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부산신항 용원수로에서의 퇴적물 준설에 의한 용출특성 변화 연구

A Study on Leaching Characteristics Change for Sediment Dredging in Yongwon Channel, Busan New Port

  • 추민호 ((주)메이텍엔지니어링) ;
  • 김영도 (인제대학교 환경공학과(낙동강유역환경연구센터)) ;
  • 정원무 (한국해양과학기술원 연안개발.에너지연구부)
  • 투고 : 2014.02.06
  • 심사 : 2017.03.29
  • 발행 : 2017.06.01

초록

용원해역은 부산신항 개발사업의 일환으로 추진된 북컨테이너부두 조성사업 및 항만 배후단지 조성사업으로 전면 해역이 매립되어 원활한 해수흐름이 차단되고 송정천 하구 지점의 견마도 북쪽 통로를 이용한 선박이동만이 가능한 좁고 긴 수로형태로 변형되었다. 따라서 용원수로에 유입되는 오염물질은 수로에 체류되어 서서히 확산되는 양상을 보일 것으로 판단된다. 본 연구에서는 용원수로 내 준설 전 후 퇴적토 용출실험을 실시한 결과 준설 후에 용출농도가 낮게 나타났으며, 그룹별(A~C) 삭감률을 산정한 결과 T-N의 삭감률은 4.6%, 18.0%, 18.6%로 나타났다. T-P의 삭감률은 24.8%, 24.2%, 44.1%로 나타났다. COD의 삭감률은 18.6%, 19.8%, 38.1%로 용원수로 내 준설 후 수질개선의 효과가 나타났으며, 준설을 통한 용원수로 내 오염원을 제어하기 위한 기초자료로 활용하고자 한다.

In Yongwon channel, its natural flow of seawater is blocked by the construction of Busan Newport including the container berth. The channel was transformed into a narrow and long one, where it is possible that ships are only allowed to pass through the north-side channel of Gyeonmado located at the point of river mouth to Songjeongcheon. So it is considered that the changes in the terrain characteristics of Yongwon channel is likely to alter the circulation of sea water, thereby changing its water quality. Contaminants are accumulated from the sediment release. In this study, before and after dredging the sediment release test was performed. As a result, after the sediment dredging is performed, the reduction rate was higher at the same point. The results show that the water quality can be improved by dredging. Each group (A~C) reduction rate of the evaluation of the reduction rate of 4.64% T-N, 18.00%, 18.59%, respectively. T-P rate of 24.75% reduction, 24.17%, 44.08%, respectively. COD reduction rate was 18.57%, 19.76%, 38.08%, respectively. These results can be used as basic data for controlling the contamination by dredging in Yongwon channel.

키워드

참고문헌

  1. Bengtsson, L., Fleischer, S., Lindmark, G. and Ripl, W. (1975). "Lake trummen restoration project I." Water and Sediment Chemistry, Verh. Int. Ver. Theor. Angew. Limnol., Vol. 19, pp. 1080-1087.
  2. Cho, H. Y., Chae, J. W., Park, J. G., and Koo, M. S. (2008). "Trend analysis of the COD and nutrients concentrations in the Yongwon channel, Chinhae." Journal of the Korean Society of Coastal and Ovean Engineers, Vol. 20, No. 4, pp. 421-428.
  3. Choi, H. G., Moon, H. B., Choi, M. K. and Yu, J. (2011). "Mornitoring of organic contaminats in sediments from the Korea coast: Spatial distribution and temporal trends (2001-2007)." Marine Pollution Bulletion, Vol. 62, pp. 1352-1361. https://doi.org/10.1016/j.marpolbul.2011.03.029
  4. Fast, A. W., Dorr, V. A. and Rosen, R. J. (1975). "A submerged hypolimnion aerator." Water Resources, Vol. 11, No. 2, pp. 287-293. https://doi.org/10.1029/WR011i002p00287
  5. Forsberg, C. (1989). "Importance of sediments in understanding nutrient cyclings in lakes." Hydrobiologia, Vol. 176/177, pp. 263-277. https://doi.org/10.1007/BF00026561
  6. Hakanson, L. and Jansson, M. (1983). Principles of lake sedimentology.
  7. Kim, D. H. (2007). "Study on the sediment quality in bottom water." Journal of the Korean Society of Marine Environment & Safety, Vol. 13, No. 1, pp. 93-102.
  8. Lee, C. W., Kwon, Y. T. and Yun, J. H. (2004). "Development of dredging index for the rational remediation of polluted coastal sediments." Journal of the Korean Society for Marine Environmental Engineering, Vol. 7, No. 2, pp. 70-74.
  9. Lee, Y. S. and Lee, K. S. (2004). "Organic sediment distribution and release charcteristics on lake Daechung." Journal of the Korean Society of Environ Engineers, Vol. 26, No. 6, pp. 665-669.
  10. Lennox, L. J. (1984). "Lough ennel laboratory studies on sediment phosphorous release under varying mixing." Aerobic and Anaerobic Conditions., Freb water Biology, Vol. 14, pp. 183-187.
  11. Lijklema, L., Gelencser, P., Szilagyi, F. and Somlyody, L. (1986). Sediment and its interaction with water, In Modeling and Managing Shallow Lake Eutrophication (Edited by Somlyody L. and van Straten G.). Springer, Berlin.
  12. Maris, K. M. and Elga, A. E. (1997). "Sedimentary humic substances form lakes in latvia." Environment International, Vol. 23, No. 6, pp. 783-790. https://doi.org/10.1016/S0160-4120(97)00090-1
  13. Markus, H. (1990). "Influence of the lungworm arenicola marina on porewater nutrient profiles of sand flat sediments." Mar. Ecol. Prog. Ser., Vol. 62, pp. 241-248. https://doi.org/10.3354/meps062241
  14. Ryding, S. O. (1981). Reversibility of man-induced eutrophication, Experiences of a lake recovery study in Sweden. Int. Rev.
  15. Salomons, W., Rooij, N. M. and Bril, J. (1987). "Sediments as a source for contaminants." Hydrobiologia, Vol. 149, pp. 13-30. https://doi.org/10.1007/BF00048643