• 제목/요약/키워드: Urban particulate matter

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Measurement and Interpretation of Time Variations of Particulate Matter Observed in the Busan Coastal Area in Korea

  • Kim, Cheol-Hee;Son, Hye-Young
    • Asian Journal of Atmospheric Environment
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    • 제5권2호
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    • pp.105-112
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    • 2011
  • In order to investigate the effects of local and synoptic meteorological conditions on urban scale particulate air pollutants observed over the Busan coastal area, power spectrum analysis was applied to observed particulate matter with an aerodynamic diameter $\leq10\;{\mu}m$ ($PM_{10}$) for the period from 1 October, 1993 to 31 December, 2004. Fast Fourier Transform (FFT) analysis was used to obtain the hourly mean observed $PM_{10}$ concentrations to identify different periodicity scales of $PM_{10}$ concentrations. The results showed that, aside from the typical and well-known periodicities such as diurnal and annual variations caused by anthropogenic influences, three other significant power spectral density peaks were identified: 7-day, 21-day and 2.25-year periodicities. Cospectrum analysis indicated that the seven-day variations were closely related to the synoptic meteorological conditions such as weak wind speed, which are relevant to the stagnant high pressure system slowly passing through the Korean Peninsula. The intra-seasonal 21-day variation was negatively correlated with wind speed but was consistently positively correlated with relative humidity, which is related to aerosol formation that can be achieved as a result of the hygroscopic characteristics of aerosols. However, the quasibiennial 2.25-year variation was correlated with the frequency of Asian dust occurrence, the periodicities of which have been recorded inter-annually over the Korean Peninsula.

대구지역 부유분진 중 미량금속성분의 발생원 특성연구 (Source Characteristics of Particulate Trace Metals in Daegu Area)

  • 최성우;송형도
    • 한국대기환경학회지
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    • 제16권5호
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    • pp.469-476
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    • 2000
  • This study was performed to understand the behavior and source characteristics of particulate trace metals in Daegu area. To do this, total of 84 samples had been collected from January to December 1999. TSP (total suspended particulate matter) and PM-10(particulate matter with aerodynamic diameters less 10${\mu}{\textrm}{m}$) were collected by filters on portable air sampler, and in TSP and PM-10 were analyzed by ICP(Inductively Coupled Plasma Spectrometer) after preliminary treatment. The results were follow as: first, annul means of TSP and PM-10 concentration were 123 and 69$\mu\textrm{g}$/㎤ respectively. The concentration of TSP adn PM-10 were highest in winter season compared to other seasons. Second, the concentration of Al, Fe, Mn were higher in TSP than in PM-10, indicating that these metals are generally associate with natural contributions. Third, a hierarchical clustering technique was used to group 9 metals. The results from the cluster analysis of TSP and PM-10 shows a similar clustering pattern : Fe, Al in a group and the rest of the metals such as Ni, Cr, As, Mn, Cd, Pb, Zn in the other group. One group of metal such as Fe, Al is associated with natural sources such as soil and dust. The other is closely related to urban anthropogenic sources such as fuel combustion, incineration, and refuse burning, Finally, using Al as a reference element, enrichment factors were used for identifying the major particulate contributors. The enrichment factors of Al. Fe<10 (standard value of enrichment factor) were considered to have a significant dust and soil source and termed nonenriched. Ni, Cr, As, Mn, Cd, Pb, Zn》10 is enriched and has a significant which is contributed by athropogenic sources.

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주성분/중회귀분석을 이용한 대구지역 대기중 부유분진의 발생원별 특성평가 (Source Characterization of Suspended Particulate Matter in Taegu Area, Using Principal Component Analysis Coupled with Multiple Regression)

  • 백성옥;황승만
    • 한국대기환경학회지
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    • 제8권3호
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    • pp.179-190
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    • 1992
  • This study was carried out to characterize sources of atmospheric total suspended particulates (TSP) in urban and sub--urban areas of metropolitan taegu. The sources were tentatively identified by a multivariate technique, i.e. principal component analysis (PCA), and the source contributions to the atmospheric concentrations of TSP were further estimated by stepwise multiple regression analysis. A total of 5 sources was identified in the urban area of Taegu (soil dust resuspension, fuel combustion, secondary aerosol, traffic related aerosol, and refuge burning), while 4 sources were found to be significant in the sub--urban area as following: fuel combustion/secondary aerosol, soil dust resuspension, traffic related aerosol, and wood/agricultural burning. The largest contributor to the atmospheric TSP appeared to be the soil dust resuspension in both areas. The source apportionment of the extractable organic matter (EOM) was also carried out for the Taegu data. The EOM was determined with respect to the solvent polarity, i.e. cyclohexane (non-polar), dichloromethane (semi--polar), and acetone (polar). In addition, the source profiles for the TSP in Taegu area were estimated using a PCA-based algorithm, and the validity was evaluated tentatively by comparing the data in the literature.

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Estimation of ambient PM10 and PM2.5 concentrations in Seoul, South Korea, using empirical models based on MODIS and Landsat 8 OLI imagery

  • Lee, Peter Sang-Hoon;Park, Jincheol;Seo, Jung-young
    • 농업과학연구
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    • 제47권1호
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    • pp.59-66
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    • 2020
  • Particulate matter (PM) is regarded as a major threat to public health and safety in urban areas. Despite a variety of efforts to systemically monitor the distribution of PM, the limited amount of sampling sites may not provide sufficient coverage over the areas where the monitoring stations are not located in close proximity. This study examined the capacity of using remotely sensed data to estimate the PM10 and PM2.5 concentrations in Seoul, South Korea. Multiple linear regression models were developed using the multispectral band data from the Moderate-resolution imaging spectro-radiometer equipped on Terra (MODIS) and Operational Land Imager equipped on Landsat 8 (Landsat 8) and meteorological parameters. Compared to MODIS-derived models (r2 = 0.25 for PM10, r2 = 0.30 for PM2.5), the Landsat 8-derived models showed improved model reliabilities (r2 = 0.17 to 0.57 for PM10, r2 = 0.47 to 0.71 for PM2.5). Landsat 8 model-derived PM concentration and ground-truth PM measurements were cross-validated to each other to examine the capability of the models for estimating the PM concentration. The modeled PM concentrations showed a stronger correlation to PM10 (r = 0.41 to 0.75) than to PM2.5 (r = 0.14 to 0.82). Overall, the results indicate that Landsat 8-derived models were more suitable in estimating the PM concentrations. Despite the day-to-day fluctuation in the model reliability, several models showed strong correspondences of the modeled PM concentrations to the PM measurements.

서울시 토지피복에 따른 계절별 미세먼지 농도 차이 분석 - 산림과 시가화지역을 중심으로 - (Analysis of the Seasonal Concentration Differences of Particulate Matter According to Land Cover of Seoul - Focusing on Forest and Urbanized Area -)

  • 최태영;문호경;강다인;차재규
    • 환경영향평가
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    • 제27권6호
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    • pp.635-646
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    • 2018
  • 본 연구는 도시의 미세먼지 배출과 저감에 관련된 토지피복 유형인 산림과 시가화지역의 영향에 의한 계절별 미세먼지 농도 특성을 파악하고자 하였다. 서울시 23개 도시대기 측정소의 2016년 PM10, PM2.5 농도자료를 수집하였고, 측정소 주변 반경 3km 내 시가화지역과 산림 비율을 기준으로 3개 그룹으로 측정소를 구분하여 그룹간의 미세먼지 농도 차이를 계절별로 분석하였다. 그룹별 시가화지역과 산림의 중심값은 Group A에서 각각 53.4%, 34.6%, Group B는 61.8%, 16.5%, Group C는 76.3%, 6.7%이었다. 계절별 PM10과 PM2.5의 그룹별 농도는 산림 비율이 높은 Group A의 농도가 모든 계절에서 가장 낮았고, 시가화지역 비율이 높은 Group C의 농도는 봄부터 가을까지 가장 높았다. 이상의 그룹간 차이는 통계적으로 유의하였다. Group C 농도는 겨울철에만 Group B보다 낮아졌는데, 겨울철 Group B-C간의 차이는 통계적으로 유의하지 않았다. 계절별 고농도 그룹의 농도 대비 Group A의 농도는 PM10에서 봄, 여름, 가을, 겨울 각각 8.5%, 11.2%, 8.0%, 6.8%, PM2.5에서 3.5%, 10.0%, 4.1%, 3.3% 낮은 수치이었다. PM10과 PM2.5 모두 그룹간 농도 격차가 여름에 가장 크고, 겨울로 가면서 작아졌는데, 이는 산림의 미세먼지 저감기능이 여름에 크고, 겨울에 작기 때문인 것으로 판단되었다. 산림과 비교해 시가화지역이 미세먼지 농도에 끼치는 영향은 작았다. 본 연구를 통해 산림 비율이 높은 지역에서 미세먼지 농도가 낮은 효과가 입증되었으며, 도시의 미세먼지 관리를 위해 녹지의 기능을 규명하는 지속적인 연구가 필요하였다.

부산 도심지역 대기중 입자상물질의 크기분포에 따른 수용성 이온성분의 특성 (Size Distribution Characteristics of Water-soluble Ionic Components in Airborne Particulate Matter in Busan)

  • 박기형;이병규
    • 한국대기환경학회지
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    • 제31권3호
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    • pp.287-301
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    • 2015
  • This study was conducted to investigate size distribution characteristics of water-soluble ionic components in the airborne particulate matter (PM) collected from an urban area in Busan using a MOUDI cascade impactor from March to October 2010. The inorganic constituents in the fine particles (${\leq}1.8{\mu}m$) predominantly consisted of sulfate, nitrate, ammonium, and potassium. Sulfate and ammonium concentrations showed a high correlation and similar equivalent concentrations in the fine modes including $0.18{\sim}0.32{\mu}m$, $0.32{\sim}0.56{\mu}m$, and $0.56{\sim}1.0{\mu}m$. This indicates that the main chemical component in the fine particles would be forms of ammonium sulfate such as $(NH_4)_3H(SO_4)_2$, $(NH_4)_2SO_4$, and $(NH_4)HSO_4$. Back trajectory analysis showed that relatively higher concentrations of ammonium, nitrate, and sulfate in the fine mode, compared to the coarse mode, are caused both by domestic sources and long-range transports originated from China continent. High concentration episodes of PM both in the fine mode and the coarse mode were attributed both by anthropogenic sources, such as ship emissions and traffic emissions, and by natural sources such as seawater (sea salt), respectively.

미세먼지 농도의 공간적 현황 및 잠재영향인자를 고려한 환경계획적 대응 방향 (Environmental Planning Contermeasures Considering Spatial Distribution and Potential Factors of Particulate Matters Concentration)

  • 성선용
    • 한국환경복원기술학회지
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    • 제23권1호
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    • pp.89-96
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    • 2020
  • Adverse impact of Particulate Matters(PM10, PM2.5; PMs) significantly affects daily lives. Major countermeasures for reducing concentration of PMs were focused on emission source without considering spatial difference of PMs concentration. Thus, this study analyzed spatial·temporal distribution of PMs with observation data as well as potential contributing factors on PMs concentration. The annual average concentration of PMs have been decreased while the particulate matter warnings and alerts were significantly increased in 2018. The average concentration of PMs in spring and winter was higher than the other seasons. Also, the spatial distribution of PMs were also showed seasonality while concentration of PMs were higher in Seoul-metropolitan areas in all seasons. Climate variables, emission source, spatial structure and potential PM sinks were selected major factors which could affects on ambient concentrations of PMs. This paper suggest that countermeasures for mitigating PM concentration should consider characteristics of area. Climatic variables(temperature, pressure, wind speed etc.) affects concentrations of PMs. The effects of spatial structure of cities(terrain, ventilation corridor) and biological sinks(green infrastructure, urban forests) on concentration of PMs should be analyzed in further studies. Also, seasonality of PMs concentration should be considered for establishing effective countermeasures to reduce ambient PMs concentration.

都市大氣中 黃酸鹽과 窒酸鹽 關한 硏究 (A Study of Size Distribution of Sulfate and Nitrate in Urban Air)

  • 신상은;김승학;김희강
    • 한국대기환경학회지
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    • 제2권1호
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    • pp.33-39
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    • 1986
  • Particulate matter was collected by Andersen Air Sampler in the Seoul area during February-October, 1985, in order to investigate size distribution of sulfate and nitrate in aerosol, and conversion of sulfur dioxide to sulfate and that of nitrogen dioxide to nitrate. The size distribution of sulfate and nitrate had fine mode. The ratio of fine sulfate to total sulfate in aerosol and that of fine nitrate to total nitrate showed between 54.6% and 86%, and 55.7% and 95%, respectively, which presumably originated from gaseous reaction of sulfur dioxide and nitrogen dioxide in the atmosphere.

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Effects of diesel exhaust and it′s particles on respiratory and reproductive Systems in mice

  • Sagai, Masaru
    • 한국대기환경학회:학술대회논문집
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    • 한국대기환경학회 1999년도 추계학술대회 논문집
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    • pp.289-292
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    • 1999
  • In recent year, there has been a progressive increase in urban air pollution that is Characterized by high concentrations of atmospheric particulate matter (PM10), resulting primarily from increase of automobils, especially diesel engine powered cars. Although the mechanisms of underling respiratory morbidity due to PM10 are not nuclear, it is thought that the fine particles (PM2.5) are of gratest concern to health since they can be breathed most deeply into the lung, where they are likely to be more toxic than the larger particles.(omitted)

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Size Distribution and Source Identification of Airborne Particulate Matter and Metallic Elements in a Typical Industrial City

  • Ny, Mai Tra;Lee, Byeong-Kyu
    • Asian Journal of Atmospheric Environment
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    • 제4권1호
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    • pp.9-19
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    • 2010
  • The size distribution of airborne particulate matter (PM) and the concentrations of associated metallic elements were investigated in a busy urban region of a typical Korean industrial city. The PM concentrations measured during the spring, except for those in the size range of 1.1 to 2.1 ${\mu}m$, were slightly higher than the PM concentrations in the summer. Coarse particles contributed greatly to the variation in PM concentrations in the spring, while fine and submicron particles contributed largely to the variation in PM concentrations in the summer. The difference in size modes of the PM concentrations between spring and summer may be explained by the Asian dust effect and its accompanying wind direction and speed. Extremely high enrichment factors (EFs) values (6,971 to 60,966) for all of the size distributions in PM were identified for cadmium (Cd). High EFs values (12 to 907) were also identified for other heavy metals including Cr, Cu, Ni, Pb, Zn and Mn. Low EF values (0.29 to 8.61) were identified for Ca, K, Mg and Na. These results support the common hypothesis that most heavy metals in ambient PM have anthropogenic sources and most light metals have crustal sources. The results of principal components analyses and cluster analyses for heavy metals indicate that the principal sources of PM and metals were emissions from non-ferrous metal smelters, oil combustion, incinerators, vehicular traffic and road dust.