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Carrying Capacity and Fishery Resources Release in the Bangjukpo Surfzone Ecosystem

방죽포 쇄파대생태계의 수용력과 수산자원방류

  • KANG Yun Ho (Aquaculture Research Center, Yosu National University)
  • 강윤호 (여수대학교 수산증양식연구센터)
  • Published : 2003.12.01

Abstract

To increase fishery resources in coastal waters, juvenile fish and bivalves are artificially released every year in Korea. This study provides a methodology to estimate an optimal release quantity based on the carrying capacity of the receiving basins. Carrying capacity was defined by E.p. Odum's theory of ecosystem development as the upper limit of biomass, where total system respiration equals total primary production. The Ecopath trophic ecological model was used to determine carrying capacity in the surfzone ecosystem of Bangjukpo on the southern coast of Korea. Using a top-down control method, various biomasses of fish groups were given to the simulation, with primary production constant and no catch. The results showed that biomass of selected fish groups increased by two orders of magnitude, yielding a five-fold increase in overall consumer biomass. The resultant values are 10 times higher than those estimated in open seas. This can be explained by higher primary production in the Bangjukpo surfzone ecosystem. This method can be used for strategic releases and ecosystem management, particularly when based on an ecological background.

Keywords

References

  1. Asplin, L., A.G.V. Salvanes and J.B. Kristoffersen. 1999. Nonlocal wind-driven fjord-coast advection and its potential effect on plankton and fish recruitment. Fish. Oceanogr., 4, 255-263
  2. Cho, E.I., C.K. Park and S.M. Lee. 1996. Estimation of carrying capacity in Kamk Bay. (II) Estimation of carrying capacity of oyster culture ground. J. Kor. Fish. Soc., 29(5), 709-715
  3. Christensen, V. and D. Pauly. 1992. ECOPATH II - a software for balancing steady-state ecosystem models and calculating network characteristics. Ecol. Model., 61, 169-185 https://doi.org/10.1016/0304-3800(92)90016-8
  4. Christensen, V. and D. Pauly. 1993. On steady-state modelling of ecosystems, In: Trophic Models of Aquatic Ecosystems, Christensen V., D. Pauly eds. ICLARM Conference Proceedings 26, International Center for Living Aquatic Resources Management, Manila, Philippines, pp. 14-19
  5. Christensen, V. and D. Pauly. 1998. Changes in models of aquatic ecosystems approaching carrying capacity Ecol. Appl., 8(1), 104-109 https://doi.org/10.1890/1051-0761(1998)008[0104:ESATVW]2.0.CO;2
  6. Dowd, M. 2000. Oceanography and shellfish production: A bio-physical synthesis using a simple model. Bull. Aquacult. Ass. Can., 100(2), 3-9
  7. Finn, J.T. 1980. Flow analysis of models of the Hubbard Brook ecosystem. Ecology, 61, 562-571 https://doi.org/10.2307/1937422
  8. Hannon, B. 1973. The structure of ecosystems. J. Theor. Biol., 41, 535-546 https://doi.org/10.1016/0022-5193(73)90060-X
  9. Hannon, B. 1979. Total energy costs in ecosystems. J. Theor. Biol., 80, 271-293 https://doi.org/10.1016/0022-5193(79)90211-X
  10. Herendeen, R. 1989. Energy intensity, residence time, exergy and ascendency in dynamic ecosystems. Ecol. Model., 48, 19-44 https://doi.org/10.1016/0304-3800(89)90058-6
  11. Kang, Y.H. 2003. A trophic model of a sheltered surfzone at Bangjukpo Southern Korea. Ecol. Model. (submitted)
  12. Kashiwai, M. 1995. History of carrying capacity of semienclosed large marine ecosystems. In: Large Marine Ecosystems of the Pacific Rim: Assesment, Sub- stantiality, and Management. Sherman, K and Q. Tang eds. Blackwell Science Inc., pp. 381-402
  13. Kim, Y. 2002. Seminar on the development direction for fisheries resource in Korea, Ministry of Marine Affairs and fisheries, pp. 18-42
  14. Kim, S. and S. Kang. 1999. Recent development in the concept and research direction for carrying capacity of marine ecosystem. J. Kor. Soc. Fish. Res., 2, 101-110
  15. Lee, J.H., K.W. Choi and F. Arega. 2003. Environmental management of marine fish culture in Hong Kong. Marine Pollut. Bull, 47(1-6), 202-210 https://doi.org/10.1016/S0025-326X(02)00410-1
  16. Lee, W.C., H.C. Kim, W.J. Choi, P.Y. Lee, J.H. Koo and C.K. Park. 2002. I. Validation and sensitivity analysis. J. Kor. Fish. Soc., 35(4), 386-394
  17. Li, D., B. Xiong, Q. Li, J. Li and K. Qi. 1994. Carrying capacity of reservoirs for feeding cage-culture of fish. Acta Hydrobiol. sinica, 18(3), 223-229
  18. Lorenzen, K., J. Struve and V.J. Cowan. 1997. Impact of farming intensity and water management on nitrogen dynamics in intensive pond culture: A mathe-matical model applied to Thai commercial shrimp farms. Aquacult. Res., 28(7), 493-507 https://doi.org/10.1111/j.1365-2109.1997.tb01068.x
  19. Luo, J., KJ, Hartman, S.B. Brandt, C.F. Cerco and T.H. Rippetoe. 2001. A spatially-explicit approach for estimating carrying capacity: An application for the Atlantic Menhaden (Brevoortia tyrannus) in Chesapeake Bay. Estuaries, 24(4), 545-556 https://doi.org/10.2307/1353256
  20. Mackay, A. 1981. The generalized inverse, Practical Com- puting (September), 108-110
  21. MMAF (Ministry of Marine Affairs and Fisheries). 2002. Manual of fisheries seedlings production, pp. 30
  22. Odum, E.P. 1969. The strategy of ecosystem development. Science, 10, 262-270
  23. Odum, E.P. 1971. Fundamentals of ecology. W.B. Saunders Co, Philadelphia, pp. 574
  24. OHA (Office of Hydrographic Affairs, Korea). 1993. Tide tables, Vol.l, OHA, Inchon, pp. 250
  25. Park, J.S., H.C. Kim, W.J. Choi, W.C. Lee, D.M. Kim, J.H. Koo and C.K. Park. 2002. Estimating the carrying capacity of a coastal bay for oyster culture. II. The carrying capacity of Geoje-Hansan Bay. J. Kor. Fish. Soc., 35(4), 408-416
  26. Pauly, D. and V. Christensen. 1993. Stratified models of large marine ecosystems: a general approach and an application to the South China Sea, In: Large Marine Ecosystems: stress, mitigation and sustainability, Sherman K., L.M. Alexander and B.D. Gold eds., AAAS Press, Washington, DC. pp. 148-174
  27. Polovina, J.J. 1984. The ECOPATH model and its application to French Frigate Shoals. Coral Reefs, 3(1), 1-11 https://doi.org/10.1007/BF00306135
  28. Raillard, O. and A. M\'{e}nesguen. 1984. An ecosystem box model for estimating the carrying capacity of a macrotidal shellfish system. Mar. Ecol. Prog. Ser., 115, 117-130 https://doi.org/10.3354/meps115117
  29. Salvanes, AG.V., D. Aksnes, J.H. Fossaa and J. Giske. 1995. Simulated carrying capacities of fish in Norwegian fjords. Fish. Oceanogr., 4(1), 17-32 https://doi.org/10.1111/j.1365-2419.1995.tb00058.x
  30. Siri, T. 1999. Estimation of the carrying capacity for marine shrimp farming area at Kung Krabaen Bay. Thai Mar. Fish. Res. Bull., 7, 17-25
  31. Smaal, A.C., T.C. Prince, N. Dankers and B. Ball. 1998. Minimum requirements for modelling bivalve carrying capacity. Aquat. Ecol., 31, 423-428 https://doi.org/10.1023/A:1009947627828
  32. Tookwinas, S. 1998. The environmental impact of marine shrimp farming effluents and carrying capacity estimation at Kung Krabaen Bay, eastern Thailand. Asian Fish. Soc., 11(3-4), 303-316
  33. Ulanowicz, R.E. 1986. Growth and development: ecosystem phenomenology. Springer Verlag, New York, pp. 203
  34. Ulancowicz, R.E. and C.J. Puccia. 1990. Mixed trophic impacts in ecosystems. Coenoses, 5, 7-16
  35. van der Tol, M.W.M. and H. Scholten. 1997. A model analysis on the effect of decreasing nutrient loads on the biomass of benthic suspension feeders in the Oosterschelde ecosystem (SW Netherlands). Aquat. Ecol., 31, 395-408 https://doi.org/10.1023/A:1009956812400
  36. Ward, G.H. 1995. A strategic approach to carrytng-capacity analysis for aquaculture in estuaries, Interactions between cultured species and naturally occurring species in the environment. UNJR Tech. Rep., 24, 71-84
  37. Wu, R.S.S. 1995. Some practical ways to reduce the environmental impacts of marine fish farming, PACON Conf. on Sustainable Aquaculture '95, Honolulu, HI (USA), 11-14 June

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