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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/123456789/86316
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dc.contributor.advisor張明輝(Ming-Huei Chang)
dc.contributor.authorYU-YU Yehen
dc.contributor.author葉祐瑜zh_TW
dc.date.accessioned2023-03-19T23:48:41Z-
dc.date.copyright2022-08-29
dc.date.issued2022
dc.date.submitted2022-08-25
dc.identifier.citationAcabado, C. S., Cheng, Y. H., Chang, M. H., & Chen, C. C. (2021). Vertical nitrate flux induced by Kelvin-Helmholtz billows over a seamount in the Kuroshio. Frontiers in Marine Science, 1562. Avsarkisov, V. (2020). On the buoyancy subrange in stratified turbulence. Atmosphere, 11(6), 659. Boyer, Tim P., Garcia, Hernan E., Locarnini, Ricardo A., Zweng, Melissa M., Mishonov, Alexey V., Reagan, James R. et al. (2018). World Ocean Atlas 2018. NOAA National Centers for Environmental Information. Chang, M. H., Tang, T. Y., Ho, C. R., & Chao, S. Y. (2013). Kuroshio‐induced wake in the lee of Green Island off Taiwan. Journal of Geophysical Research: Oceans, 118(3), 1508-1519. Chang, M. H., Jheng, S. Y., & Lien, R. C. (2016). Trains of large Kelvin‐Helmholtz billows observed in the Kuroshio above a seamount. Geophysical Research Letters, 43(16), 8654-8661. Chang, M. H., Jan, S., Liu, C. L., Cheng, Y. H., & Mensah, V. (2019). Observations of island wakes at high Rossby numbers: Evolution of submesoscale vortices and free shear layers. Journal of Physical Oceanography, 49(11), 2997-3016. Chang, M. H. (2021). Marginal instability within internal solitary waves. Geophysical Research Letters, 48(9), e2021GL092616. Chang, M. H., Cheng, Y. H., Yeh, Y. Y., Yang, Y. J., Jan S., Liu, C. L. et al. (2022). Internal hydraulic transition and turbulent mixing observed in the Kuroshio over the I-Lan Ridge off northeastern Taiwan. Journal of Physical Oceanography, in press. Chapman, D. C., & Haidvogel, D. B. (1993). Generation of internal lee waves trapped over a tall isolated seamount. Geophysical & Astrophysical Fluid Dynamics, 69(1-4), 33-54. Chen, J. L. J., Yu, X., Chang, M. H., Jan, S., Yang, Y. J., & Lien, R. C. (2020). Shear instability and turbulent mixing in the stratified shear flow behind a topographic ridge at high Reynolds number. Frontiers in Marine Science, 545. Cheng, Y. H., Chang, M. H., Ko, D. S., Jan, S., Andres, M., Kirincich, A. et al. (2020). Submesoscale eddy and frontal instabilities in the Kuroshio interacting with a cape south of Taiwan. Journal of Geophysical Research: Oceans, 125(5), e2020JC016123. Cummins, P. F., Armi, L., & Vagle, S. (2006). Upstream internal hydraulic jumps. Journal of Physical Oceanography, 36(5), 753-769. Douglas W., Lueck R. & McMillan J. (2019). ODAS MATLAB Library technical manual version 4.4. Farmer, D. M., & Denton, R. A. (1985). Hydraulic control of flow over the sill in Observatory Inlet. Journal of Geophysical Research: Oceans, 90(C5), 9051-9068. Forryan, A., Martin, A. P., Srokosz, M. A., Popova, E. E., Painter, S. C., & Renner, A. H. (2013). A new observationally motivated Richardson number based mixing parametrization for oceanic mesoscale flow. Journal of Geophysical Research: Oceans, 118(3), 1405-1419. Garcia H.E., T.P. Boyer, O.K. Baranova, R.A. Locarnini, A.V. Mishonov, A. Grodsky, C.R. Paver, K.W. Weathers, I.V. Smolyar, J.R. Reagan, D. Seidov, M.M. Zweng (2019). World Ocean Atlas 2018: Product Documentation. Grasmick, C., & Geerts, B. (2020). Detailed dual-Doppler structure of Kelvin–Helmholtz waves from an airborne profiling radar over complex terrain. Part I: Dynamic structure. Journal of the Atmospheric Sciences, 77(5), 1761-1782. Hasegawa, D., Matsuno, T., Tsutsumi, E., Senjyu, T., Endoh, T., Tanaka, T. et al. (2021). How a small reef in the Kuroshio cultivates the ocean. Geophysical Research Letters, 48(7), e2020GL092063. Ivey, G. N., Bluteau, C. E., Gayen, B., Jones, N. L., & Sohail, T. (2021). Roles of shear and convection in driving mixing in the ocean. Geophysical Research Letters, 48(3), e2020GL089455. Jan, S., Yang, Y. J., Wang, J., Mensah, V., Kuo, T.-H., Chiou, M.-D., Chern, C.-S., Chang, M.-H., and Chien, H. (2015), Large variability of the Kuroshio at 23.75°N east of Taiwan, Journal of Geophysical Research: Oceans, 120, 1825-1840. Kaminski, A. K., & Smyth, W. D. (2019). Stratified shear instability in a field of pre-existing turbulence. Journal of Fluid Mechanics, 862, 639-658. Klymak, J. M., Legg, S. M., & Pinkel, R. (2010). High-mode stationary waves in stratified flow over large obstacles. Journal of Fluid Mechanics, 644, 321-336. Large, W. G., McWilliams, J. C., & Doney, S. C. (1994). Oceanic vertical mixing: A review and a model with a nonlocal boundary layer parameterization. Reviews of geophysics, 32(4), 363-403. Legg, S., & Klymak, J. (2008). Internal hydraulic jumps and overturning generated by tidal flow over a tall steep ridge. Journal of Physical Oceanography, 38(9), 1949-1964. Legg, S. (2021). Mixing by oceanic Lee waves. Annual Review of Fluid Mechanics, 53, 173–201. Lian, Q., Smyth, W. D., & Liu, Z. (2020). Numerical computation of instabilities and internal waves from in situ measurements via the viscous Taylor–Goldstein problem. Journal of Atmospheric and Oceanic Technology, 37(5), 759-776. Lueck, R. (2013). Calculating the rate of dissipation of turbulent kinetic energy. RSI Technical Note, 028. Lueck, R. & Murowinski, E. (2017). A guide to data processing. RSI Technical Note, 039. Mayer, F. T., & Fringer, O. B. (2017). An unambiguous definition of the Froude number for lee waves in the deep ocean. Journal of Fluid Mechanics, 831. Moum, J. N. (1996). Energy‐containing scales of turbulence in the ocean thermocline. Journal of Geophysical Research: Oceans, 101(C6), 14095-14109. Nagai, T., Durán, G. S., Otero, D. A., Mori, Y., Yoshie, N., Ohgi, K., ... & Kobari, T. (2019). How the Kuroshio Current delivers nutrients to sunlit layers on the continental shelves with aid of near‐inertial waves and turbulence. Geophysical Research Letters, 46(12), 6726-6735. Nagai, T., Hasegawa, D., Tsutsumi, E., Nakamura, H., Nishina, A., Senjyu, T., ... & Tandon, A. (2021). The Kuroshio flowing over seamounts and associated submesoscale flows drive 100-km-wide 100-1000-fold enhancement of turbulence. Communications Earth & Environment, 2(1), 1-11. Ruddick, B., Anis, A., & Thompson, K. (2000). Maximum likelihood spectral fitting: The Batchelor spectrum. Journal of Atmospheric and Oceanic Technology, 17(11), 1541-1555. Pacanowski, R. C., & Philander, S. G. H. (1981). Parameterization of vertical mixing in numerical models of tropical oceans. Journal of Physical Oceanography, 11(11), 1443-1451. Pelegri, J. L., & Csanady, G. T. (1994). Diapycnal mixing in western boundary currents. Journal of Geophysical Research: Oceans, 99(C9), 18275-18304. Peters, H., Gregg, M. C., & Toole, J. M. (1988). On the parameterization of equatorial turbulence. Journal of Geophysical Research: Oceans, 93(C2), 1199-1218. Salehipour, H., Caulfield, C. P., & Peltier, W. R. (2016). Turbulent mixing due to the Holmboe wave instability at high Reynolds number. Journal of Fluid Mechanics, 803, 591-621. Shih, L. H., Koseff, J. R., Ivey, G. N., & Ferziger, J. H. (2005). Parameterization of turbulent fluxes and scales using homogeneous sheared stably stratified turbulence simulations. Journal of Fluid Mechanics, 525, 193-214. Smyth, W. D., & Moum, J. N. (2013). Marginal instability and deep cycle turbulence in the eastern equatorial Pacific Ocean. Geophysical Research Letters, 40(23), 6181-6185. Smyth, W. D., Nash, J. D., & Moum, J. N. (2019). Self-organized criticality in geophysical turbulence. Scientific reports, 9(1), 1-8. Smyth, W. D. (2020). Marginal instability and the efficiency of ocean mixing. Journal of Physical Oceanography, 50(8), 2141-2150. Smyth, W. D., & Moum, J. N. (2000). Length scales of turbulence in stably stratified mixing layers. Physics of Fluids, 12(6), 1327-1342. Tanaka, T., Hasegawa, D., Okunishi, T., Kaneko, H., & Ono, T. (2021). Internal hydraulic jump in the Tsugaru Strait. Journal of Oceanography, 77(2), 215-228. Tsutsumi, E., Matsuno, T., Lien, R. C., Nakamura, H., Senjyu, T., & Guo, X. (2017). Turbulent mixing within the Kuroshio in the Tokara S trait. Journal of Geophysical Research: Oceans, 122(9), 7082-7094. Tu, J., Fan, D., Lian, Q., Liu, Z., Liu, W., Kaminski, A., & Smyth, W. (2020). Acoustic observations of Kelvin‐Helmholtz billows on an estuarine lutocline. Journal of Geophysical Research: Oceans, 125(4), e2019JC015383. World Ocean Atlas 2018: Product Documentation. A. Mishonov, Technical Editor. Voet, G., Alford, M. H., MacKinnon, J. A., & Nash, J. D. (2020). Topographic form drag on tides and low-frequency flow: Observations of nonlinear lee waves over a tall submarine ridge near Palau. Journal of Physical Oceanography, 50(5), 1489-1507. Yu, Z., & Schopf, P. S. (1997). Vertical eddy mixing in the tropical upper ocean: Its influence on zonal currents. Journal of physical oceanography, 27(7), 1447-1458. Zaron, E. D., & Moum, J. N. (2009). A new look at Richardson number mixing schemes for equatorial ocean modeling. Journal of physical oceanography, 39(10), 2652-2664.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/86316-
dc.description.abstract本研究分別使用了2020年10月及2021年9月分別在新海研1號及新海研2號上進行的現場觀測來探討臺灣東方海域黑潮與海底山的交互作用,並特別著重於海流流經陡峭地形所產生的小尺度物理過程。觀測資料顯示,當黑潮流過綠島西北方高度約200公尺的海底山時,海底山的下游處除了會形成背向波 (lee wave) 外,也可以透過聲納回波影像發現一長串由山峰向下游延伸數公里的凱文赫姆茲不穩定波 (Kelvin-Helmholtz billow),而背向波所造成的流場、水文結構變形將會加速該不穩定波的成長。上述小尺度海水運動最終將會演變成紊流,使得海底山下游地區的紊流動消散率 (turbulent kinetic energy dissipation rate) 明顯較上游地區大2個數量級 (O ~ 10-5 W kg-1),且其伴隨的紊流混合可能會改變當地的水文性質。此外,紊流動消散率在我們的實驗期間的變化和近岸潮位資料高度相關,因此推論黑潮流經陡峭海底山所衍生的紊流反應會受到潮汐調節,且理查遜數(Ri)的機率分布大致落於臨界值0.25附近,說明當地之流剪切力與紊流混合之間的平衡對於切變不穩定 (shear instability) 而言處於界穩定狀態 (marginally unstable state),使得不穩定波及高紊流動能消散率 (O ~ 10^-5 W kg-1) 得以在實驗期間不斷地被觀測到。最後,我們將觀測結果所估計出的渦流擴散係數 (eddy diffusivity) 和前人研究中提出的經驗函數做比較,期望能對改善紊流混合的參數化有所幫助。zh_TW
dc.description.abstractTwo scientific cruises were conducted to investigate the flow-topography interactions along the Kuroshio over a seamount off the eastern coast of Taiwan and near Green Island. When the Kuroshio flowed over the 200-m-depth seamount, echo sounder captured the signals of lee waves and shear instability above the seamount and at the immediate lee of the seamount. These small-scale processes further induced vigorous turbulent mixing. Results of microstructure profiling revealed that turbulent kinetic energy dissipation rate (ϵ) varied in both space and time around the seamount. That is, ϵ was O(10^-5 W kg-1) downstream, which was 100 times larger than upstream of the seamount. Besides, ϵ was strongly modulated by the tide, i.e., strong and weak ϵ occurred at low and high tides, respectively. Using a simplified one-dimensional diffusion model, we demonstrated that turbulent mixing plays a role in shaping the downstream hydrographic structure. The lee wave is likely to create a circumstance favoring a higher growth rate of shear instability, which was examined using linear stability analysis. Mostly, the criterion for the occurrences of shear instability, Richardson number Ri < 0.25, was satisfied downstream. The distribution of Ri fluctuated around a central value near 0.25, which is a typical feature of the status of marginal instability, and this can be interpreted as a cyclic circumstance in a balance between shear forcing and turbulent mixing. Finally, we compared parameterizations of turbulent mixing based on the Ri between previous empirical relationships and our observations. This may help to improve the parameterization of turbulent mixing induced by flow encountering abrupt topography.en
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dc.description.tableofcontentsAcknowledgments i Abstract ii 中文摘要 iii Contents iv List of Figures v Chapter 1 Introduction 1 Chapter 2 Data 5 2.1 Observational data from field experiments 5 2.1.1 Turbulence profiler 5 2.1.2 Shipboard instruments 8 2.2 Shore-based measurements and historical data 10 2.2.1 Tidal sea level from shore-based tidal station 10 2.2.2 Historical shipboard ADCP data 11 2.2.3 Bathymetric data 11 2.2.4 Climatological fields of nutrients 11 Chapter 3 Method 13 3.1 Linear stability analysis 13 3.2 One-dimensional diffusion 16 Chapter 4 Small-scale processes and turbulent mixing 18 4.1 Hotspots of vigorous turbulences off the east coast of Taiwan 18 4.2 Small-scale features captured in observations 20 4.2.1 Enhanced shear layer downstream 20 4.2.2 Lee waves at the immediate lee 25 4.2.3 The relation between Kelvin-Helmholtz instability and lee waves 27 4.3 Vertical turbulent mixing 30 4.3.1 T-S Modifications 30 4.3.2 Possible impacts on the local environment 33 Chapter 5 Spatial and temporal variations of turbulences 35 5.1 Spatial variations 36 5.2 Temporal variations 37 5.3 Marginally unstable state of the shear instability 42 5.4 Parameterization of eddy diffusivity based on Richardson number 43 Chapter 6 Conclusions and discussions 47 References 51
dc.language.isoen
dc.subject黑潮zh_TW
dc.subject紊流混合zh_TW
dc.subject流與地形交互作用zh_TW
dc.subject切變不穩定zh_TW
dc.subject背向波zh_TW
dc.subjectflow-topography interactionen
dc.subjectshear instabilityen
dc.subjectlee waveen
dc.subjectturbulent mixingen
dc.subjectKuroshioen
dc.title黑潮流經海底山所引發之紊流混合及其時空變異zh_TW
dc.titleSpatial and temporal variations of turbulent mixing along the Kuroshio over a seamounten
dc.typeThesis
dc.date.schoolyear110-2
dc.description.degree碩士
dc.contributor.oralexamcommittee詹森(Sen Jan),楊穎堅(Yiing Jang Yang),陳佳琳(Jia-Lin Chen),鄭宇昕(Yu-Hsin Cheng)
dc.subject.keyword流與地形交互作用,黑潮,紊流混合,背向波,切變不穩定,zh_TW
dc.subject.keywordflow-topography interaction,Kuroshio,turbulent mixing,lee wave,shear instability,en
dc.relation.page54
dc.identifier.doi10.6342/NTU202202652
dc.rights.note同意授權(全球公開)
dc.date.accepted2022-08-26
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept海洋研究所zh_TW
dc.date.embargo-lift2027-08-25-
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