Ocean Science Journal

, Volume 52, Issue 3, pp 337–344 | Cite as

Large temporal changes in contributions of groundwater-borne nutrients to coastal waters off a volcanic island

Article

Abstract

We examined the contribution of submarine groundwater discharge (SGD) to nutrient budgets in Hwasun Bay, Jeju Island, Korea in August 2009, October 2014, and May 2015. The concentrations of dissolved inorganic nitrogen (DIN) and dissolved inorganic phosphorus (DIP) in fresh groundwater were in the range of 285−716 μM and 2.3−3.2 μM, respectively, which were each 1−2 orders of magnitude higher than those in the bay seawater. The outer-bay seawater flowing into the bay was oligotrophic (2.9 ± 1.9 μM for DIN and 0.2 ± 0.3 μM for DIP). Nutrient budget calculations were performed for each season by accounting for submarine fresh groundwater discharge (SFGD) and water residence times. In August 2009 (DIN = 1.8 μM and DIN:DIP ratio = 4.6 for the outerbay water), DIN inputs from SFGD accounted for approximately 40% of the DIN inventory in the bay seawater. In October 2014 (DIN = 1.1 μM and DIP < 0.05 μM for the outer-bay water), DIP from SFGD accounted for approximately 100% of the DIP inventory in the bay seawater. In May 2015, mean concentrations of DIN and DIP in the bay seawater were 8.6 ± 12 μM and 0.11 ± 0.04 μM, respectively, with conservative behaviors in the bay seawater in association with excessive groundwater inputs. These results imply that SGD plays a critical but different role in nutrient budgets and stoichiometry in coastal waters off a volcanic island depending on open-ocean nutrient conditions.

Key words

submarine groundwater discharge nutrients N:P ratio coastal ocean Jeju Island 

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References

  1. Chang K-I, Suk M-S, Pang I-C, Teague WJ (2000) Observations of the Cheju current. J Korean Soc Oceanogr 35(3):129–152Google Scholar
  2. Chang PH, Isobe A (2003) A numerical study on the Changjiang diluted water in the Yellow and East China Seas. J Geophys Res 108(C9):3299CrossRefGoogle Scholar
  3. Garcia-Solsona E, Garcia-Orellana J, Masqué P, Garcés E, Radakovitch O, Mayer A, Estradé S, Basterretxea G (2010) An assessment of karstic submarine groundwater and associated nutrient discharge to a Mediterranean coastal area (Balearic Islands, Spain) using radium isotopes. Biogeochemistry 97(2–3):211–229CrossRefGoogle Scholar
  4. Hahn J, Lee Y, Kim N, Hahn C, Lee S (1997) The groundwater resources and sustainable yield of Cheju volcanic island, Korea. Environ Geol 33(1):43–53CrossRefGoogle Scholar
  5. Hwang D-W, Lee Y-W, Kim G (2005) Large submarine groundwater discharge and benthic eutrophication in Bangdu Bay on volcanic Jeju Island, Korea. Limnol Oceanogr 50(5):1393–1403CrossRefGoogle Scholar
  6. Kim G, Kim J-S, Hwang D-W (2011) Submarine groundwater discharge from oceanic islands standing in oligotrophic oceans: implications for global biological production and organic carbon fluxes. Limnol Oceanogr 56(2):673–682CrossRefGoogle Scholar
  7. Kim G, Lee K-K, Park K-S, Hwang D-W, Yang H-S (2003) Large submarine groundwater discharge (SGD) from a volcanic island. Geophys Res Lett 30(21):2098. doi:10.1029/2003GL018378CrossRefGoogle Scholar
  8. Knee KL, Street JH, Grossman EE, Boehm AB, Paytan A (2010) Nutrient inputs to the coastal ocean from submarine groundwater discharge in a groundwater-dominated system: relation to land use (Kona coast, Hawai’i, USA). Limnol Oceanogr 55(3): 1105–1122CrossRefGoogle Scholar
  9. Koh D-C, Chang H-W, Lee K-S, Ko K-S, Kim Y, Park W-B (2005) Hydrogeochemistry and environmental isotopes of ground water in Jeju volcanic island, Korea: implications for nitrate contamination. Hydrol Process 19(11):2225–2245CrossRefGoogle Scholar
  10. Lee J-M, Kim G (2007) Estimating submarine discharge of fresh groundwater from a volcanic island using a freshwater budget of the coastal water column. Geophys Res Lett 34(11):L11611. doi:10.1029/2007GL029818CrossRefGoogle Scholar
  11. Lie H-J (1984) A note on water masses and general circulation in the Yellow Sea (Hwanghae). J Oceanol Soc Korea 19(2):187–194Google Scholar
  12. Moore WS, Blanton JO, Joye SB (2006) Estimates of flushing times, submarine groundwater discharge, and nutrient fluxes to Okatee Estuary, South Carolina. J Geophys Res 111(C9): C09006. doi:10.1029/2005JC003041CrossRefGoogle Scholar
  13. Moosdorf N, Stieglitz T, Waska H, Dürr HH, Hartmann J (2015) Submarine groundwater discharge from tropical islands: a review. Grundwasser 20(1):53–67CrossRefGoogle Scholar
  14. Park Y-H (1986) Water characteristics and movements of the Yellow Sea Warm Current in summer. Prog Oceanogr 17(3–4):243–254CrossRefGoogle Scholar
  15. Paytan A, Shellenbarger GG, Street JH, Gonneea ME, Davis K, Young MB, Moore WS (2006) Submarine groundwater discharge: an important source of new inorganic nitrogen to coral reef ecosystems. Limnol Oceanogr 51(1):343–348CrossRefGoogle Scholar
  16. Povinec PP, Burnett WC. Beck A, Bokuniewicz H, Charette M, Gonneea ME, Groening M, Ishitobi T, Kontar E, Liong Wee Kwong L, Marie DEP, Moore WS, Oberdorfer JA, Peterson R, Ramessur R, Rapaglia J, Stieglitz T, Top Z (2012) Isotopic, geophysical and biogeochemical investigation of submarine groundwater discharge: IAEA-UNESCO intercomparison exercise at Mauritius Island. J Environ Radioactiv 104:24–45CrossRefGoogle Scholar
  17. Rodellas V, Garcia-Orellana J, Tovar-Sánchez A, Basterretxea G, López-Garcia JM, Sánchez-Quiles D, Garcia-Solsona E, Masqué P (2014) Submarine groundwater discharge as a source of nutrients and trace metals in a Mediterranean bay (Palma Beach, Balearic Islands). Mar Chem 160:56–66CrossRefGoogle Scholar
  18. Sanford LP, Boicourt WC, Rives SR (1992) Model for estimating tidal flushing of small embayments. J Waterw Port C-ASCE 118(6):635–654CrossRefGoogle Scholar
  19. Sawyer AH, David CH, Famiglietti JS (2016) Continental patterns of submarine groundwater discharge reveal coastal vulnerabilities. Science 353(6300):705–707CrossRefGoogle Scholar
  20. Street JH, Knee KL, Grossman EE, Paytan A (2008) Submarine groundwater discharge and nutrient addition to the coastal zone and coral reefs of leeward Hawai’i. Mar Chem 109(3):355–376CrossRefGoogle Scholar
  21. Tang R, Dong H, Wang F (1990) Biogeochemical behavior of nitrogen and phosphate in the Changjiang estuary and its adjacent waters. In: Yu G, Martin JM, Zhou J, Windom H, Dawson R (eds) Biogeochemical study of the Changjiang estuary. China Ocean Press, Beijing, pp 322–334Google Scholar
  22. Taniguchi M, Burnett WC, Cable JE, Turner JV (2002) Investigation of submarine groundwater discharge. Hydrol Process 16(11):2115–2129CrossRefGoogle Scholar
  23. Umezawa Y, Miyajima T, Kayanne H, Koike I (2002) Significance of groundwater nitrogen discharge into coral reefs at Ishigaki Island, southwest of Japan. Coral Reefs 21(4):346–356Google Scholar
  24. Won J-H, Lee J-Y, Kim J-W, Koh G-W (2006) Groundwater occurrence on Jeju Island, Korea. Hydrogeol J 14(4):532–547CrossRefGoogle Scholar
  25. Wong GTF, Gong G-C, Liu K-K, Pai S-C (1998) ‘Excess Nitrate’ in the East China Sea. Estuar Coast Shelf S 46(3):411–418CrossRefGoogle Scholar

Copyright information

© Korea Institute of Ocean Science & Technology (KIOST) and the Korean Society of Oceanography (KSO) and Springer Science+Business Media B.V. 2017

Authors and Affiliations

  1. 1.School of Earth and Environmental Sciences/RIOSeoul National UniversitySeoulKorea

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