RAS PresidiumИсследование Земли из космоса Earth Research from Space

  • ISSN (Print) 0205-9614
  • ISSN (Online) 3034-5405

The Impact of Typhoon Hinnamnor (September 2022) on Coastal Upwelling in the Northwestern Japan Sea According Satellite Observations

PII
10.31857/S0205961424060018-1
DOI
10.31857/S0205961424060018
Publication type
Article
Status
Published
Authors
Volume/ Edition
Volume / Issue number 6
Pages
3-16
Abstract
Enhanced wind-driven water upwelling was observed off the north-west coast of the Japan Sea in the summer of 2022. The upwelling index calculation showed that the coastal upwelling was induced by offshore Ekman transport. The offshore transport is largely controlled by mesoscale processes, involving mesoscale eddies and filaments. Based on the multisatellite and meteorological data sets our results provide opportunity to observe the upwelling response to the strong Typhoon Hinnamnor (September 2022). The typhoon resulted in the separation of the upwelling core from the coast and subsequent advective transport of cold waters toward the deep part of the northern Japan Sea. The intensification of advection was determined by the interaction of upwelling waters with the mesoscale anticyclonic meander of the Tsushima Current. Under the influence of strong winds of typhoon, a sharp temperature decrease in upwelling filaments was observed. The typhoon increased upwelling in the western shelf region of the Tartar Strait. In September 2022 coastal upwelling resulted in the formation of a negative surface temperature anomaly in the northern part of the Japan Sea.
Keywords
Японское море апвеллинг Приморское течение мезомасштабные вихри струйные течения тайфун Хиннамнор спутниковые данные метеорологические наблюдения
Date of publication
15.09.2025
Year of publication
2025
Number of purchasers
0
Views
2

References

  1. 1. Бондур В.Г., Крапивин В.Ф. Космический мониторинг тропических циклонов. М.: Научный мир, 2014. 508 с.
  2. 2. Боуден К. Физическая океанография прибрежных вод. М.: Мир, 1988. 322 с.
  3. 3. Гинзбург А.И., Костяной А.Г., Островский А.Г. Поверхностная циркуляция Японского моря (спутниковая информация и данные дрейфующих буев) // Исслед. Земли из космоса. 1998. № 1. С. 66–83.
  4. 4. Жабин И.А., Дмитриева Е.В. Сезонная и синоптическая изменчивость ветрового апвеллинга у побережья Южного Приморья (Японское море) // Вестник ДВО РАН. 2014. № 5. С. 25—31.
  5. 5. Жабин И.А., Дмитриева Е.В., Кильматов Т.Р., Андреев А.Г. Влияние ветровых условий на изменчивость апвеллинга у побережья Приморья (северо-западная часть Японского моря) // Метеорология и гидрология. 2017. № 3. С. 58–67.
  6. 6. Никитин А.А., Дьяков Б.С., Капшитер А.В. Приморское течение на стандартных разрезах и спутниковых изображениях Японского моря // Исслед. Земли из космоса. 2020. № 1. С. 31–43.
  7. 7. Тропические циклоны. Результаты исследований советских ученых. Л.: Гидрометеоиздат, 1989. 54 с.
  8. 8. Bakun A. Coastal upwelling indices, west coast of North America // NOAA Technical Report NMF 671. 1973. 103 pp.
  9. 9. Bakun A. Global climate change and intensification of coastal ocean upwelling // Science. 1990. V. 247. Р. 198–201.
  10. 10. Che Y., Guo B., Mantravadi V.S., Wang J., Ji Z. The impact of typhoon “In-Fa” (2021) on temperature, salinity, and chlorophyll-a concentration in the upwelling area of northwestern East China Sea // Atmosphere. 2023. V. 14. N 8. 1226. https://doi.org/10.3390/atmos14081226.
  11. 11. Filonov A., Tereshchenko I., Ladah L.B., Monzon C., Velázquez-Muñoz F., Montes-Arechiga J. Coastal response to the passage of tropical cyclone Juliette on the Central Pacific Coast of Mexico // Geofísica Internacional. 2021. V. 60. № 4. P. 357–366. https://doi.org/10.22201/igeof.00167169p.2021.60.4.2161.
  12. 12. Gonzalez-Nuevo G., Gago J., Cabanas J.M. Upwelling index: a powerful tool for marine research in the NW Iberian upwelling system. J. Oper. Oceanogr. 2014, V. 7. № 1. P. 47–57. doi: 10.1080/1755876x.2014.11020152.
  13. 13. Hong B., Huang X., Liu S., Xu H. Impact of typhoon on coastal upwelling off the Eastern Hainan Island: A case study of typhoon Rammasun (2014) // Fron. Mar. Sci. 2022. V. 9. P. 920825–920839. 10.3389. https://doi.org/10.3389/fmars.2022.920825.
  14. 14. Kawaguchi, Y., Yabe I., Senjyu T., Sakai A. Amplification of typhoon-generated near-inertial internal waves observed near the Tsushima oceanic front in the Sea of Japan // Sci. Rep. 2023. V. 13. 8387. https://doi.org/10.1038/s41598-023-33813-9.
  15. 15. Kuo Y., Ming-An Lee M.-A., Yi Chang Y. Satellite observations of typhoon-induced sea surface temperature variability in the upwelling region off northeastern Taiwan // Remote Sensing. 2020.V.12. N 20. 3321. doi:10.3390/rs12203321.
  16. 16. Li X., Zhang X., Fu D., Liao S. Strengthening effect of super typhoon Rammasun (2014) on upwelling and cold eddies in the South China Sea // J. Ocean. Limnol. 2021. V. 39. P. 403–419. Large W. G., Pond S. Open momentum flux measurements in moderate to strong winds // J. Phys. Oceanogr. 1981. V. 11. № 3. P. 324–336. doi: 10.1007/s00343-020-9239-x.
  17. 17. Mooers C.N.K., Robinson A.R. Turbulent jets and eddies in the California Current and inferred crossshore transports // Science.1984. V. 223. N 4631. P. 51–53.
  18. 18. Nikitin A.A., Tsypysheva I.L., Zuenko Y.I. Spatial patterns of the Primorye Current in the northwestern East/Japan Sea on satellite images and standard sections // Ocean Sci. J. 2023. V. 58. 22. https://doi.org/10.1007/s12601-023-00116-z
  19. 19. Strub P., Kosro P., Huyer A. The nature of the cold filaments in the California Current System // J. Geophys. Res. 1991. V. 96. P. 14.743–14.768.
  20. 20. Park K.A., Kim K.R. Unprecendented coastal upwelling in the East/Japan Sea and linkage to longterm large variations // Geophys. Res. Lett. 2010. V. 37. L09603. https://doi.org/10.1029/2009GL042231
  21. 21. Xie L.L., He C.-F., Li M.-M., Tian J.J., Jing, Z.Y. Response of sea surface temperature to typhoon passages over the upwelling zone east of Hainan Island // Advances in Marine Science. 2017. V. 35. P. 8–19. (In Chinese with English abstract).
  22. 22. Zhang H.-M., Bates J.J., Reynolds R.W. Assessment of composite global sampling: Sea surface wind speed // Geophys. Res. Lett. 2006. V. 33. L17714. https://dx.doi.org/10.1029/2006GL027086.
  23. 23. Zheng M., Xie L., Zheng Q., Li M., Chen F., Li J. Volume and nutrient transports disturbed by the typhoon Chebi (2013) in the upwelling zone east of Hainan Island, China // J. Mar. Sci. Eng. 2021. V. 9. 324. https://doi.org/10.3390/jmse9030324.
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