_4_a6/
[1] Silman S., Samson P., “Impact of temperature on oxidant photochemistry in urban, polluted rural and remote environments”, J. of Geophysical Reesearch. D, 100:6 (1995), 11497–11508 | DOI
[2] Mensink C., Vlieger I., “Road transport scenarios and their impact on acidification and ozone formation”, Proceedings of sixth International Conference on Air Pollution, Genova. Italy, 1998, 387–396
[3] US EPA. Air and Radiation, Washington, 1999
[4] Air Quality Guidelines for Europe, WHO Regional Publication, European Series, 23, WHO, Regional office for Europe, Copenhagen, 1987
[5] Samarskaya E. A., D. V. Suzan, V. F. Tishkini, “Postroenie matematicheskoi modeli rasprostraneniya zagryaznenii v atmosfere”, Matem. modelirovanie, 9:11 (1997), 59–71 | MR | Zbl
[6] Carmicael G. R., Peters L. K., Kitada T., “A second generation model for regional-scale trans port/chemistry/deposition”, Atmospheric Environment, 20:1 (1986), 173–188 | DOI
[7] Nagornov O. V., Quaranta N. E., Caligaris M. G., Rodriguez G. B., Caligaris R. E., “Propagation of air pollution in urban area”, MapleTech, 5, no. 2–3, Birkhauser, Boston, 1998, 102–106
[8] Nagornov O. V., Korolenok E. V., Calvo C. A. et al., Air contamination in San Juan (Argentina), Proceedings of the Eighth International Conference “Air Pollution-2000”, WIT Press, Cambridge
[9] Chang Y. S., Gregory R. Carmichael, H. Kurita, H. Ueda, “The transport and formation of photochemical oxidants in central Japan”, Atmospheric Environment, 23:2 (1989), 363–393 | DOI
[10] Reynolds S. D., Roth P. M., Seinfeld J. H., “Mathematical modeling of photochemical air pollution. 1: Formulation of the model”, Atmospheric Environment, 7 (1973), 1033–1061 | DOI
[11] Uorner S., Uork K., Zagryaznenie vozdukha. Istochniki i kontrol, Mir, M., 1980
[12] Seinfeld J. H., Atmospheric chemistry and physics of air pollution, Wiley, NJ, 1986
[13] Oran E., Boris Dzh., Chislennoe modelirovanie reagiruyuschikh potokov, Mir, M., 1990 | MR
[14] Berlyand M. E., Sovremennye problemy atmosfernoi diffuzii i zagryazneniya atmosfery, Gidrometeoizdat, L., 1975
[15] Ku J.-Y., Rao S. T., Rao K. S., “Numerical simulation of air pollution in urban areas: model development”, Atmospheric Environment, 21:1 (1987), 201–212 | DOI
[16] Yoshida A., “Two-dimensional numerical simulation of thermal structure of urban polluted atmosphere”, Atmospheric Environment, 25 (1991), 17–23
[17] Costa M., Baldasano J. M., “Development of a source emission model for atmospheric pollutants in the Barcelona area”, Atmospheric Environment, 30:2 (1996), 309–318 | DOI