남극 사우스셰틀란드 해양퇴적물내 스멕타이트의 광물학적 특성과 기원

Mineralogical Characteristics and Origins of Smectite in the Marine Sediment around South Shetland Islands, Antarctica

  • 정기영 (안동대학교 지구환경과학과) ;
  • 윤호일 (한국해양연구원 극지연구본부)
  • 발행 : 2002.03.01

초록

Mineral composition and chemistry of the clay minerals in the three cores from the continental shelves of South Shetland Islands (NCS09) and Anberse Island (GC98-2), and from the fjord of King George Island (A10-01) were determined by X-ray diffraction and electron microprobe analysis in search of the distributions and origin of the clay minerals in the Antarctic marine sediments. Smectite content is relatively high in NCS09 regardless of core depths (av. 8.3%), but low in GC98-2 (1.1%). In Al0-01, smectite content is higher in the upper section than in the lower section. Kaolinite was not detected from all the cores in this study Yellow to yellowish green clay granules were commonly scattered in the sediments of NCS09 cores. The clays contain 16.97% and 2.53% $Fe_2$$O_3$$K_2$O. Average structural formula of the clay indicates ferrian beidellite . The (Fe, K)-rich smectite of NSC09 must have been derived from relatively young basaltic volcanics altered by reaction with seawater near Shetland Islands by glacial erosion or eolian process related to volcanic eruption. GC98-2 nearer to Antarctic continent is very low in smectite content. In A10-01, the lower diamicton was deposited from the glacial erosion of smectite-free ancient volcanics in the interior of King George Island, while the upper section was derived from the smectite-bearing terrestrial debris and eolian materials after retreat of glaciers in Marian Cove and ice cover in Barton Peninsula. Thehigh K contents of smectites suggest the interstratification of illite and smectite layers, which might be observed by future TEM lattice fringe imaging.

키워드

참고문헌

  1. 김동선, 박병권, 윤호일, 강천윤(1998) 남극 남쉐틀랜드 군도의 맥스웰 만에서 홀로세 기후변화에 대한 지화학적 증거. 한국해양연구소 극지환경 특성 및 보존에 관한 연구보고서 BSPP 98001-04-1149-7, 49-70.
  2. 정기영, 윤호일(2000) 남극 남극 사우스셰틀란드 킹죠지섬 바톤 반도 토양에서의 화학적 풍화작용과 퐁화기원광물에 대한 미조직학적 증거. 한국해양 연구소 극지환경 특성 및 보존에 관한 연구보고서 ECPP 99001-03, p. 346-366.
  3. 정기영, 윤호일, 박병권 (1999) 서남극 킹죠지섬 바톤반도의 토양 점토광물의 분포 및 기원. 지질학회지, 35, 265-278.
  4. Chamley, H. (1989) Clay sedimentology, SpringerVerlag, Heidelberg, 623p.
  5. Ehrmann, W.u., Melles, M., Kuhn, G., and Grobe, H. (1992) Significance of clay mineral assemblages in the Antarctic Ocean. Marine Geol., 107, 249-273.
  6. Honnorez, J. (1981) The aging of the oceanic crust at low temperature. In: Emiliani C. (ed.), The oceanic lithosphere, The Sea, 7, Wiley & Sons, New York, 525-587.
  7. Jeong, G.Y., and Kim, SJ. (1993) Boxwork fabric of halloysite-rich kaolin formed by weathering of anorthosite in the Sancheong area, Korea. Clays Clay Miner., 41, 56-65.
  8. Jeong, G.Y. and Yoon, H.1. (2001) The origin of clay minerals in soils of King George Island, South Shetland Islands, West Antarctica and its implication to the clay mineral compositions of marine Sediments. Jour. Sed. Res., 71, 833-842.
  9. Masuda, H., O'Neil, J.R., Jiang W.-T., and Peacor, D. R. (1996) Relation between interiayer composition of authigenic smectite, mineral assemblages, liS reaction rates and fluid composition in silicic ash of the Nakai Trough. Clays Clay Miner., 44,443-459.
  10. Melles, M., Kuhn, G., Ftitterer, D.K., and Meischner, D. (1995) Processes of modern sedimentation in the Southern Weddell Sea, Antarctica - Evidence from surface sediments. Polarforschung, 64, 45-74.
  11. Singer, A, Stoffers, P., Heller-Kallal, L., and Szafranek, D. (1984) Nontronite in a deep-sea core from the South Pacific. Clays Clay Miner., 32, 375-383.
  12. St. John, K.E.K and Cowan, E.A. (2000) Terrestrial gypsum from Alaska and Greenland in glacially influenced marine sediments. Sed. Geol., 136,43-58.
  13. Weaver, C.E. and Pollard, L.D. (1973) The chemistry of clay minerals. Elsevier, Amsterdam, 213p.
  14. Zhou, Z. and Fyfe, W.S. (1989) Palagonitization of basaltic glass of DSDP site 335, Leg 37: textures, chemical composition, and mechanism of formation. Amer. Mineral., 74, 1045-1053.