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7. M.R. Houyoux et al., Emission inventory development and processing for the Seasonal Model
for Regional Air Quality (SMRAQ) project. J. Geophys. Res. Atmos. 105, 9079–9909 (2000)
8. U. Im et al., Evaluation of operational online-coupled regional air quality models over Europe
and North America in the context of AQMEII phase 2. Part II: Particulate matter. Atmos.
Environ. (2014). http://dx.doi.org/10.1016/j.atmosenv.2014.08.072
9. G. Janssens-Maenhout, M. Crippa, D. Guizzardi, F. Dentener, M. Muntean, G. Pouliot, T.
Keating, Q. Zhang, J. Kurokawa, R. Wankmuller, H.D. van der Gon, J.J.P. Kuenen, Z. Klimont,
G. Frost, S. Darras, B. Koffi, M. Li, HTAP_v2.2: a mosaic of regional and global emission grid
maps for 2008 and 2010 to study hemispheric transport of air pollution. Atmos. Chem. Phys.
15(19), 11411–11432 (2015)
10. Z. Klimont, K. Kupiainen, C. Heyes, P. Purohit, J. Cofala, P. Rafaj, J. Borken-Kleefeld, W.
Schöpp, Global anthropogenic emissions of particulate matter including black carbon. Atmos.
Chem. Phys. 17(14), 8681–8723 (2017)
11. V. Matthias, J.A. Arndt, A. Aulinger, J. Bieser, H.A.C. Denier van der Gon, R. Kranenburg,
J. Kuenen, D. Neumann, G. Pouliot, M. Quante, Modeling emissions for three dimensional
atmospheric chemistry transport models. J. Air Waste Manag. Assoc. 68(8), 763–800 (2018)
12. L. Menut, A. Goussebaile, B. Bessagnet, D. Khvorostiyanov, A. Ung, Impact of realistic hourly
emissions profiles on air pollutants concentrations modelled with CHIMERE. Atmos. Environ.
49, 233–244 (2012)
13. A. Mues et al., Sensitivity of air pollution simulations with LOTOS-EUROS to the temporal
distribution of anthropogenic emissions. Atmos. Chem. Phys. 14(2), 939–955 (2014)
14. T. Ohara, H. Akimoto, J. Kurokawa, N. Horii, K. Yamaji, X. Yan, T. Hayasaka, An Asian
emission inventory of anthropogenic emission sources for the period 1980–2020. Atmos. Chem.
Phys. 7(16), 4419–4444 (2007)
15. J.G.J. Olivier, J.A.H.W. Peters, J. Bakker, J.J.M. Berdowski, A.J.H. Visschedijk, J.J. Bloos,
EDGAR 3.2: Reference database with trend data of global greenhouse gas emissions for 1970–
1995, in Non-CO2 Greenhouse Gases: Scientific Understanding, Control Options and Policy
Aspects (2002), pp. 291–292
16. S. Seum, J. Bieser, S. Ehrenberger, Ul. Kugler, German and European Ground-Transport Emissions in three different scenarios until 2040. Transport Research Arena, TRA 2018, 16–19. April
2018, Wien, Austria (2018)
17. C.A. Skjoth et al., Spatial and temporal variations in ammonia emissions—a freely accessible
model code for Europe. Atmos. Chem. Phys. 11(11), 5221–5236 (2011)
V. Matthias et al.
7. M.R. Houyoux et al., Emission inventory development and processing for the Seasonal Model
for Regional Air Quality (SMRAQ) project. J. Geophys. Res. Atmos. 105, 9079–9909 (2000)
8. U. Im et al., Evaluation of operational online-coupled regional air quality models over Europe
and North America in the context of AQMEII phase 2. Part II: Particulate matter. Atmos.
Environ. (2014). http://dx.doi.org/10.1016/j.atmosenv.2014.08.072
9. G. Janssens-Maenhout, M. Crippa, D. Guizzardi, F. Dentener, M. Muntean, G. Pouliot, T.
Keating, Q. Zhang, J. Kurokawa, R. Wankmuller, H.D. van der Gon, J.J.P. Kuenen, Z. Klimont,
G. Frost, S. Darras, B. Koffi, M. Li, HTAP_v2.2: a mosaic of regional and global emission grid
maps for 2008 and 2010 to study hemispheric transport of air pollution. Atmos. Chem. Phys.
15(19), 11411–11432 (2015)
10. Z. Klimont, K. Kupiainen, C. Heyes, P. Purohit, J. Cofala, P. Rafaj, J. Borken-Kleefeld, W.
Schöpp, Global anthropogenic emissions of particulate matter including black carbon. Atmos.
Chem. Phys. 17(14), 8681–8723 (2017)
11. V. Matthias, J.A. Arndt, A. Aulinger, J. Bieser, H.A.C. Denier van der Gon, R. Kranenburg,
J. Kuenen, D. Neumann, G. Pouliot, M. Quante, Modeling emissions for three dimensional
atmospheric chemistry transport models. J. Air Waste Manag. Assoc. 68(8), 763–800 (2018)
12. L. Menut, A. Goussebaile, B. Bessagnet, D. Khvorostiyanov, A. Ung, Impact of realistic hourly
emissions profiles on air pollutants concentrations modelled with CHIMERE. Atmos. Environ.
49, 233–244 (2012)
13. A. Mues et al., Sensitivity of air pollution simulations with LOTOS-EUROS to the temporal
distribution of anthropogenic emissions. Atmos. Chem. Phys. 14(2), 939–955 (2014)
14. T. Ohara, H. Akimoto, J. Kurokawa, N. Horii, K. Yamaji, X. Yan, T. Hayasaka, An Asian
emission inventory of anthropogenic emission sources for the period 1980–2020. Atmos. Chem.
Phys. 7(16), 4419–4444 (2007)
15. J.G.J. Olivier, J.A.H.W. Peters, J. Bakker, J.J.M. Berdowski, A.J.H. Visschedijk, J.J. Bloos,
EDGAR 3.2: Reference database with trend data of global greenhouse gas emissions for 1970–
1995, in Non-CO2 Greenhouse Gases: Scientific Understanding, Control Options and Policy
Aspects (2002), pp. 291–292
16. S. Seum, J. Bieser, S. Ehrenberger, Ul. Kugler, German and European Ground-Transport Emissions in three different scenarios until 2040. Transport Research Arena, TRA 2018, 16–19. April
2018, Wien, Austria (2018)
17. C.A. Skjoth et al., Spatial and temporal variations in ammonia emissions—a freely accessible
model code for Europe. Atmos. Chem. Phys. 11(11), 5221–5236 (2011)
