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  1. NTU Theses and Dissertations Repository
  2. 理學院
  3. 海洋研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/9309
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor唐存勇
dc.contributor.authorWei-Lun Hsuen
dc.contributor.author徐偉倫zh_TW
dc.date.accessioned2021-05-20T20:16:58Z-
dc.date.available2009-07-14
dc.date.available2021-05-20T20:16:58Z-
dc.date.copyright2009-07-14
dc.date.issued2009
dc.date.submitted2009-07-02
dc.identifier.citation1.Alford, M. H. (2003), Redistribution of the energy available for ocean mixing by long-range propagation of internal waves, Nature, 423, 159-162.
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9.Emery, W. J. (2001), Water types and water masses, Encyclopedia of Ocean Sciences, 6, 3179-3187.
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14.Helfrich, K. R. and Melville, W. K. (1986), On long nonlinear internal waves over slope-shelf topography, Journal of Fluid Mechanics, 167, 285-308.
15.Kallberg, P., Berrisford, P., Hoskins, B., Simmons, A., Uppala, S., Lamy-Thepaut, S. and Hine, R. (2005), ERA-40 Atlas, ERA-40 Project Report Series, 19, European Centre for Medium Range Weather Forecasts, 191 pp.
16.Kowalik, Z. and Murty, T. S. (1993), Numerical Modeling of Ocean Dynamics, World Scientific, 481 pp.
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18.Nitani, H. (1972), Beginning of the Kuroshio, in Kuroshio: Its Physical Aspects of the Japan Current, edited by H. Stommel and K. Yoshida, University of Washington Press, 129-163.
19.Pond, S. and Pickard, G. L. (1983), Introductory Dynamical Oceanography, 2nd Edition, Pergamon Press, 329 pp.
20.Qu, T., Girton, J. B. and Whitehead, J. A. (2006), Deepwater overflow through Luzon Strait, Journal of Geophysical Research-Oceans, 111, C01002.
21.Ramp, R. S., Tang, T. Y., Duda, T. F., Lynch, J. F., Liu, A. K., Chiu, C. S., Bahr, F., Kim, H. R. and Yang, Y. J. (2004), Internal solitons in the northeastern South China Sea Part I: Source and deep water propagation, IEEE Journal of Oceanic Engineering, 29 (4), 1157-1181.
22.Robinson, A. and Stommel, H. (1959), The oceanic thermocline and the associated thermohaline circulation, Tellus, 11 (3), 295-308.
23.Stommel, H. (1958), The abyssal circulation, Deep-Sea Research, 5, 80-82.
24.Stommel, H. (1958), The Gulf Stream: A Physical and Dynamical Description, University of California Press, and Cambridge University Press, 202 pp.
25.Teague, W. J., Carron, M. J. and Hogan, P. J. (1990), A comparison between the Generalized Digital Environmental Model and levitus climatologies, Journal of Geophysical Research, 95 (C5), 7167–7183.
26.Trenberth, K. E., Large, W. G. and Olson, J. G. (1989), A Global Ocean Wind Stress Climatology Based on ECMWF Analyses, TN-338+STR, National Center for Atmospheric Research, 93 pp.
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28.Wyrtki, K. (1961), Physical oceanography of the Southeast Asian waters. Scientific results of marine investigations of the South China Sea and Gulf of Thailand 1969-1961, NAGA Rep. No.2, University of California, Scripps Institution of Oceanography, La Jolla, California, 195 pp.
29.Yang, Y. J., Tang, T. Y., Chang, M. H., Liu, A. K., Hsu, M. K. and Ramp, S. R. (2004), Soliton northeast of Tung-Sha Island during the ASIAEX pilot studies, IEEE Journal of Oceanic Engineering, 29 (4), 1182-1199.
30.林媺瑛 (2000),南海底層環流的數值模擬,國立台灣大學海洋研究所碩士論文。
31.梁文德 (2002),南海上層海溫及海流變化之研究,國立台灣大學海洋研究所博士論文。
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/9309-
dc.description.abstract根據海底地形量測資料顯示,在太平洋與南海 (South China Sea, SCS)之間,在大約東經121.5 度的位置,存在兩個深水通道。此兩個深水通道推測為深層 (大於2000 公尺)海水交換的路徑;其中,較北方的通道位於台灣的東南邊,以『D1』表示,而較南方的通道則位於呂宋海峽 (Luzon Strait)的東邊,以『D2』表示。透過實際觀測當地海流變化發現,深層海水主要是經由『D2』通道流入南海內部,平均流量約為1.08 (±0.32)Sv (1 Sv=106 m3s-1),而經由『D1』通道傳輸的流量由於過小 (僅約-0.09±0.03 Sv)故予以忽略。根據容積守恆 (volume conservation)原理,可藉由流入的流量估算出底部冷水的滯留時間 (residence time),以及在水深2000 公尺等深線處的平均湧昇速度 (upwelling)。根據研究結果指出,流入的深層冷水需要花費約31∼58 年的時間才能將舊有的南海海盆深層水替換完成,這與前人估算年限頗為接近;而在估算湧昇速度方面,水深2000 公尺處的湧昇速度約為1.10 (±0.32)×10-6 ms-1,與透過QSCAT 風場資料 (Quick Scatterometer)計算出的艾克曼抽送 (Ekman Pumping)速度 (1.30×10-6 ms-1),以及由氣候平均值GDEM (Generalized Digital Environmental Model)計算出的地轉流 (Geostrophic flow)湧昇速度 (0.30×10-6 ms-1)的流速總合相比,約略近似。經由水團比對分析後發現,流入南海內部的深層海水可能是由太平洋副北極中層水 (Pacific Subarctic Intermediate Water, PSIW)與繞極深層水 (Circumpolar Deep Water, CDW)兩種水團所混合而成。
對於南海內部熱平衡之探討,深層冷水由『D2』通道注入南海內部的熱通量約為-10.5 Wm-2,其值約能抵消40 %的海表面淨熱通量 (net heat flux),顯示其冷水的湧升現象,對於維持南海內部的強分層 (stratification)扮演著十分重要的角色。
zh_TW
dc.description.abstractGeographically, two deep channels which are both located around 121.5°E could lead deep water exchange (>2000 m) between Pacific Ocean and South China Sea (SCS). The north one, named as D1, is located east of southern Taiwan, while the south one, named as D2, is located east of Luzon Strait. The presented current observations indicate the deep water continuously flow into the SCS through D2. The volume transport through D2 was 1.08±0.32 Sv (1 Sv = 106 m3s-1), while the transport through D1 was negligible. By assuming volume conservation, the inflow transport was used to estimate the residence time and vertical velocity on the 2000m isobaths. The estimated residence time in the deep SCS (>2000m) is from 31 to 58 years. The estimated vertical velocity at 2000m is (1.10±0.32)×10-6 ms-1. It is close to the sum of the mean Ekman pumping (1.30×10-6 ms-1) and the mean geostrophic vertical velocities (0.30×10-6 ms-1) which were calculated by using Quick Scatterometer (QSCAT) wind and Generalized Digital Environmental Model (GDEM), respectively. The result indicates the deep current at D2 could be a primary channel providing the cold water into SCS. Examined the historical hydrography around SCS, the origination of SCS deep water could be mainly mixed by the water mass of Circumpolar Deep Water (CDW) and the water mass of Pacific Subarctic Intermediate Water (PSIW).
Heat flux through D2 channel was also calculated. It could be balanced for 40% of net heat flux on sea surface. The result was implied that the upwelling at deep SCS as well as intermediated depths could be important for maintaining strong stratification and energetic internal motion in the SCS.
en
dc.description.provenanceMade available in DSpace on 2021-05-20T20:16:58Z (GMT). No. of bitstreams: 1
ntu-98-R96241105-1.pdf: 2050701 bytes, checksum: 462630955988784245f9424e689d885d (MD5)
Previous issue date: 2009
en
dc.description.tableofcontents目錄......................................................i
圖目錄...................................................ii
表目錄..................................................iii
第一章、緒論..............................................1
第二章、資料分析與結果....................................5
2.1 現場工作..........................................5
2.2 錨碇觀測資料......................................7
2.3 流量傳輸..........................................9
2.4 湧昇流的探討.....................................12
第三章、討論.............................................29
第四章、結論.............................................37
參考文獻.................................................40
dc.language.isozh-TW
dc.title南海深層水流量之探討zh_TW
dc.titleThe volume transport of the cold deep water in the South China Seaen
dc.typeThesis
dc.date.schoolyear97-2
dc.description.degree碩士
dc.contributor.oralexamcommittee王冑,莊文思,陳鎮東
dc.subject.keyword南海,深層水,流量,湧昇,滯留時間,水團,熱通量,zh_TW
dc.subject.keywordSouth China Sea,deep water,volume transport,residence time,water mass,heat flux,upwelling,en
dc.relation.page44
dc.rights.note同意授權(全球公開)
dc.date.accepted2009-07-03
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept海洋研究所zh_TW
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