• 제목/요약/키워드: Antarctic Polar Front

검색결과 14건 처리시간 0.02초

남극해 인도양 해역에 위치한 콘래드 해령 지역의 마지막 빙하기 이후 생물기원 오팔 생산의 변화 (Variation of Biogenic Opal Production on the Conrad Rise in the Indian Sector of the Southern Ocean since the Last Glacial Period)

  • 양주연;;최혁;김부근
    • Ocean and Polar Research
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    • 제45권3호
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    • pp.141-153
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    • 2023
  • Biological pump processes generated by diatom production in the surface water of the Southern Ocean play an important role in exchanging CO2 gas between the atmosphere and ocean. In this study, the biogenic opal content of the sediments was measured to elucidate the variation in the primary production of diatoms in the surface water of the Southern Ocean since the last glacial period. A piston core (COR-1bPC) was collected from the Conrad Rise, which is located in the Indian sector of the Southern Ocean. The sediments were mainly composed of siliceous ooze, and sediment lightness increased and magnetic susceptibility decreased in an upward direction. The biogenic opal content was low (38.9%) during the last glacial period and high (73.4%) during the Holocene, showing a similar variation to that of Antarctic ice core ΔT and CO2 concentration. In addition, the variation of biogenic opal content in core COR-1bPC is consistent with previous results reported in the Antarctic Zone, south of the Antarctic Polar Front, in the Southern Ocean. The glacial-interglacial biogenic opal production was influenced by the extent of sea ice coverage and degree of water column stability. During the last glacial period, the diatom production was reduced due to the penetration of light being limited in the euphotic zone by the extended sea ice coverage caused by the lowered seawater temperature. In addition, the formation of a strong thermocline in more extensive areas of sea ice coverage led to stronger water column stability, resulting in reduced diatom production due to the reduction in the supply of nutrient-rich subsurface water caused by a decrease in upwelling intensity. Under such environmental circumstances, diatom productivity decreased in the Antarctic Zone during the last glacial period, but the biogenic opal content increased rapidly under warming conditions with the onset of deglaciation.

Distribution of Microzooplankton across the Frontal Systems of the Southern Ocean

  • Lee, Hak-Young;Cho, In-Sook;Kim, Jong-Won;Richard M. Greene
    • Environmental Sciences Bulletin of The Korean Environmental Sciences Society
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    • 제3권1호
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    • pp.1-9
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    • 1999
  • Microzooplankton was analysed between $40^{\circ}s$ to $53^{\circ}s$S and $140^{\circ}E$ to $146^{\circ}E$ of the Sourthern Ocean from November 18 to November 30, 1995 to investigate the influence of frontal systems. The density and carbon biomass of microzooplankton were clearly associated with frontal systems, and at least 4 different communities were identified. The Subtropical Convergence Zone and Antarctic Polar Front Zone were the major biological boundaries recognized in the Southern Ocean. Ciliates predominated other microzooplankton in density and carbon biomass. Non-tintinnid ciliates occupied more than 70% of the total microzooplankton, and Laboea spp. was the major component of the non-tintinnid ciliates. The density and carbon biomass showed a decreasing tendency toward south from $40^{\circ}S$ to the $53^{\circ}S$ transect. The ecological importance of a frontal zone is confirmed by the microzooplanktonic data obtained from this study.

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Landsat 다중분광 영상정합을 이용한 동남극 난센 빙붕의 2000-2017년 흐름속도 변화 분석 (Analysis of Ice Velocity Variations of Nansen Ice Shelf, East Antarctica, from 2000 to 2017 Using Landsat Multispectral Image Matching)

  • 한향선;이춘기
    • 대한원격탐사학회지
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    • 제34권6_2호
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    • pp.1165-1178
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    • 2018
  • 남극 빙붕의 붕괴 및 흐름속도의 변화는 빙상에 대한 지지력을 약화시킬 수 있어 해수면 상승에 잠재적인 원인이 될 수 있다. 이 연구에서는 2016년 4월 대규모 붕괴가 발생한 동남극 난센 빙붕에 대해 Landsat-7 Enhanced Thematic Mapper Plus(ETM+) 및 Landsat-8 Operational Land Imager(OLI) 영상을 이용하여 2000년부터 2017년까지의 연간 흐름속도 변화를 분석하였다. 흐름속도 산출을 위해 Landsat의 청색, 녹색, 적색, 근적외선, 전정색 및 첫 번째 주성분 영상 등 총 6개 영상에 orientation correlation 기법을 적용하고, 각각의 변위 산출 결과를 융합하는 다중분광 영상정합 기법을 사용하였다. Landsat 다중분광 영상정합은 난센 빙붕에서 전정색 단일 밴드 영상정합을 사용하는 경우보다 최소 14% 더 넓은 영역에 대해 신뢰할 수 있는 흐름속도를 산출하였고, Global Positioning System(GPS)로 관측된 흐름속도와 비교한 결과 ${\pm}2.1m\;a^{-1}$의 매우 작은 오차를 가지는 것으로 분석되었다. 난센 빙붕에서 2000-2017년 사이에 가장 급격한 흐름속도 증가를 나타낸 곳은 Drygalski 빙하설과 인접한 영역이었으며, 빙붕의 중앙 유선을 따라 측정된 흐름속도는 빙붕 전면(ice front)에 rift가 발달하기 전인 2010년까지 거의 변화가 없었다(${\sim}228m\;a^{-1}$). Rift가 발달하기 시작한 2011-2012년에 rift 상류에서 흐름속도의 가속화가 관측되었으나(${\sim}255m\;a^{-1}$), 이는 2010년에 비해 약 11% 빨라진 것에 불과하였다. 난센 빙붕의 rift가 완전히 발달한 2014년부터 rift 상류의 흐름속도는 다소 감소한 상태(${\sim}225m\;a^{-1}$)로 안정화 되었다. 이는 rift의 발달 및 빙붕 전면의 붕괴가 난센 빙붕의 흐름속도에 거의 영향을 주지 않았음을 의미한다.

남극 세종기지의 에너지 평형 (Surface Energy Balance at Sejong Station, King George Island, Antarctica)

  • 김준;조희구;정연진;이윤곤;이방용
    • 대기
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    • 제16권2호
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    • pp.111-124
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    • 2006
  • This study examines seasonal variability of the surface energy balance at the King Sejong Station, Antarctica, using measurements and estimates of the components related to the balance for the period of 1996 to 2004. Annual average of downward shortwave radiation at the surface is 81 $Wm^{-2}$ which is 37% of the extraterrestrial value, with the monthly maximum of 188 $Wm^{-2}$ in December and the minimum of 8 $Wm^{-2}$ in June. These values are relatively smaller than those at other stations in Antarctica, which can be attributed to higher cloudy weather conditions in Antarctic front zone. Surface albedo varies between ~0.3 in the austral summer season and ~0.6 in the winter season. As a result, the net shortwave radiation ranges from 117 $Wm^{-2}$ down to 3 $Wm^{-2}$ with annual averages of 43 $Wm^{-2}$. Annual average of the downward longwave radiation shows 278 $Wm^{-2}$, ranging from 263 $Wm^{-2}$ in August to 298 $Wm^{-2}$ in January. The downward longwave radiation is verified to be dependent strongly on the air temperature and specific humidity, accounting for 74% and 79% of the total variance in the longwave radiation, respectively. The net longwave radiation varies between 25 $Wm^{-2}$ and 40 $Wm^{-2}$ with the annual averages of 30 $Wm^{-2}$. Accordingly, the annual average energy balance is dominated by radiative warming of a positive net all-wave radiation from September to next March and radiative cooling of a negative net all-wave radiation from April to August. The net all-wave radiative energy gain and loss at the surface is mostly balanced by turbulent flux of sensible and latent heat. The soil heat flux is of negligible importance in the surface energy balance.