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The Variation of Aerosol Number Concentrations in Relation with 3D Wind Components in the Ieodo Ocean Research Station

이어도 해양종합과학기지에서의 3차원 바람성분에 따른 에어로솔 수 농도 변동 특성

  • Park, Sung-Hwa (Interdisciplinary Program of Earth Environmental Engineering, Pukyong National University) ;
  • Jang, Sang-Min (Department of Environmental Atmospheric Sciences, Pukyong National University) ;
  • Lee, Dong-In (Department of Environmental Atmospheric Sciences, Pukyong National University) ;
  • Jung, Woon-Seon (Department of Environmental Atmospheric Sciences, Pukyong National University) ;
  • Jeong, Jong-Hoon (Department of Environmental Atmospheric Sciences, Pukyong National University) ;
  • Jung, Sung-A (Department of Environmental Atmospheric Sciences, Pukyong National University) ;
  • Jung, Chang Hoon (Department of Health Management, Kyungin Women's College) ;
  • Kim, Kyungsik (Department of Physics, Pukyong National University) ;
  • Kim, Kyung-Eak (Department of Astronomy and Atmospheric Sciences, Kyungpook National University)
  • 박성화 (부경대학교 지구환경공학연협동과정) ;
  • 장상민 (부경대학교 환경대기과학과) ;
  • 이동인 (부경대학교 환경대기과학과) ;
  • 정운선 (부경대학교 환경대기과학과) ;
  • 정종훈 (부경대학교 환경대기과학과) ;
  • 정성아 (부경대학교 환경대기과학과) ;
  • 정창훈 (경인여자대학 보건의료관리과) ;
  • 김경식 (부경대학교 물리학과) ;
  • 김경익 (경북대학교 천문대기과학과)
  • Received : 2011.12.05
  • Accepted : 2012.02.10
  • Published : 2012.03.31

Abstract

To investigate variation of aerosol number concentration at each different size with three-dimensional (3D) wind components in ocean area, aerosol particles and 3D wind components were measured in the Ieodo Ocean Research Station, which is located to 419 km southwest from Marado, the southernmost island of Korea, from 25 June to 8 July 2010. The Laser Particle Counter (LPC) and ultrasonic anemometer were used to measure the size of aerosol particles and 3D wind components (zonal (u), meridional (v), and vertical (w) wind) respectively. Surface weather chart, NCEP/NCAR reanalysis data and sounding data were used to analyze the synoptic condition. The distribution of aerosol number concentration had a large variation from bigger particles more than 1.0 ${\mu}m$ in diameter by wind direction during precipitation. In the number concentration of aerosol particles with respect to the weather conditions, particles larger than 1.0 ${\mu}m$ in size were decreased and sustained to the similar concentration at smaller particles during precipitation. The increase in aerosol number concentration was due to the sea-salt particles which was suspended by southwesterly and upward winds. In addition, the aerosol number concentration with vertical wind flow could be related with the occurrence and increasing mechanism of aerosol in marine boundary layer.

Keywords

References

  1. 강미영, 2003: 내륙지역 강설시 레이더 바람장을 이용한 에어러솔 농도 변동. 부경대학교 대학원 석사학위논문, 1-54.
  2. 김종환, 염성수, 최경섭, 2005: 남해, 황해 상에서의 미세 에어러솔 크기별 수농도 분포 관측. 한국대기환경학회 춘계학술대회논문집, 5, 203-205.
  3. 김지영, 최병철, 2002: 한반도에서 측정된 에어로솔의 크기 분포와 지역별 특성. 한국기상학회지, 38(2), 95-104.
  4. 박성화, 이동인, 서길종, 유철환, 장민, 강미영, 장상민, 김동철, 최창섭, 이병걸, 2009: 이어도 해양종합과학기지에서의 에어로솔 수 농도 변동. 한국환경과학회지, 18(7), 721-733.
  5. 이동인, 강미영, 서길종, 유철환, 박성화, 김부경, 박남식, 2008: 남서해안지역 강설시 바람장 변화에 따른 에어로솔 수 농도 변동. 한국환경과학회지, 17(6), 699-709.
  6. Alpert, P., Y. J. Kaufman, Y. Shay-EI, D. Tanre, A. da Silva, S. Schubert, and Y. H. Joseph, 1998: Quantification of dust-forced heating of the lower troposphere. Nature, 395, 367-370. https://doi.org/10.1038/26456
  7. Arao, K., and Y. Ishizaka, 1986: Volume and mass of yellow sand dust in the air over Japan as estimated from atmospheric turbidity. J. Meteor. Soc. Japan, 64, 79-94. https://doi.org/10.2151/jmsj1965.64.1_79
  8. Carlson, T. N., and R. S. Caverly, 1997: Radiative characteristics of Saharan dust at solar wavelengths. J. Geophys. Res., 82, 3141-3152.
  9. Duce, R. A., C. K. Unni, B. J. Ray, J. M. Prospero, and J. T. Merril, 1980: Long-range atmospheric transport of soil dust from Asia to the tropical North Pacific: Temporal variability. Science, 209, 1522-1524. https://doi.org/10.1126/science.209.4464.1522
  10. Dutton, E. G., P. Reddy, S. Ryan, and J. J. DeLuisi, 1994: Features and effect of aerosol optical depth observed at Mauna Loa, Hawaii: 1982-1992. J. Geophys., 99, D4, 8295-8306. https://doi.org/10.1029/93JD03520
  11. IPCC, Climate Change 1995: In the science of climate change. J. T. Houghton, L. G. Meira Filho, B. A. Callender, N. Harris, A. Kattenberg, S. K. Maskell, eds. Cambridge Univ. Press, Cambridge, 572.
  12. Kikuchi, K., S. Matsuoka, H. Uyeda, O. Kikuchi, and D. I. Lee, 2003: Relationship between aerosol number concentrations and convergence fields in winter monsoon seasons. J. Geophys. Res., 108(D3), 4115. https://doi.org/10.1029/2001JD001271
  13. Khemani, L. T., G. A. Momin, and M. S. Naik, 1987: Influence of atmospheric pollutants on cloud microphysics and rainfall. boundary-layer meteorology, 41, 367-380. https://doi.org/10.1007/BF00120452
  14. Lee, D. I., 1991: On the atmospheric aerosol particles in the relation to wind systems. J. Korean Meteor. Soc., 27, 333-352.
  15. Neiman, P. J., and M. A. Shapiro, 1989: Retrieving horizontal temperature gradients and advection from single-station wind-profiler observations. Wea. Forecasting, 4, 222-233. https://doi.org/10.1175/1520-0434(1989)004<0222:RHTGAA>2.0.CO;2
  16. Nemesure, S., R. Wagener, and S. E. Schwartz, 1995: Direct shortwave forcing of climate by the anthropogenic sulfate aerosol: Sensitivity to particle size, composition, and relative humidity. J. Geophys. Res., 100, 26105-26116. https://doi.org/10.1029/95JD02897
  17. Ogren, J. A., 1995: A systematic approach to in situ observations of aerosol properties. In Charlson R. J. and Heintzenberg J. (eds.), Aerosol Forcing of Climate. Wiley, New York, 215-226.
  18. Peng, L., H. Min, W. Zhijun, N. Yuwen, and Z. Tong, 2007: Marine aerosol size distributions in the springtime over China adjacent seas. Atmos. Environ., 41, 6784-6796. https://doi.org/10.1016/j.atmosenv.2007.04.045
  19. Penner, J. E., R. J. Charlson, J. M. Hales, N. Laulainene, R. Leifer, T. Navakov, J. Ogren, L. F. Radke, S. E. Schwartz, and L. Travis, 1994: Quantifying and minimizing uncertainty of climate forcing by anthropogenic aerosols. Bull. Amer. Meteor. Soc., 75(3), 375-400. https://doi.org/10.1175/1520-0477(1994)075<0375:QAMUOC>2.0.CO;2
  20. Pruppacher, H. R., and J. D. Klett, 1978: Microphysics of clouds and precipitation. D. Reidel Publishing Company, 202-218.
  21. Seinfeld, J. H., and S. N. Pandis, 1998: Atmospheric chemistry and physics-from air pollution to climate change. John Wiley & Sons, Inc., 132.
  22. Shimizu, S., H. Uyeda, T. Shinoda, K. Tsuboki, H. Yamada, and B. Geng, 2001: The relationship between distribution of humidity and types of rainfall on three rainbands near Shanghai during Meiyu period in 2001. The proceedings of International Conference on Mesoscale Convective Systems and Heavy Rainfall/Snowfall in Esast Asis, 13-18.
  23. Smirnov, A., B. N. Holben, I. Slutsker, E. J. Welton, and P. Formenti, 1998: Optical properties of Saharan dust during ACE-2. J. Geophys. Res., 103(D21), 28079-28092. https://doi.org/10.1029/98JD01930
  24. Wark, K., and C. F. Warner, 1976: Air pollution: its origin control. Harper and Row Pub., New York, 153.
  25. Willeke, K., and P. A. Baron, 1993: Aerosol measurement principles: Techniques and Applications. Van Nostrand Reinhold, 876.

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