J. H. Seinfeld and S. N. Pandis, Atmospheric Chemistry and Physics: from Air Pollution to Climate Change, 2nd ed. (Wiley, New York, 2006).
N. F. Elansky, A. V. Shilkin, N. A. Ponomarev, E. G. Semutnikova, and P. V. Zakharova, “Weekly patterns and weekend effects of air pollution in the Moscow megacity,” Atmos. Environ. 224, 117303 (2020). https://doi.org/10.1016/j.atmosenv.2020.117303
N. F. Elansky, A. V. Shilkin, N. A. Ponomarev, P. V. Zakharova, M. D., Kachko, and T. I. Poliakov, “Spatiotemporal variations in the content of pollutants in the Moscow air basin and their emissions,” Izv., Atmos. Ocean. Phys. 58 (1), 80–94 (2022). https://doi.org/10.1134/S0001433822010029
M. A. Lokoshchenko, “Urban heat island and urban dry island in Moscow and their centennial changes,” J. Appl. Meteorol. Climatol. 56, 2729–2745 (2017). https://doi.org/10.1175/JAMC-D-16-0383.1
Article ADS MATH Google Scholar
M. A. Lokoshchenko, and L. I. Alekseeva, “Influence of meteorological parameters on the urban heat island in Moscow,” Atmosphere 14, 507 (2023). https://doi.org/10.3390/atmos14030507
Article ADS MATH Google Scholar
S. A. Varentsova, and M. I. Varentsov, “A new approach to study the long-term urban heat island evolution using time-dependent spectroscopy,” Urban Clim. 40, 101026 (2021). https://doi.org/10.1016/j.uclim.2021.101026
S. Chapman, J. E. M. Watson, A. Salazar, M. Thatcher, and C. A. McAlpine, “The impact of urbanization and climate change on urban temperatures: A systematic review,” Landscape Ecol. 32, 1921–1935 (2017). https://doi.org/10.1007/s10980-017-0561-4
L. Allen, F. Lindberg, and C. Grimmond, “Global to city scale urban anthropogenic heat flux: Model and variability,” Int. J. Climatol. 31 (13), 1990–2005 (2011).
A. S. Ginzburg, and S. A. Dokukin, “Influence of thermal air pollution on the urban climate (estimates using the COSMO-CLM model),” Izv. Atmos. Ocean. Phys. 57, 47–59 (2021). https://doi.org/10.1134/S0001433821010059
M. A. Lokoshchenko, “Wind regime in the lower atmosphere over Moscow from the long-term acoustic sounding data,” Meteorol. Hydrol. 39, 218–227 (2014). https://doi.org/10.3103/S1068373914040025
N. Chubarova, E. Androsova, A. Kirsanov, M. Varentsov, and G. Rivin, “Urban aerosol, its radiative and temperature response in comparison with urban canopy effects in megacity based on COSMO-ART modeling,” Urban Climate. 53, 101762 (2024). https://doi.org/10.1016/j.uclim.2023.101762
M. Varentsov, T. Samsonov, and M. Demuzere, “Impact of urban canopy parameters on a megacity’s modelled thermal environment,” Atmosphere 11, 1349 (2020). https://doi.org/10.3390/atmos11121349
Ecological and Climatic Characteristics of the Atmosphere of Moscow in 2018 According to the Moscow State University Meteorological Observatory, Ed. by M.A. Lokoshchenko (MAKS Press, Moscow, 2019) [in Russian].
A. Baklanov, L. T. Molina, and M. Gauss, “Megacities, air quality and climate,” Atm. Environ. 126, 235–249 (2016). https://doi.org/10.1016/j.atmosenv.2015.11.059
L. T. Molina, S. Madronich, J. S. Gaffney, E. Apel, B. de Foy, J. Fast, R. Ferrare, S. Herndon, J. L. Jimenez, B. Lamb, A. R. Osornio-Vargas, P. Russell, J. J. Schauer, P. S. Stevens, R. Volkamer, and M. Zavala, “An overview of the MILAGRO 2006 campaign: Mexico city emissions and their transport and transformation,” Atmos. Chem. Phys. 10, 8697–8760 (2010). https://doi.org/10.5194/acp-10-8697-2010
A. Baklanov, M. Lawrence, S. Pandis, A. Mahura, S. Finardi, N. Moussiopoulos, M. Beekmann, P. Laj, L. Gomes, J.-L. Jaffrezo, A. Borbon, I. Coll, V. Gros, J. Sciare, J. Kukkonen, S. Galmarini, F. Giorgi, S. Grimmond, I. Esau, A. Stohl, B. Denby, T. Wagner, T. Butler, U. Baltensperger, P. Builtjes, D. van den Hout, H. D. van der Gon, B. Collins, H. Schluenzen, M. Kulmala, S. Zilitinkevich, R. Sokhi, R. Friedrich, J. Theloke, U. Kummer, L. Jalkinen, T. Halenka, A. Wiedensholer, J. Pyle, and W. B. Rossow, “MEGAPOLI: Concept of multi-scale modelling of megacity impact on air quality and climate,” Adv. Sci. Res. 4, 115–120 (2010). https://doi.org/10.5194/asr-4-115-2010
G. Beig, System of Air Quality Forecasting and Research (SAFAR – India). WMO GAW Report No. 217 (WMO, 2015). https://mce2.org/wmogurme/images/reports/GAW_217%20(SAFAR).pdf. Cited May 17, 2024.
J. Tan, L. Yang, C.S.B. Grimmond, J. Shi, W. Gu, Y. Chang, P. Hu, J. Sun, X. Ao, and Z. Han, “Urban integrated meteorological observations: Practice and experience in Shanghai, China,” Bull. Am. Meteor. Soc. 96, 85–102 (2015). https://doi.org/10.1175/BAMS-D-13-00216.1
Impacts of Megacities on Air Pollution and Climate. WMO GAW report No. 205 (WMO, 2012). https://library.wmo.int/records/item/48602-wmo-igac-impacts-of-megacities-on-air-pollution-and-climate?offset=91. Cited May 17, 2024.
S.I. Efe, and A.T. Efe, “Spatial distribution of particulate matter (PM10) in Warri metropolis, Nigeria,” Environmentalist. 28, 385–394 (2008). https://doi.org/10.1007/s10669-007-9154-0
J. Silva, J. Rojas, M. Norabuena, C. Molina, R. A. Toro, and M. A. Leiva-Guzmán, “Particulate matter levels in a South American megacity: The metropolitan area of Lima-Callao, Peru,” Environ. Monit. Assess. 189, 635 (2017). https://doi.org/10.1007/s10661-017-6327-2
S. H. M. Shafie, M. Mahmud, S. Mohamad, N. L. F. Rameli, R. Abdullah, and A. F. Mohamed, “Influence of urban air pollution on the population in the Klang Valley, Malaysia: A spatial approach,” Ecol Process. 11, 3 (2022). https://doi.org/10.1186/s13717-021-00342-0
H. Nguyen, F. Faruque, and C. Roper, “Comparison of PM2.5 concentrations in cities of varying population size across Mississippi, USA,” Water Air Soil Pollut. 233, 153 (2022). https://doi.org/10.1007/s11270-022-05612-x
Article ADS MATH Google Scholar
C. Li, H.-di He, and Z.-ren Peng, “Spatial distributions of particulate matter in neighborhoods along the highway using unmanned aerial vehicle in Shanghai,” Building Environ. 211, 108754 (2022). https://doi.org/10.1016/j.buildenv.2022.108754
E. Blanco, F. Rubilar, M. E. Quinteros, K. Cayupi, S. Ayala, S. Lu, R. B. Jimenez, J. P. Cárdenas, C. A. Blazquez, J. M. Delgado-Saborit, R. M. Harrison, and P. Ruiz-Rudolph, “Spatial distribution of particulate matter on winter nights in Temuco, Chile: Studying the impact of residential wood-burning using mobile monitoring,” Atm. Environ. 286, 119255 (2022). https://doi.org/10.1016/j.atmosenv.2022.119255
J. B. Renard, E. Poincelet, I. Annesi-Maesano, and J. Surcin, “Spatial distribution of PM2.5 mass and number concentrations in Paris (France) from the pollutrack network of mobile sensors during 2018–2022,” Sensors (Basel). 23(20), 8560 (2023). https://doi.org/10.3390/s23208560
Article ADS MATH Google Scholar
Report on the State of the Environment in Moscow in 2022, Ed. by A. O. Kulbachevsky [in Russian]. https://mosecom.mos.ru/wp-content/uploads/2023/11/2022Gosdoklad-1.pdf. Cited May 17, 2024.
Housing Renovation Program. https://stroi.mos.ru/novaia-proghramma-rienovatsii-piatietazhiek. Cited March 14, 2024.
Moscow Program of Integrated Development of Territories. https://krt.mos.ru/. Cited May 14, 2024.
Development of the Moscow Transport Hub. https://stroi.mos.ru/razvitie-uds. Cited March 19, 2024.
M. Son, J.-I. Lee, J.-J. Kim, S.-J. Park, D. Kim, and D.-Y. Kim, “Evaluation of the wind environment around multiple urban canyons using numerical modeling,” Atmosphere 13, 834 (2022). https://doi.org/10.3390/atmos13050834
Article ADS MATH Google Scholar
M. Santamouris, C. Georgakis, and A. Niachou, “On the estimation of wind speed in urban canyons for ventilation purposes—Part 2: Using of data driven techniques to calculate the more probable wind speed in urban canyons for low ambient wind speeds,” Building Environ. 43 (8), 1411–1418 (2008). https://doi.org/10.1016/j.buildenv.2007.01.042
J. Zhong, X.-M. Cai, and W. J. Bloss, “Coupling dynamics and chemistry in the air pollution modelling of street canyons: A review,” Environ. Pollut. 214, 690–704 (2016). https://doi.org/10.1016/j.envpol.2016.04.052
M. I. Varentsov, M. Yu. Grishchenko, and H. Wouters, “Simultaneous assessment of the summer urban heat island in Moscow megacity based on in situ observations, thermal satellite images and mesoscale modeling,” Geography, Environment, Sustainability 12 (4), 74–95 (2019). https://doi.org/10.24057/2071-9388-2019-10
N. Ye. Chubarova, Ye. Yu. Zhdanova, Ye. Ye. Androsova, A. A Kirsanov, M. V. Shatunova, Yu. O. Khlestova, Ye. V. Volpert, A. A. Poliukhov, I. D. Eremina, D. V. Vlasov, O. B. Popovicheva, A. S. Ivanov, Ye. V. Gorbarenko, Ye. I. Nezval, D. V. Blinov, and G. S.Rivin, The Aerosol Urban Pollution and Its Effects on Weather, Regional Climate and Geochemical Processes (MAKS Press, Moscow, 2019) [in Russian]. https://doi.org/10.29003/m1475.978-5-317-06464-8
N. E. Chubarova, H. Vogel, E.E. Androsova, A. A. Kirsanov, O. B. Popovicheva, B. Vogel, and G. S. Rivin, “Columnar and surface urban aerosol in the Moscow megacity according to measurements and simulations with the COSMO-ART model,” Atmos. Chem. Phys. 22, 10443–10466 (2022). https://doi.org/10.5194/acp-22-10443-2022
D. Piskunova, N. Chubarova, A. Poliukhov, and E. Zhdanova, “Radiative regime according to the new RAD-MSU (BSRN) complex in Moscow: The roles of aerosol, surface albedo, and sunshine duration,” Atmosphere 15, 144 (2024). https://doi.org/10.3390/atmos15020144
O. Popovicheva, M. Chichaeva, R. Kovach, E. Zhdanova, and N. Kasimov, “Seasonal, weekly, and diurnal black carbon in Moscow megacity background under impact of urban and regional sources,” Atmosphere 13, 563 (2022). https://doi.org/10.3390/atmos13040563
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