DOI QR코드

DOI QR Code

The Influence of Evaporation from a Stream on Fog Events in the Middle Nakdong River

낙동강 중류에서 하천 증발이 안개에 미치는 영향

  • Park, Jun Sang (Applied Meteorology Research Division, National Institute of Meteorological Sciences) ;
  • Kim, Kyu Rang (Applied Meteorology Research Division, National Institute of Meteorological Sciences) ;
  • Kang, Misun (Applied Meteorology Research Division, National Institute of Meteorological Sciences) ;
  • Kim, Baek-Jo (Applied Meteorology Research Division, National Institute of Meteorological Sciences)
  • 박준상 (국립기상과학원 응용기상연구과) ;
  • 김규랑 (국립기상과학원 응용기상연구과) ;
  • 강미선 (국립기상과학원 응용기상연구과) ;
  • 김백조 (국립기상과학원 응용기상연구과)
  • Received : 2017.07.10
  • Accepted : 2017.10.01
  • Published : 2017.10.31

Abstract

In this study, we classified observed fog events in the Middle Nakdong River near Gumi and analyzed the meteorological characteristics before and after the fog formation. The observation was performed from 2013 to 2015 using visibility meter. A total of 74 fog events were observed and most of them were classified as steam fog. The duration of observed steam fogs was longer than that of typical inland fogs because the nocturnal evaporation from the water surface was enhanced by the topographical characteristics. In order to analyze the effect of evaporation from the stream on the fog duration, the evaporation was estimated using the Penman-Monteith and the Bulk aerodynamic methods. The estimated evaporation by the Bulk method was similar to the actual evaporation from the water surface. Therefore, the Bulk method is suitable for estimating the evaporation from water surface. The evaporation amount, estimated by using the Bulk method was higher on fog days than non-fog days at 06 LST and 07 LST. The added evaporation of fog days released latent heat to the atmosphere and provided energy to maintain the turbulence in the fog. This phenomenon was confirmed by the increase of wind speed, temperature and turbulent kinetic energy within the fog.

본 연구에서는 구미에 위치한 낙동강에서 발생한 안개를 분류하였고 안개 발생 전후의 기상특성을 분석하였다. 안개는 2013년부터 2015년까지 시정계를 이용하여 관측되었다. 안개는 총 74회 발생하였고 대부분 증기안개로 분류되었다. 관측된 증기 안개는 내륙에서 발생한 안개보다 지속시간이 길게 나타났는데 이는 지형적 특징으로 인해 야간 증발이 다른 지역보다 강하게 나타났기 때문이다. 안개 지속시간에 대한 하천 증발 효과를 분석하기 위해 Penman-Monteith(Penman법)와 Bulk aerodynamic (Bulk법) 방법을 사용하여 증발량을 추정하였다. 이 중 Bulk법은 실제 수면에서 측정한 증발량과 유사하게 나타났다. 따라서 Bulk법이 실제 수면 증발량 추정에 적합한 방법임을 확인할 수 있었다. Bulk법으로 추정한 증발량은 안개 비발생일 보다 안개 발생일에 06 LST와 07 LST에 더 높게 나타났다. 안개 발생일에 하천의 증발은 대기에 증발잠열 에너지를 공급하고 안개 내부의 난류를 유지하는 에너지원으로 작용한다. 이와 같은 결과는 안개내부의 풍속, 기온, 그리고 난류운동에너지의 증가를 통해 확인하였다.

Keywords

References

  1. Allen, R.G., Pereira, L.S., Raes, D., and Smith, M., 1998, Crop evapotranspiration: Guidelines for computing crop water requirements, FAO Irrigation and Drainage Paper No.56, Rome, Italy: United Nations FAO.
  2. An, J.H. and Lee, K.H., 2013, Correlation and Hysteresis Analysis of Air-Water Temperature in Four Rivers: Preliminary study for water temperature prediction, Journal of Environmental Policy, 12, 17-32. (in Korean) https://doi.org/10.17330/joep.12.2.201306.17
  3. Antonopoulos, V.Z. and Antonopoulos, A.V., 2017, Daily reference evaporanspiration estimates by artificial neural networks technique and empirical equations using limited input climate variables, Computers and Elctronics in Agriculture, 132, 86-96. https://doi.org/10.1016/j.compag.2016.11.011
  4. ASCE-EWRI, 2004, The ASCE standardized reference evapotranspiration equation: Standardization of Reference Evapotranspiration Task Committee Final Report, ASCE Environmental and Water Resources Institute.
  5. Choi, S.Y., Lee, Y.H., Cho, C., and Kim, K.R., 2015, Analysis of Local Wind Induced by Surface Heterogeneity and Sloping Terrain Near Nakdong River, Asia-Pacific Journal of Atmospheric Sciences, 51, 249-257. https://doi.org/10.1007/s13143-015-0075-4
  6. Degefie, D.T., El-Madany, T.S., Hejkal, J., Held, M., Dupont, J.C., Haeffelin, M., and Klemm, O., 2015, Microphysics and energy and water fluxes of various fog types at SIRTA, France, Atmospheric Research, 151, 162-175. https://doi.org/10.1016/j.atmosres.2014.03.016
  7. Dupont, J., Haeffelin, M., Protat, A., Bouniol, D., Boyouk, N., and Morille, Y., 2012, Stratus-fog formation and dissipation: A 6-day case study, Boundary-Layer Meteorology, 143, 207-225. https://doi.org/10.1007/s10546-012-9699-4
  8. El-Madany, T.S., Griessbaum, F., Fratini, G., Juang, J.Y., Chang, S.C., and Klemm, O., 2013, Comparison of sonic anemometer performance under foggy conditions, Agricultural and Forest Meteorology, 173, 63-73. https://doi.org/10.1016/j.agrformet.2013.01.005
  9. Falkovich, G., Fouxon, A., and Stepanov, M.G., 2002, Acceleration of rain initiation by cloud turbulence, Nature, 419, 151-154. https://doi.org/10.1038/nature00983
  10. Hartmann, D.L., 1994, Global physical climatology, Academic Press, WA, USA, 101-102 p.
  11. Irmak, S., Howell, T.A., Allen, R.G., Payero, J.O., and Martin, D.L., 2005, Standardized ASCE Penman-Monteith: Impact of sum-of-hourly vs. 24-hour timestep computations at reference weather station sites, Transactions of the American Society of Agricultural Engineers, 48, 1063-1077. https://doi.org/10.13031/2013.18517
  12. Kang, M., Lim, Y.K., Cho, C., Kim, K.R., Park, J.S., and Kim, B.J., 2015, The sensitivity analyses of initial condition and data assimilation for a fog event using the mesoscale meteorological model, Journal of the Korean Earth Science Society, 36, 567-579. (in Korean) https://doi.org/10.5467/JKESS.2015.36.6.567
  13. Kim, H.D., Cho, C.B., and Seo, K.S., 2016, On the Steam Fog in the Gumi Reservoir of Nakdong River, Journal of Environmental Science International, 25, 163-171. (in Korean) https://doi.org/10.5322/JESI.2016.25.1.163
  14. Kim, H.D., Cho, C.B., and Seo, K.S., 2016, Micrometeorological Characteristics during the Steam Fog over the Gumi Reservoir of Nakdong River, Journal of Environmental Science International, 25, 405-415. (in Korean) https://doi.org/10.5322/JESI.2016.25.3.405
  15. Lee, H.S., Lee, B.Y., Jo, H.S., and Lee, J.J., 2014, Observation of evaporation on the reservoir surface using a large evaporation fan, Magazine of Korea Water Resources Association-Water for future, 47, 54-67. (in Korean)
  16. Liu, D., Yang, J., Niu, S., and Li, Z., 2011, On the evolution and structure of a radiation fog event in Nanjing, Advances in Atmospheric Sciences, 28, 223-237. https://doi.org/10.1007/s00376-010-0017-0
  17. Mun, S. and Lee, S., 2013, A Study on the Change of Fog Frequency and Duration Hours in South Korea, Journal of Climate Research, 8, 93-104. (in Korean) https://doi.org/10.14383/cri.2013.8.2.93
  18. Park, J.S., Lim, Y.K., Kim, K.R., Cho, C., Jang, J.Y., Kang, M., and Kim, B.-J., 2015, Atmospheric Characteristics of Fog Incidents at the Nakdong River: Case Study in Gangjeong-Goryeong Weir, Journal of Environmental Science International, 24, 657-670. (in Korean) https://doi.org/10.5322/JESI.2015.24.5.657
  19. Pereira, A.R., Nova, N.A.V., Pereira, A.S., and Barbieri, V., 1995, A model for the class A pan coefficient, Agricultural and Forest Meteorology, 76, 75-82. https://doi.org/10.1016/0168-1923(94)02224-8
  20. Rim, C.S., Yoon, S.E., and Song, J.I., 2009, Evaluation of Equations for Estimating Pan Evaporation Considering Regional Characteristics, Journal of the Korean Society of Civil Engineers B, 29, 47-62. (in Korean)
  21. So, S.S. and Son, M.Y., 1991, Characteristics of Fog Occurrence in Taechon, Journal of the Korean Earth Science Society, 12, 217-229. (in Korean)
  22. Tardif, R. and Rasmussen, R.M., 2007, Event-based climatology and typology of fog in the New York City region, Journal of applied Meteorology and Climatology, 46, 1141-1168. https://doi.org/10.1175/JAM2516.1
  23. Wang, L.P. and Grabowski, W.W., 2009, The role of air turbulence in warm rain initiation, Atmospheric Science Letters, 10, 1-8. https://doi.org/10.1002/asl.210
  24. Yi, C.Y., Kim, K.R., Choi, Y.J., Won, H.Y., and Scherer, D., 2012, Nocturnal surface cooling and cold air transport analysis based on high density observation-A case study of Eunpyeong new town in Seoul, Journal of the Korean Association of Geographic Information Studies, 15, 124-137. (in Korean) https://doi.org/10.11108/kagis.2012.15.4.124
  25. Yoo, J.M., Yun, M.Y., Jeong, M.J., and Ahn, M.H., 2006, Fog detection over the Korean Peninsula derived from satellite observations of polar-orbit (MODIS) and geostationary (GOES-9), Journal of the Korean Earth Science Society, 27, 450-463. (in Korean)
  26. Zihua, L., Jianping, H., and Boyang, S., 1999, Burst characteristics during the development of radiation fog, Chinese Journal of Atmospheric Sciences, 23, 623-631.