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      Long‑term historical trends in air pollutant emissions in South Korea (2000–2018)

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      https://www.riss.kr/link?id=A108780293

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      다국어 초록 (Multilingual Abstract)

      This study aims to understand the impact of previous air quality improvement policies on historical emission changes by examining long-term emission trends in Korea. Annual emissions from 2000 to 2018 were estimated using Korea’s official emissions inventory, the Clean Air Policy Support System (CAPSS). To ensure a consistent comparison, standardization of the method for calculating emissions and unification of the reported emission sectors were conducted each year. Furthermore, Korea’s emissions history was compared with that of neighboring countries, such as China and Japan. The annual emissions of these countries were acquired from the HTAPv3 emissions inventory, an international long-term emission trend study. For comparison, the emission source classification of Korea was matched with that of HTAPv3. As a result of the analysis, NOx and SOx emissions in Korea have shown decreasing trends, whereas VOCs (volatile organic compounds) have indicated a gradual increasing trend since 2000. Compared to the previous period of implementing South Korea’s air quality improvement policy, changes in NOx and SOx emissions, which are combustion-related pollutants, showed a relationship with the policy’s timeline. However, noncombustion- related pollutants such as VOCs did not exhibit such a relationship. It was concluded that the related policies were not as effective in reducing VOCs as planned in the policy. By comparing the emission trends of Japan, Korea, and China, it was confirmed that Japan was the first country to experience a decrease in combustion-related pollutants emissions, followed by Korea and China. Additionally, combustion-related pollutants decreased in all three countries, whereas VOCs decreased only in Japan. VOC is a precursor material generating secondary PM2.5 and Ozone; considering that, if relevant policies are additionally implemented to control future PM2.5 concentrations, and to reduce emissions efficiently and effectively, Japan’s VOC reduction policies can be applied to Korea’s emission reduction policies. These results are expected to serve as important references when establishing future air quality improvement policies in Korea.
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      This study aims to understand the impact of previous air quality improvement policies on historical emission changes by examining long-term emission trends in Korea. Annual emissions from 2000 to 2018 were estimated using Korea’s official emissions ...

      This study aims to understand the impact of previous air quality improvement policies on historical emission changes by examining long-term emission trends in Korea. Annual emissions from 2000 to 2018 were estimated using Korea’s official emissions inventory, the Clean Air Policy Support System (CAPSS). To ensure a consistent comparison, standardization of the method for calculating emissions and unification of the reported emission sectors were conducted each year. Furthermore, Korea’s emissions history was compared with that of neighboring countries, such as China and Japan. The annual emissions of these countries were acquired from the HTAPv3 emissions inventory, an international long-term emission trend study. For comparison, the emission source classification of Korea was matched with that of HTAPv3. As a result of the analysis, NOx and SOx emissions in Korea have shown decreasing trends, whereas VOCs (volatile organic compounds) have indicated a gradual increasing trend since 2000. Compared to the previous period of implementing South Korea’s air quality improvement policy, changes in NOx and SOx emissions, which are combustion-related pollutants, showed a relationship with the policy’s timeline. However, noncombustion- related pollutants such as VOCs did not exhibit such a relationship. It was concluded that the related policies were not as effective in reducing VOCs as planned in the policy. By comparing the emission trends of Japan, Korea, and China, it was confirmed that Japan was the first country to experience a decrease in combustion-related pollutants emissions, followed by Korea and China. Additionally, combustion-related pollutants decreased in all three countries, whereas VOCs decreased only in Japan. VOC is a precursor material generating secondary PM2.5 and Ozone; considering that, if relevant policies are additionally implemented to control future PM2.5 concentrations, and to reduce emissions efficiently and effectively, Japan’s VOC reduction policies can be applied to Korea’s emission reduction policies. These results are expected to serve as important references when establishing future air quality improvement policies in Korea.

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      참고문헌 (Reference)

      1 배정환 ; 김유선, "우리나라 대기오염배출 원인과 저감 정책 효과 분석" 한국환경경제학회 25 (25): 545-564, 2016

      2 김서연 ; 김진석 ; 허혜정 ; 장명도 ; 이재범 ; 홍성철 ; 김옥길 ; 우정헌, "Update of the year 2019 modeling emission inventory in China" 한국대기환경학회 17 (17): 20-20, 2023

      3 Crippa, M., "The HTAP_v3 emission mosaic: Merging regional and global monthly emissions (2000–2018) to support air quality modelling and policies" 15 (15): 2667-2694, 2023

      4 National Institute of Environmental Research(NIER)., "Study on comprehensive evaluation and improvement for the 4thLTP, 11–1480523–003834–01"

      5 Ministry of Environment (ME), "Special Act on the Improvement of Air Quality in Seoul Metropolitan Area, Act No. 7401, Dec. 31, 2003, (Implemented in 2005)"

      6 Sugata, S., "Simulation model and emission data and evaluation of the aerosol volatilization characteristic for the improvement of the accuracy of PM2.5 forecast 2014~2016" National Institute for Environmental Studies (NIES) 2014

      7 Tokyo Metropolitan Government, "Revised edition of Tokyo Metropolitan Government Guide for Reducing VOC Emissions (in-factory version)" Chemicals Substances Management Section, Environmental Improvement Division, Bureau of Environment, Tokyo Metropolitan

      8 National Air Emission Inventory and Research Center(NAEIR)., "Manual on National Air Pollutant Emission Calculation Methods(IV)"

      9 National Institute of Environmental Research(NIER)., "Manual on National Air Pollutant Emission Calculation Methods(III)"

      10 DaeGyun Lee ; Kee-Won Jang ; Yong-Mi Lee ; Chul Yoo ; Kyoung-Hee Kang ; Ju-Hyoung Lee ; Sung-Woon Jung ; Jung-Min Park ; Sang-Bo Lee ; Jong-Soo Han ; Ji-Hyung Hong ; Suk-Jo Lee, "Korean National Emissions Inventory System and 2007 Air Pollutant Emissions" 한국대기환경학회 5 (5): 278-291, 2011

      1 배정환 ; 김유선, "우리나라 대기오염배출 원인과 저감 정책 효과 분석" 한국환경경제학회 25 (25): 545-564, 2016

      2 김서연 ; 김진석 ; 허혜정 ; 장명도 ; 이재범 ; 홍성철 ; 김옥길 ; 우정헌, "Update of the year 2019 modeling emission inventory in China" 한국대기환경학회 17 (17): 20-20, 2023

      3 Crippa, M., "The HTAP_v3 emission mosaic: Merging regional and global monthly emissions (2000–2018) to support air quality modelling and policies" 15 (15): 2667-2694, 2023

      4 National Institute of Environmental Research(NIER)., "Study on comprehensive evaluation and improvement for the 4thLTP, 11–1480523–003834–01"

      5 Ministry of Environment (ME), "Special Act on the Improvement of Air Quality in Seoul Metropolitan Area, Act No. 7401, Dec. 31, 2003, (Implemented in 2005)"

      6 Sugata, S., "Simulation model and emission data and evaluation of the aerosol volatilization characteristic for the improvement of the accuracy of PM2.5 forecast 2014~2016" National Institute for Environmental Studies (NIES) 2014

      7 Tokyo Metropolitan Government, "Revised edition of Tokyo Metropolitan Government Guide for Reducing VOC Emissions (in-factory version)" Chemicals Substances Management Section, Environmental Improvement Division, Bureau of Environment, Tokyo Metropolitan

      8 National Air Emission Inventory and Research Center(NAEIR)., "Manual on National Air Pollutant Emission Calculation Methods(IV)"

      9 National Institute of Environmental Research(NIER)., "Manual on National Air Pollutant Emission Calculation Methods(III)"

      10 DaeGyun Lee ; Kee-Won Jang ; Yong-Mi Lee ; Chul Yoo ; Kyoung-Hee Kang ; Ju-Hyoung Lee ; Sung-Woon Jung ; Jung-Min Park ; Sang-Bo Lee ; Jong-Soo Han ; Ji-Hyung Hong ; Suk-Jo Lee, "Korean National Emissions Inventory System and 2007 Air Pollutant Emissions" 한국대기환경학회 5 (5): 278-291, 2011

      11 Korea Environmental Industry & Technology Institute (KEITI), "IP Analysis Reports in Korea and Other Countries, Air Quality Regulation Trends and Countermeasures" Ministry of Environment 2020

      12 Ministry of Environment (ME), "Handbook for the total amount management system for air pollutants at workplaces in the Seoul Metropolitan Area, 11–1480000–001521–01"

      13 Janssens-Maenhout, G., "HTAP_v2.2: A mosaic of regional and global emission grid maps for 2008 and 2010 to study hemispheric transport of air pollution" 15 : 11411-11432, 2015

      14 National Institute of Environmental Research(NIER)., "Estimation for emission of air pollutants applied by the latest method"

      15 Energy Information Administration (EIA), "Coming changes in marine fuel sulfur limits will affect global oil markets"

      16 Ministry of Environment(ME)., "Clean Air Conservation Act, Amended by Act No. 8466, May 17, 2007"

      17 Kuenen, J., "CAMS-REG-v4: A state-of-the-art high-resolution European emission inventory for air quality modelling" 14 : 491-515, 2022

      18 Ministry of Environment (ME), "Air Quality Yearbook 2018"

      19 Ministry of Environment(ME), "2nd Air Quality Improvement Comprehensive Plan 2016~2025" 2016

      20 National Air Emission Inventory and Research Center(NAEIR)., "2018 National Air Pollutants Emission"

      21 National Air Emission Inventory and Research Center(NAEIR)., "2017 National Air Pollutants Emission"

      22 National Institute of Environmental Research (NIER), "2005–2016 National Air Pollutants Emission"

      23 Ministry of Environment(ME), "1st air quality improvement comprehensive plan 2006~2015" 2006

      24 Air Pollutant Emissions Inventory (APEI), "1990–2016 Air pollutant emission inventory report"

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