Source attribution of nitrogen dioxide over the Indian subcontinent using WRF-chem. (April 2023)
- Record Type:
- Journal Article
- Title:
- Source attribution of nitrogen dioxide over the Indian subcontinent using WRF-chem. (April 2023)
- Main Title:
- Source attribution of nitrogen dioxide over the Indian subcontinent using WRF-chem
- Authors:
- Mukherjee, Pubali
Srivastava, Shuchita
Mitra, Debashish - Abstract:
- Abstract: Present study investigated the contribution of various source regions/types of NO2 over the Indian subcontinent using WRF-Chem model during 2015. Model simulated NOx is able to reproduce the major observed features over Pune, Udaipur and Dehradun. The relative NO2 contribution from five regional sectors namely Northern, Eastern, Southern, Western India and North-East India & Myanmar was analysed by enabling anthropogenic emissions of NOx only over the chosen regional sector. NO2 distribution at 900 hPa showed that the eastern, northern, western, southern and North-east India & Myanmar regions receive contribution of 10.81 ± 6.96 ppbv, 6.02 ± 6.57 ppbv, 6.52 ± 3.99 ppbv, 3.29 ± 3.62 ppbv and 1.65 ± 1.18 ppbv respectively from local regional emissions. To quantify the contribution from Energy, transport, industry and agriculture sectors, model simulations were made enabling each type of anthropogenic emission separately. Over eastern, western and north eastern regions, maximum NO2 is contributed from the energy sector with 5.58 ± 4.44 ppbv, 3.70 ± 2.82 ppbv and 1.64 ± 1.33 ppbv respectively. However, over Northern and Southern regional sectors, contribution of transport exceeded from energy contribution by 0.6 ppbv and 0.25 ppbv respectively. Model simulations were made with reduced anthropogenic emissions to understand its impact on other criteria pollutant ozone. Reduction of NOx anthropogenic emissions by 30% over the simulation domain resulted in a decrease ofAbstract: Present study investigated the contribution of various source regions/types of NO2 over the Indian subcontinent using WRF-Chem model during 2015. Model simulated NOx is able to reproduce the major observed features over Pune, Udaipur and Dehradun. The relative NO2 contribution from five regional sectors namely Northern, Eastern, Southern, Western India and North-East India & Myanmar was analysed by enabling anthropogenic emissions of NOx only over the chosen regional sector. NO2 distribution at 900 hPa showed that the eastern, northern, western, southern and North-east India & Myanmar regions receive contribution of 10.81 ± 6.96 ppbv, 6.02 ± 6.57 ppbv, 6.52 ± 3.99 ppbv, 3.29 ± 3.62 ppbv and 1.65 ± 1.18 ppbv respectively from local regional emissions. To quantify the contribution from Energy, transport, industry and agriculture sectors, model simulations were made enabling each type of anthropogenic emission separately. Over eastern, western and north eastern regions, maximum NO2 is contributed from the energy sector with 5.58 ± 4.44 ppbv, 3.70 ± 2.82 ppbv and 1.64 ± 1.33 ppbv respectively. However, over Northern and Southern regional sectors, contribution of transport exceeded from energy contribution by 0.6 ppbv and 0.25 ppbv respectively. Model simulations were made with reduced anthropogenic emissions to understand its impact on other criteria pollutant ozone. Reduction of NOx anthropogenic emissions by 30% over the simulation domain resulted in a decrease of ozone at 900 hPa by up to 40 ppbv and free tropospheric ozone by 20–30 ppbv. A nonlinear behaviour of ozone with respect to NOx was evident over certain parts of northern India during winter and autumn. These results highlight the importance of different source regions/types of NOx anthropogenic emissions over India. Highlights: The WRF-Chem model is used to understand the impact of different emission sources on the surface distribution of NO2 over the Indian region. The most important source of NO2 over the Indian region was found to be thermal power plant emissions, which contributed 5.85 ± 4.44 ppbv, 3.70 ± 2.82 ppbv, and 1.64 ± 1.33 ppbv over eastern, western, and northeast India and Myanmar regions respectively. The study found that regional emissions in Eastern India were a significant contributor to surface NO2 levels, at 10.81 ± 6.96 ppbv during a winter month. The study also found that reducing NOx anthropogenic emissions by 30% over the simulation domain resulted in a decrease of surface ozone by up to 40 ppbv. However, it also found that under reduced (30%) NOx anthropogenic emission scenarios ozone increased over some specific locations under reduced NOx emission scenario during winter season. This can indicate the presence of hydrocarbon limited regimes at these NOx emission hotspot locations. These results highlight the importance of reduction of NOx anthropogenic emissions over India and the need to consider other factors like hydrocarbon emissions while implementing emission control strategies. … (more)
- Is Part Of:
- Journal of atmospheric and solar-terrestrial physics. Volume 245(2023)
- Journal:
- Journal of atmospheric and solar-terrestrial physics
- Issue:
- Volume 245(2023)
- Issue Display:
- Volume 245, Issue 2023 (2023)
- Year:
- 2023
- Volume:
- 245
- Issue:
- 2023
- Issue Sort Value:
- 2023-0245-2023-0000
- Page Start:
- Page End:
- Publication Date:
- 2023-04
- Subjects:
- Nitrogen dioxide -- Source apportionment -- WRF_Chem -- Indian subcontinent
Geophysics -- Periodicals
Atmospheric physics -- Periodicals
Géophysique -- Périodiques
Météorologie physique -- Périodiques
Electronic journals
551.51 - Journal URLs:
- http://www.sciencedirect.com/science/journal/13646826 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.jastp.2023.106051 ↗
- Languages:
- English
- ISSNs:
- 1364-6826
- Deposit Type:
- Legaldeposit
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4947.950000
British Library DSC - BLDSS-3PM
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