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NTIS 바로가기韓國環境保健學會誌 = Journal of environmental health sciences, v.48 no.2, 2022년, pp.66 - 74
이혜원 (서경대학교 위해성평가연구소) , 이승현 (서경대학교 환경화학공학과) , 전정인 (서경대학교 나노생명공학과) , 이정일 (한국화학융합시험연구원 건축기후대응센터) , 이철민 (서경대학교 나노화학생명공학과)
Background: The health effects of particulate matter (PM2.5) bonded with various harmful chemicals differ based on their composition, so investigating and managing their concentrations and composition is vital for long-term management. As industrial complexes emit considerable quantities of pollutan...
Kim I, Lee K, Lee S, Kim SD. Characteristics and health effects of PM 2.5 emissions from various sources in Gwangju, South Korea. Sci Total Environ. 2019; 696: 133890.
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Wang Y, Jia C, Tao J, Zhang L, Liang X, Ma J, et al. Chemical characterization and source apportionment of PM 2.5 in a semi-arid and petrochemical-industrialized city, Northwest China. Sci Total Environ. 2016; 573: 1031-1040.
Luo Y, Zhou X, Zhang J, Xiao Y, Wang Z, Zhou Y, et al. PM 2.5 pollution in a petrochemical industry city of northern China: seasonal variation and source apportionment. Atmos Res. 2018; 212: 285-295.
Hwang IJ, Kim TO. Chemical characteristics of ambient PM 2.5 at industrial complex in Gyeongbuk area. J Korean Soc Atmos Environ. 2019; 35(3): 336-345.
Park HW, Kim M, Park JS, Yoon SH, Kim MJ, Kim JY, et al. Tracing the source of PM 2.5 using chemical composition and stable isotope analysis. J Korean Soc Environ Anal. 2017; 20(4): 266-278.
Shin HJ, Kim JS, Kong HC. A study on the odor and volatile organic compound characteristics of chemical blocks in Sihwa industrial complex using a selected ion flow tube mass spectrometers. J Odor Indoor Environ. 2020; 19(2): 177-185.
Bae HJ, Lee S, Jung D, Oh GL, Kim S. Assessing the health effects of PM 2.5 constituents for establishing the health risk reduction management plan. Environ Forum. 2020; 24(4): 2-18.
Shin J, Kim Y, Park C, Ahn J, Yu H, Kim J, et al. Study on the characteristics of PM 2.5 components from emission sources in Chungcheongnam-do. J Environ Anal Health Toxicol. 2021; 24(1): 26-34.
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National Institute of Environmental Research. Air pollution monitoring network installation and operation guidelines 2018. Available: https://ecolibrary.me.go.kr/nier/#/search/detail/5641953 [accessed 13 May 2020].
Yeo MJ, Im YS, Yoo SS, Jeon EM, Kim YP. Long-term trend of PM 2.5 concentration in Seoul. J Korean Soc Atmos Environ. 2019; 35(4): 438-450.
Park EH, Heo J, Kim H, Yi SM. Long term trends of chemical constituents and source contributions of PM 2.5 in Seoul. Chemosphere. 2020; 251: 126371.
Yu GH, Park S. Chemical characterization and source apportionment of PM 2.5 at an urban site in Gwangju, Korea. Atmos Pollut Res. 2021; 12(6): 101092.
Park MK, Kim SJ, Song SA, Kwon HO, Choi SD. Size Distributions of airborne particulate matter associated ions and their pollution sources in Ulsan, Korea. J Korean Soc Environ Anal. 2019; 22(1): 1-9.
Choi JK, Heo JB, Ban SJ, Yi SM, Zoh KD. Source apportionment of PM 2.5 at the coastal area in Korea. Sci Total Environ. 2013; 447: 370-380.
Zhang Q, Sarkar S, Wang X, Zhang J, Mao J, Yang L, et al. Evaluation of factors influencing secondary organic carbon (SOC) estimation by CO and EC tracer methods. Sci Total Environ. 2019; 686: 915-930.
Han Y, Wang Z, Zhou J, Che H, Tian M, Wang H, et al. PM 2.5 -bound heavy metals in southwestern China: characterization, sources, and health risks. Atmosphere. 2021; 12(7): 929.
Won SR, Shim IK, Kim J, Ji HA, Lee Y, Lee J, et al. PM 2.5 and trace elements in underground shopping districts in the Seoul metropolitan area, Korea. Int J Environ Res Public Health. 2021; 18(1): 297.
Ryou HG, Heo J, Kim SY. Source apportionment of PM 10 and PM 2.5 air pollution, and possible impacts of study characteristics in South Korea. Environ Pollut. 2018; 240: 963-972. Erratum in: Environ Pollut . 2018; 242(Pt B): 2135.
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