DOI QR코드

DOI QR Code

Modern Sedimentary Environments Within the Gogunsan Archipelago

고군산군도 내측해역의 현생퇴적환경

  • 이희준 (한국해양연구원 새만금해양환경연구단) ;
  • 김민지 (한국해양연구원 새만금해양환경연구단) ;
  • 김태경 (한국해양연구원 새만금해양환경연구단)
  • Published : 2008.12.30

Abstract

The relatively tranquil area within the Gogunsan Archipelago was for the first time investigated preliminarily with respect to modern sedimentological processes in association with the emplacement of the Saemangeum Dyke. Basic sedimentological observations, bathymetry and surface sediments were performed twice during 2006-2008 to compare the results and elaborate changes during that period of time. In addition, sediment dynamical observations were carried out with latest measuring equipment along two transects crossing the entrances of the archipelago, including 12-hour onboard measurements of current, suspended sediments, temperature, and salinity. This dataset was used to reveal hydrodynamic characteristics for spring season April-May and to estimate the direction and relative magnitude of the net flux of suspended sediments. There occurred three depositional areas (A to C) within the archipelago, where sediment texture was also changed. In area A, around Yami Island and the dyke, and area B, in the center of the archipelago, surface sediments became coarsened over the two-year period; sand content increased 5% at the expense of silt content in the former, whereas silt content increased 3% at the expense of clay content in the latter. By comparison, area C in the western entrance of the archipelago shows a textural trend of fining with more silt and clay (combined increase of 5%) at the expense of sand content. The accumulation of sediments in areas A and B is attributable to the sand and silt resuspended from the seabed sediments off sector 4 of the dyke during the winter. The origin of the fine materials depositing on area C is uncertain at present, although suspended sediments moving offshore around the archipelago may be one of the most likely candidates for the source. The temperature of seawater increased rapidly from $9-10^{\circ}C$ in April to $14-16^{\circ}C$ in May, whereas salinity remained more or less constant at 31-32%o during the two months. Both of these parameters showed little variations with depth through a tidal cycle, suggesting good mixing of seawater without any help of significant waves. The consistency of salinity during a tidal cycle also indicates no insignificant effects of freshwater from the rivers Mangyung and Donjin emitting through the opening gap near Sinsi Island. The suspended sediment concentrations were higher at the entrance between Sunyu and Sinsi islands than at the entrance between Hoenggyong and Sinsi islands, ranging from 20 and 30 mg/l and from 5 and 15 mg/l, respectively at the sea surface. Although tidal currents were variable across a transect between Sunyu and Sinsi islands, the currents across the entrance between Hoenggyong and Sinsi islands flowed consistently in the same direction all over the transect during a tidal cycle. The estimation of net flux of suspended sediments indicates that suspended sediments are transferred to the Gogunsan Archipelago mainly through a relatively deep trough adjacent to Sinsi Island toward the shallow area around Yami Island and the dyke.

Keywords

References

  1. 국립지리원. 1981. 연안해역 기본조사 보고서(군산지구). 건설부. 63 p
  2. 농림수산부. 1994. 새만금 종합개발 사업: 어업피해 보상 조사연구: 제 IV 편 지질해양학적 조사. 364 p
  3. 농림부. 1997. '97 새만금지구 수리실험 및 파랑관측 보고서. 농어촌진흥공사 연구보고서, 97-11-03. 853 p
  4. 최경식. 1994. 한국 서해 만경강 동진강 연근해역 해저퇴적층의 퇴적학적 연구. 석사학위논문, 서울대학교. 183 p
  5. 한국해양연구소 1999. 새만금 방조제 주변 부유물질의 거동특성과 인공갯벌의 조성에 관한 연구. 한국해양연구소 연구보고서, BSPE99772-00-1232-5. 211 p
  6. 해양수산부. 2003. 새만금 해양환경보전대책을 위한 조사연구(1차년도) - 지질, 갯벌분야. 한국해양연구원 연구보고서, BSPM139-06-1514-5. 293 p
  7. 해양수산부. 2004. 새만금 해양환경보전대책을 위한 조사연구(2차년도) - 지질, 갯벌분야. 한국해양연구원 연구보고서, BSPM195-05-1581-5. 357 p
  8. 해양수산부. 2006. 새만금 해양환경보전대책을 위한 조사연구(4차년도) - 지질, 갯벌분야. 한국해양연구원 연구보고서, BSPM32007-1764-5. 487 p
  9. 해양수산부. 2007. 새만금 해양환경보전대책을 위한 조사연구(2단계 1차년도) - 연안해저지형변화 예측 및 관리 방안, 한국해양연구원 연구보고서, BSPM37907-1861-5. 532 p
  10. 해양수산부. 2008. 새만금 해양환경보전대책을 위한 조사연구(2단계 2차년도) - 연안해저지형변화 예측 및 관리 방안, 한국해양연구원 연구보고서
  11. Chough, S.K., H.J. Lee, and S.H. Yoon. 2000. Marine Geology of Korean Seas, Elsevier, New York, 313 p
  12. Chu, Y.S., H.J. Lee, K.W. Choi, and D.-S. Eo. 2001. Accelerated seaward growth of tidal sand bar during giant dyke construction off the Mangyung River mouth, west coast of Korea. J. Korean Soc. Oceanog., 36, 72-82
  13. Folk, R.L. 1968. Petrology of sedimentary rocks. Hemphill Pub. Co., Austin, Texas. 170 p
  14. Lee, H.J. and S.K. Chough. 1989. Sediment distribution, dispersal and budget in the Yellow Sea. Mar. Geol., 87, 195-205 https://doi.org/10.1016/0025-3227(89)90061-3
  15. Lee, H.J. and Y.S. Chu. 2001. Origin of inner-shelf mud deposit in the southeastern Yellow Sea: Huksan mud belt. J. Sediment. Res., 71, 144-154 https://doi.org/10.1306/040700710144
  16. Lee, H.J. and S.O. Ryu. 2007. Role of the giant Saemangeum dyke in sedimentation at the mouth of an estuarine complex. Mar. Geol., 239, 173-188 https://doi.org/10.1016/j.margeo.2007.02.002
  17. Lee, H.J. and S.O. Ryu. 2008. Changes in topography and surface sediments by the Saemangeum dyke in an estuarine complex, west coast of Korea. Cont. Shelf Res., 28, 1177-1189 https://doi.org/10.1016/j.csr.2008.03.008

Cited by

  1. A Study on Meiofauna Community in the Subtidal Sediment outside of the Saemangeum Seadike in the West Coast of Korea vol.36, pp.3, 2014, https://doi.org/10.4217/OPR.2014.36.3.209
  2. Geological consequences of the Saemangeum Dyke, mid-west coast of korea: A review vol.47, pp.4, 2012, https://doi.org/10.1007/s12601-012-0037-z
  3. Temporal and Spatial Variation of Zooplankton Community Structure Post Construction of Saemangeum Dyke vol.31, pp.4, 2009, https://doi.org/10.4217/OPR.2009.31.4.327
  4. Spatio-temporal Distributions of Phytoplankton Community in the Coastal Waters of Gogunsan Islands(CoWGIs), West Sea of Korea vol.16, pp.3, 2015, https://doi.org/10.5762/KAIS.2015.16.3.2287