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| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 吳俊傑 | zh_TW |
| dc.contributor.advisor | Chun-Chieh Wu | en |
| dc.contributor.author | 蕭柏智 | zh_TW |
| dc.contributor.author | Bo-Jhih Hsiao | en |
| dc.date.accessioned | 2025-07-29T16:05:17Z | - |
| dc.date.available | 2025-07-30 | - |
| dc.date.copyright | 2025-07-28 | - |
| dc.date.issued | 2025 | - |
| dc.date.submitted | 2025-07-23 | - |
| dc.identifier.citation | Balaguru, K., P. Chang, R. Saravanan, L. R. Leung, Z. Xu, M. Li, and J. S. Hsieh, 2012: Ocean barrier layers' effect on tropical cyclone intensification. Proc. Natl. Acad. Sci. U.S.A., 109, 14343–14347. https://doi.org/10.1073/pnas.1201364109
Bhatia, K., G. Vecchi, H. Murakami, S. Underwood, and J. Kossin, 2018: Projected response of tropical cyclone intensity and intensification in a global climate model. J. Climate, 31, 8281–8303, https://doi.org/10.1175/JCLI-D-17-0898.1. Chandra, A., and S. Kumar, 2021: Sea surface temperature and ocean heat content during tropical cyclones Pam (2015) and Winston (2016) in the Southwest Pacific region. Mon. Wea. Rev., 149, 1173–1187. Chang, K.-F., C.-C. Wu, and K. Ito, 2023: On the rapid weakening of Typhoon Trami (2018): Strong sea surface temperature cooling associated with slow translation speed. Mon. Wea. Rev., 151, 227–251. https://doi.org/10.1175/MWR-D-22-0039.1 Chih, C.-H., and C.-C. Wu, 2020: Exploratory analysis of upper-ocean heat content and sea surface temperature underlying tropical cyclone rapid intensification in the western North Pacific. J. Climate, 33, 1031–1050. https://doi.org/10.1175/JCLI-D-19-0305.1 Chu, P. C., and C. Fan, 2023: Global climatological data of ocean thermohaline parameters derived from WOA18. Sci. Data, 10, Article 408. https://doi.org/10.25921/j3v2-jy50 De Boyer Montégut, C., G. Madec, A. S. Fischer, A. Lazar, and D. Iudicone, 2004: Mixed layer depth over the global ocean: An examination of profile data and a profile-based climatology. J. Geophys. Res., 109, C12003. https://doi.org/10.1029/2004JC002378 Emanuel, K. A., 1986: An air-sea interaction theory for tropical cyclones. Part I: Steady-state maintenance. J. Atmos. Sci., 43, 585–605. https://doi.org/10.1175/1520-0469(1986)043<0585:AASITF>2.0.CO;2 Feng, X. 2024. Translation speed slowdown and poleward migration of western North Pacific tropical cyclones. npj Clim. Atmos. Sci. 7:196. https://doi.org/10.1038/s41612-024-00748-5 Garratt, J. R., 1977: Review of Drag Coefficients over Oceans and Continents. Mon. Wea. Rev., 105, 915–929, https://doi.org/10.1175/1520-0493(1977)105<0915:RODCOO>2.0.CO;2. George, J. V., P. N. Vinayachandran, V. Vijith, V. Thushara, A. A. Nayak, S. M. Pargaonkar, P. Amol, K. Vijaykumar, and A. J. Matthews. 2019. Mechanisms of barrier layer formation and erosion from in situ observations in the Bay of Bengal. J. Phys. Oceanogr. 49(5):1183–1200. https://doi.org/10.1175/JPO-D-18-0204.1. Guo, X., J. P. Kossin, and Z.-M. Tan, 2024: The co-variability of SST and vertical wind shear on the variability of tropical cyclone intensity change in the Northern Hemisphere. Climate Dyn., 62, 2581–2594. https://doi.org/10.1007/s00382-023-07049-2 Hlywiak, J., and D. S. Nolan, 2019: The influence of oceanic barrier layers on tropical cyclone intensity as determined through idealized, coupled numerical simulations. J. Phys. Oceanogr., 49, 1723–1745. https://doi.org/10.1175/JPO-D-18-0267.1 Kara, A. B., P. A. Rochford, and H. E. Hurlburt, 2000: Mixed layer depth variability and barrier layer formation over the North Pacific Ocean. J. Geophys. Res.: Oceans, 105, 16783–16801. https://doi.org/10.1029/2000JC900071 Leroux, M.-D., M. Plu, D. Barbary, F. Roux, and P. Arbogast, 2013: Dynamical and physical processes leading to tropical cyclone intensification under upper-level trough forcing. J. Atmos. Sci., 70, 2547–2565, https://doi.org/10.1175/JAS-D-12-0293.1 Li, G., Zhang, Y., Xiao, J., Song, X., Abraham, J., Cheng, L., & Zhu, J. (2019). Examining the salinity change in the upper Pacific Ocean during the Argo period. Climate Dynamics, 53(11-12), 6055-6074. https://doi.org/10.1007/s00382-019-04912-z Lin, I.-I., W.-T. Liu, C.-C. Wu, G.-T. F. Wong, C. Hu, Z. Chen, W.-D. Liang, Y. Yang, and K.-K. Liu, 2003: New evidence for enhanced ocean primary production triggered by a tropical cyclone. Geophys. Res. Lett., 30, 1718. https://doi.org/10.1029/2003GL017141 ——, G.-J. Goni, J.-A. Knaff, C. Forbes, and M.-M. Ali, 2013: Ocean heat content for tropical cyclone intensity forecasting and its impact on storm surge. Natural Hazards, 66, 1481–1500. https://doi.org/10.1007/s11069-012-0214-5 Lukas, R., and E. Lindstrom, 1991: The mixed layer of the western equatorial Pacific Ocean. J. Geophys. Res.: Oceans, 96, 3343–3357. https://doi.org/10.1029/90JC01957 McTaggart‑Cowan, R., L. F. Bosart, J. R. Gyakum, and E. H. Atallah. 2007. Hurricane Katrina (2005). Part I: Complex life cycle of an intense tropical cyclone. Mon. Wea. Rev. 135(12):3905–3926. https://doi.org/10.1175/2007MWR1875.1. Price, J. F., 1981: Upper ocean response to a hurricane. J. Phys. Oceanogr., 11, 153–175. https://doi.org/10.1175/1520-0485(1981)011<0153:UORTAH>2.0.CO;2 ——, 1984: The oceanic response to a hurricane. J. Phys. Oceanogr., 14, 949–970. ——, T.-B. Sanford, and G.-Z. Forristall, 1994: Forced stage response to a moving hurricane. J. Phys. Oceanogr., 24, 233–260. https://doi.org/10.1175/1520-0485(1994)024<0233:FSRTAM>2.0.CO;2 Reul, N., Quilfen, Y., Chapron, B., Fournier, S., Kudryavtsev, V., and Sabia, R., 2014: Multisensor observations of the Amazon-Orinoco river plume interactions with hurricanes. J. Geophys. Res. Oceans, 119, 8271–8295, https://doi.org/10.1002/2014JC010107 Rios-Berrios, R., and R.-D. Torn, 2017: Climatological analysis of tropical cyclone intensity changes under moderate vertical wind shear. Mon. Wea. Rev., 145, 1717–1738. https://doi.org/10.1175/MWR-D-16-0350.1 ——, P. M. Finocchio, J. J. Alland, X. Chen, M. S. Fischer, S. N. Stevenson, and D. Tao. 2024. A review of the interactions between tropical cyclones and environmental vertical wind shear. J. Atmos. Sci. 81(4):713–741. https://doi.org/10.1175/JAS-D-23-0022.1 Shay, L. K., R. L. Elsberry, and P. G. Black. 1989. Vertical structure of the ocean current response to a hurricane. J. Phys. Oceanogr. 19(5):649–669. https://doi.org/10.1175/1520-0485(1989)019<0649:VSOTOC>2.0.CO;2 ——, and J.-K. Brewster, 2010: Oceanic heat content variability in the eastern Pacific Ocean for hurricane intensity forecasting. Mon. Wea. Rev., 138, 2110–2125. https://doi.org/10.1175/2010MWR3189.1 Sprintall, J., and M. Tomczak, 1992: Evidence of the barrier layer in the surface layer of the tropics. J. Geophys. Res., 97, 7305–7316. Stewart, R. H. (2004), Introduction to physical oceanography, Department of Oceanography, Texas A & M University. https://oaktrust.library.tamu.edu/items/254c2944-dc14-445e-adde-663c63b4cc2e Tao, D., and F. Zhang, 2019: Evolution of dynamic and thermodynamic structures before and during rapid intensification of tropical cyclones: Sensitivity to vertical wind shear. Mon. Wea. Rev., 147, 1171–1191, https://doi.org/10.1175/MWR-D-18-0173.1. Vialard, J., and Delecluse, P., 1998: An OGCM Study for the TOGA Decade. Part II: Barrier-Layer Formation and Variability. J. Phys. Oceanogr., 28, 1089–1106, https://doi.org/10.1175/1520-0485(1998)028<1089:AOSFTT>2.0.CO;2 Vincent, E. M., M. Lengaigne, J. Vialard, G. Madec, N. C. Jourdain, and S. Masson, 2012: Assessing the oceanic control on the amplitude of sea surface cooling induced by tropical cyclones. J. Geophys. Res., 117, C05023, https://doi.org/10.1029/2011JC007705 Wang, G., B. Zhao, F. Qiao, and C. Zhao. 2018. Rapid intensification of Super Typhoon Haiyan: The important role of a warm‐core ocean eddy. Ocean Dyn. 68:1649–1661. https://doi.org/10.1007/s10236-018-1217-x. Wei, J., Liu, X., and Jiang, G., 2018: Parameterizing sea surface temperature cooling induced by tropical cyclones using a multivariate linear regression model. Acta Oceanologica Sinica, 37, 1–10, https://doi.org/10.1007/s13131-018-1153-0 Wu, C.-C., C.-Y. Lee, and I.-I. Lin, 2007: The effect of the ocean eddy on tropical cyclone intensity. J. Atmos. Sci., 64, 3562–3578. https://doi.org/10.1175/JAS4051.1 ——, W.-T. Tu, I.-F. Pun, I.-I. Lin, and M.-S. Peng, 2016: Tropical cyclone-ocean interaction in Typhoon Megi (2010)—A synergy study based on ITOP observations and atmosphere-ocean coupled model simulations. J. Geophys. Res.: Atmos., 121, 153–167. https://doi.org/10.1002/2015JD024198 Xu, J., and Y. Wang, 2018: Dependence of tropical cyclone intensification rate on sea surface temperature, storm intensity, and size in the western North Pacific. Wea. Forecasting, 33, 523–537, https://doi.org/10.1175/WAF-D-17-0095.1. Yablonsky, R. M., and I. Ginis, 2013: Impact of a warm ocean eddy’s circulation on hurricane-induced sea surface cooling with implications for hurricane intensity. Mon. Wea. Rev., 141, 997–1021, https://doi.org/10.1175/MWR-D-12-00248.1. Yan, Y., L. Li, and C. Wang, 2017: The effects of oceanic barrier layer on the upper ocean response to tropical cyclones. J. Geophys. Res.: Oceans, 122, 4567–4584. https://doi.org/10.1002/2017JC012694 You, Y. 1998. Rain‐formed barrier layer of the western equatorial Pacific warm pool: A case study. J. Geophys. Res. Oceans 103(C3):5361–5378. https://doi.org/10.1029/97JC03421. Zhang, H., 2023: Modulation of upper ocean vertical temperature structure and heat content by a fast-moving tropical cyclone. J. Phys. Oceanogr., 53, 493–508. Zhang, Y., Han, K., Sun, Y., Lin, Y., Zhai, P., Guo, X., and Zhong, W. (2024). Impact of ocean mixed layer depth on tropical cyclone characteristics: A numerical investigation. Front. Mar. Sci. 11, 1395492. https://doi.org/10.3389/fmars.2024.1395492 | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/98112 | - |
| dc.description.abstract | 海洋結構的特性在颱風的演化中扮演了至關重要的角色。颱風施加的強風應力通過流切逸入和垂直混合作用將冷水從海洋下層拉出,進而降低海表面溫度,並減少颱風的最大潛力和當前強度,形成負反饋現象。垂直混合作用對颱風強度的影響越來越受到關注,尤其是颱風形成前的海洋剖面所扮演的角色。屏障層可以顯著增強海洋的穩定性,進而抑制海表面溫度的降溫效應,導致上層海洋熱含量的消耗。儘管一些研究已著重探討屏障層效應與颱風強度的關係,但深入探究屏障層與不同颱風強度的相關性仍然至關重要。因此本研究旨在進一步探索屏障層對颱風發展的影響。
本研究的目標是探討不同厚度的屏障層對颱風的影響,以及屏障層在不同颱風階段中對海洋結構和颱風強度的影響。我們使用耦合氣象研究與預報模型(WRF)和三維海洋模型 Price-Weller-Pinkel(3DPWP)進行理想化模擬,以簡化環境條件並聚焦於海氣交互作用和海洋變化。我們設置了具有四種不同屏障層厚度的初始海洋剖面,以分析這些模擬中颱風強度和海洋剖面變化的差異。 以上理想化模擬的結果顯示,屏障層對颱風的影響隨颱風強度而異。在環境條件良好且颱風已經較強的情況下,屏障層對颱風的發展影響較小。然而在不利條件下,如移動速度慢、輻射輸入減少以及中度或以上垂直風切的情況下,屏障層可能顯著影響颱風強度。未受擾動的屏障層因吸收短波輻射而顯示出變暖信號,且此效應隨屏障層厚度增加而增強。該過程強化了從海洋到颱風的表面熱通量傳遞,導致颱風增強。另一方面,對於弱颱風,混合層的降溫更加明顯且持久,削弱了颱風對於海表面熱通量的吸收作用,提供不利於颱風增強的條件。 | zh_TW |
| dc.description.abstract | The properties of ocean structure play a crucial role in the evolution of tropical cyclones (TCs). Strong wind stress exerted by TCs pulls cold water from the ocean underneath through entrainment and vertical mixing, cools down the SST and further decreases the maximum potential and current intensity of TCs, resulting in negative feedback. The impact of vertical mixing, which affects TC intensity, has gathered increasing attention, especially regarding the role of pre-TC ocean profile. Barrier layer (BL) can significantly enhance stability in the ocean column and ultimately suppress the SST-cooling effect, leading to the dissipation of upper ocean heat content. Although several studies have focused on the relationship between the BL effect and TC intensity, a comprehensive investigation into the correlation between the BL and varying TC intensities remains crucial. This study seeks to further explore the impact of BLs on the development of TCs.
The objectives of this study are to investigate the effect of BLs with different thicknesses on TCs and the influence of the BL on ocean structure and TC intensity during different TC phases. We use the Weather Research and Forecasting (WRF) model coupled with the 3D Price-Weller-Pinkel (3DPWP) ocean model to conduct idealized simulations to simplify environmental conditions and to focus on the examination of the air-sea interaction and ocean variation. Different initial ocean profiles with four BL thicknesses are set to investigate the differences in TC intensity and changes in ocean profiles among these simulations. Results from the above idealized simulations indicate that the influence of BLs on TCs varies with TC intensity. BLs have a minimal impact on TC development when environmental conditions are favorable and TCs are already strong. However, under unfavorable conditions—such as slow movement, reduced radiation input, and moderate or strong vertical wind shear—BLs can significantly influence the TC intensity. An unperturbed BL shows a warming signal due to the absorption of shortwave radiation, with this effect intensifying as BL thickness increases. This process enhances surface heat flux transfer from the ocean to the TCs, leading to accelerated intensification. On the other hand, for weak TCs, the cooling in the mixed layer becomes more pronounced and prolonged, reducing surface heat flux uptake and resulting in more unfavorable conditions for intensification. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2025-07-29T16:05:17Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2025-07-29T16:05:17Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 致謝 I
摘要 II Abstract III Table of contents V List of Tables VII List of Figures VIII Chapter 1 Introduction 1 1.1 The factors associated with tropical cyclone intensification 1 1.2 SST-cooling effect 2 1.3 Upper Ocean heat content (UOHC) 5 1.4 Ocean properties 6 1.5 Motivations and the scientific objectives 9 Chapter 2 Data and Methodology 10 2.1 Model description 10 2.2 WRF model initial configurations 10 2.3 Ocean structure initial settings 13 2.4 Definition of the ocean layers 15 Chapter 3 Results --- TCs evolution and corresponding SST variation 17 3.1 Evolution of TC intensity 17 3.2 The variation of SST and SHF 20 Chapter 4 Results --- Comparative analysis in ocean properties 22 4.1 Temperature change in the ocean column following TC center 22 4.2 Temperature change in the ocean column in fixed location 26 4.3 Temperature difference between BL thickness 30 4.4 Evolution of upper ocean heat content (UOHC) 32 4.5 Evolution of equivalent upper ocean heat content (UOHCe) 36 4.6 Heat budget analysis 41 Chapter 5 Conclusions 45 5.1 Discussions 45 5.2 Conclusions 48 5.3 Future works 51 References 54 Tables 60 Figures 61 | - |
| dc.language.iso | en | - |
| dc.subject | 熱帶氣旋的強度演變 | zh_TW |
| dc.subject | SST 冷卻效應 | zh_TW |
| dc.subject | 混合層 | zh_TW |
| dc.subject | 屏障層 | zh_TW |
| dc.subject | 海洋鹽度分層 | zh_TW |
| dc.subject | 垂直混合作用 | zh_TW |
| dc.subject | 上層海洋熱含量 | zh_TW |
| dc.subject | Ocean salinity stratification | en |
| dc.subject | Upper ocean heat content | en |
| dc.subject | Vertical mixing | en |
| dc.subject | Mixed layer | en |
| dc.subject | Tropical cyclone intensity evolution | en |
| dc.subject | SST cooling effect | en |
| dc.subject | Barrier layer | en |
| dc.title | 海洋屏障層對颱風發展的影響之探討 | zh_TW |
| dc.title | Investigating the role of Ocean Barrier Layer on Tropical Cyclone Evolution | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 113-2 | - |
| dc.description.degree | 碩士 | - |
| dc.contributor.oralexamcommittee | 連國淵;潘任飛 | zh_TW |
| dc.contributor.oralexamcommittee | Guo-Yuan Lien;Iam-Fei Pun | en |
| dc.subject.keyword | 熱帶氣旋的強度演變,SST 冷卻效應,混合層,屏障層,海洋鹽度分層,垂直混合作用,上層海洋熱含量, | zh_TW |
| dc.subject.keyword | Tropical cyclone intensity evolution,SST cooling effect,Mixed layer,Barrier layer,Ocean salinity stratification,Vertical mixing,Upper ocean heat content, | en |
| dc.relation.page | 88 | - |
| dc.identifier.doi | 10.6342/NTU202502292 | - |
| dc.rights.note | 同意授權(全球公開) | - |
| dc.date.accepted | 2025-07-25 | - |
| dc.contributor.author-college | 理學院 | - |
| dc.contributor.author-dept | 大氣科學系 | - |
| dc.date.embargo-lift | 2025-07-30 | - |
| 顯示於系所單位: | 大氣科學系 | |
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