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      KCI등재후보

      대기 고도에 따른 입자 포집용 관성 임팩터의 설계 및 포집효율 예측 = Numerical Simulation of Impactor Collection Efficiency according to Altitude

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      https://www.riss.kr/link?id=A101616228

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      다국어 초록 (Multilingual Abstract)

      In this study, the collection efficiency of inertial impactors was numerically simulated by employing the statistical Lagrangian particle tracking(SLPT) model. The SLPT model was proven to be correct in predicting the impactor collection efficiency, when the numerically obtained collection efficiencies were compared with the experimental data of Marple et al.(1987) at normal pressure level and the experimental data of Marjamäki et al.(2000) at low pressure level. Based on the validation results, balloon‐borne impactors with the cut‐off sizes of 1 ㎛, 2.5 ㎛, and 10 ㎛ were designed. Then, the sampling flowrates of the inertial impactors, required to keep the cut‐off sizes constant at different pressures and temperatures, were estimated according to the altitude.
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      In this study, the collection efficiency of inertial impactors was numerically simulated by employing the statistical Lagrangian particle tracking(SLPT) model. The SLPT model was proven to be correct in predicting the impactor collection efficiency, w...

      In this study, the collection efficiency of inertial impactors was numerically simulated by employing the statistical Lagrangian particle tracking(SLPT) model. The SLPT model was proven to be correct in predicting the impactor collection efficiency, when the numerically obtained collection efficiencies were compared with the experimental data of Marple et al.(1987) at normal pressure level and the experimental data of Marjamäki et al.(2000) at low pressure level. Based on the validation results, balloon‐borne impactors with the cut‐off sizes of 1 ㎛, 2.5 ㎛, and 10 ㎛ were designed. Then, the sampling flowrates of the inertial impactors, required to keep the cut‐off sizes constant at different pressures and temperatures, were estimated according to the altitude.

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      참고문헌 (Reference)

      1 Kim, J. H., "Slip correction measurements of certified PSL nanoparticles using a nanometer differential mobility analyzer(nano‐ DMA) for Knudsen number from 0.5 to 83" 110 : 31-54, 2005

      2 Marjamäki, M., "Preformance evaluation of the electrical low‐pressure impactor(ELPI)" 31 : 249-261, 2000

      3 Park, S. S., "Molecular composition of PM2.5 organic aerosol measured at an urban site of Korea during the ACE-Asia campaign" PERGAMON-ELSEVIER SCIENCE LTD 40 (40): 4182-4198, 200607

      4 Marple, V. A., "Low flow rate sharp cut impactors for indoor air sampling: Design and calibration" 37 : 1303-1307, 1987

      5 Munson, B. R., "Fundamentals of Fluid Mechanics" John Wiley 2005

      6 Yook, S. J., "Evaluation of protection schemes for extreme ultraviolet lithography(EUVL) masks against top‐down aerosol flow" 38 : 211-227, 2007

      7 Kim, Y. J., "Enhancement of collection efficiency of inertial impactors using el liptical concave impaction plates" 42 : 898-908, 2011

      8 Flagan, R. C., "Compressible flow inertial impactors" 87 : 291-299, 1982

      9 Tobo, Y., "Balloonborne observations of high aerosol concentrations near the summertime tropopause over the Tibetan Plateau" 84 : 233-241, 2007

      10 Schneider, J., "Aircraft‐based operation of an aerosol mass spectrometer: Measurements of tropospheric aerosol composition" 37 : 839-857, 2006

      1 Kim, J. H., "Slip correction measurements of certified PSL nanoparticles using a nanometer differential mobility analyzer(nano‐ DMA) for Knudsen number from 0.5 to 83" 110 : 31-54, 2005

      2 Marjamäki, M., "Preformance evaluation of the electrical low‐pressure impactor(ELPI)" 31 : 249-261, 2000

      3 Park, S. S., "Molecular composition of PM2.5 organic aerosol measured at an urban site of Korea during the ACE-Asia campaign" PERGAMON-ELSEVIER SCIENCE LTD 40 (40): 4182-4198, 200607

      4 Marple, V. A., "Low flow rate sharp cut impactors for indoor air sampling: Design and calibration" 37 : 1303-1307, 1987

      5 Munson, B. R., "Fundamentals of Fluid Mechanics" John Wiley 2005

      6 Yook, S. J., "Evaluation of protection schemes for extreme ultraviolet lithography(EUVL) masks against top‐down aerosol flow" 38 : 211-227, 2007

      7 Kim, Y. J., "Enhancement of collection efficiency of inertial impactors using el liptical concave impaction plates" 42 : 898-908, 2011

      8 Flagan, R. C., "Compressible flow inertial impactors" 87 : 291-299, 1982

      9 Tobo, Y., "Balloonborne observations of high aerosol concentrations near the summertime tropopause over the Tibetan Plateau" 84 : 233-241, 2007

      10 Schneider, J., "Aircraft‐based operation of an aerosol mass spectrometer: Measurements of tropospheric aerosol composition" 37 : 839-857, 2006

      11 Hinds, W. C., "Aerosol Technology: Properties, Behavior, and Measurement of Airborne Particles" John Wiley 1999

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      연월일 이력구분 이력상세 등재구분
      2022 평가예정 계속평가 신청대상 (계속평가)
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      2012-01-01 평가 등재후보 1차 FAIL (기타) KCI등재후보
      2010-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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