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Response of Water Temperature in Korean Waters Caused by the Passage of Typhoons

태풍 이동 경로에 따른 한반도 연근해 수온의 반응

  • Kim, Sang-Woo (Fisheries Resources and Environment Division, East Sea Fisheries Research Institute, NIFS) ;
  • Lim, Jin-Wook (Marine Bioscience and Technology, Gangneung Wonju National University) ;
  • Lee, Yoon (Fisheries Resources and Environment Division, East Sea Fisheries Research Institute, NIFS) ;
  • Yamada, Keiko (Major of Global Environment, College of Natural Science, Keimyung University)
  • 김상우 (국립수산과학원 동해수산연구소) ;
  • 임진욱 (강릉원주대학교 해양생물공학과) ;
  • 이윤 (국립수산과학원 동해수산연구소) ;
  • 야마다게이꼬 (계명대학교 지구환경보전전공)
  • Received : 2016.08.09
  • Accepted : 2016.08.29
  • Published : 2016.08.31

Abstract

In this study, variations in water temperature after the passage of typhoons in Korean waters from 2009-2015 were analyzed. Sea surface temperature (SST) images derived from satellite remote sensing data were used, and water temperature information came from real-time mooring buoys at Yangyang, Gangneung, Samcheok and Yeoungdeok, while wind data was supplied by the Korea Meteorological Administration. Differences in SST observed before and after the passage of a typhoon using the SST images were found to be affected by wind direction as well as hot and cool seasonal tendencies. Coastal water temperatures of the eastern part of the Korean peninsula, located to the right of a typhoon, as in the case of typhoons Muifa, Chanhom, Nakri and Tembin, were lowered by a coastal upwelling system from southerly winds across the water's surface at depths of 15m and 25m. In particular, typhoons Chanhom and Tembin decreased water temperatures by about $8-11^{\circ}C$ and $16^{\circ}C$, respectively. However, temperatures to the left of the typhoons were increased by a downwelling of offshore seawater with a high temperature through the mid and lower seawater layers. After the passage of the typhoons, further mixing of seawater at a higher or lower temperature due to southerly or northerly winds, according to the context, lasted for 1-2 or 4 days, respectively.

본 연구에서는 7년(2009-2015)간 한반도 주변을 통과한 태풍의 이동 경로에 따른 수온의 변동을 분석하였다. 자료는 위성관측 수온영상, 동해 연안의 양양, 강릉, 삼척, 영덕에서 실시간 계류부이에서 관측한 수온과 기상청에서 제공한 바람을 분석하였다. 위성 영상을 이용한 태풍 통과 전후의 근해 수온의 차이는 태풍의 이동 경로에 따른 바람의 방향뿐만 아니라 해면 가열과 해면 상승의 시기와도 관계가 깊게 나타났다. Muifa, Chanhom, Nakri, Tembin과 같은 태풍들의 오른쪽에 위치한 동해 연안의 수온은 남풍계열의 바람에 의한 연안용승으로 표층뿐만 아니라 15m, 25m의 수온까지 하강하는 것을 알았다. 특히, 태풍 Chanhom과 Tembin에 의한 수온의 하강은 각각 $8-11^{\circ}C$$16^{\circ}C$ 하강하였다. 한편 그 반대편에 태풍이 위치할 때는 외해쪽에 있는 고온의 해수를 연안쪽으로 이동하여 침강시킴으로서 중층과 저층의 수온이 상승하였다. 또한, 태풍 통과 이후에 동해 연안에서 남풍(북풍)계열의 바람에 의한 하강(상승)된 수온의 혼합은 1-2일 및 4일간 지속되었다.

Keywords

References

  1. Hong, C. H.(2003), A three-dimensional numerical study of coastal upwelling in the northern Japanese coastal region with the passage of typhoon Oliwa, J. Kor. fish Soc., Vol. 36, No. 6, pp. 723-734.
  2. Hong, C. H. and J. K. Sohn(2004), Sea surface cooling in the East Sea with the passage of typhoons, J. Kor. Fish. Soc., Vol. 37, No. 2, pp. 137-147.
  3. Jing, Z. Y., Y. Q. Qi, Z. L. Hua and H. Zhang(2009), Numerical study on the summer upwelling system in the northern continental shelf of the South China Sea, Cont. Shelf Res., Vol. 29, Issue 2, pp. 467-478. https://doi.org/10.1016/j.csr.2008.11.008
  4. Kim, S. W., W. J. Go, S. S. Kim, H. D. Jeong and K. Yamata(2010), Characteristics of ocean environment before and after coastal up-welling in the southeastern part of Korean peninsula using an in-situ and multi-satellite data, J. Kor. Soc., Marine Environment & Safety, Vol. 16, No. 4, pp. 345-352.
  5. Kim, S. W., K. Yamada, L. H.. Jang, C. H. Hong, W. J. Go, Y. S. Suh, C. Lee and G. H. Lee(2007), Sort-term Variation of Sea Surface Temperature Caused by Typhoon Nabi in the Eastern Sea of Korean Peninsula Derived from Satellite Data, J. Kor. Fish. Soc., Vol 40, No. 2, pp. 102-107.
  6. Lee, D. K., J. I. Kwon and S. B. Hahn(1998), The wind effect on the cold water formation near Gampo-Ulgi coast, J. Korean Fish. Soc., Vol. 31, No. 3, pp. 359-371.
  7. Lee, J. C.(1983), Variation of sea level and sea surface temperature associated with wind-induced upwelling in the southeast coast of Korea in summer, J. Oceanogr. Soc. Korea, Vol. 18, No. 2. pp.149-160.
  8. Lee, J. C. and J. Y. Na(1985), Structure of upwelling off the southeast coast of Korea, J. Oceanogr. Soc. Korea, Vol. 20, No. 3, pp. 6-19.
  9. Pan, A. J., X. G. Guo, J. D. Xu, J. Huang and X. F. Wan(2012), Responses of Guangdong coastal upwelling to the summertime typhonns of 2006, Science China Earth Sciences, Vol. 55, No. 3, pp. 495-506. https://doi.org/10.1007/s11430-011-4321-z
  10. Sakaida, F., H. Kawamura and Y. Toba(1998), Sea surface cooling caused by typhoons in the Tohoku area in August 1989. J. Geophys. Res., Vol. 103, No. C1, pp. 1053-1065. https://doi.org/10.1029/97JC01859
  11. Senjyu, T. and T. Watanabe(1999), A sudden temperature decrease along the sanin coast induced by a typhoon, Umi to Sora, Vol. 75, pp. 1-8.
  12. Seung, Y. H.(1974), A dynamic consideration on the temperature distribution in the east coast of Korea in August, J. Oceanogr. Soc. Korea, Vol. 9, No. 1-2, pp. 52-58.
  13. Suh, Y. S., D. S. Kim, B. K. Kim, D. L. Lee, Y. S. Kim and J. K. Kim(2002), Temporal and spatial variation of SST related to the path of typhoons around the Korean Waters in summer, J. Environ. Sci., Vol. 11, No. 7, pp. 627-636.
  14. Sun, J., S., L. Y. Oey, R. Chang, F. Xu and S. M. Huang(2015), Ocean response to typhoon Nuri (2008) in western Pacific and South China Sea, Ocean Dynamics, Vol. 65, pp. 735-749. https://doi.org/10.1007/s10236-015-0823-0

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