研究生: |
劉品誼 Liu, Pin-Yi |
---|---|
論文名稱: |
東亞地區冬季降水特性的年際變化 El Nin ̃o Impacts on the Interannual Variations of the East Asian winter Precipitation Characteristics |
指導教授: |
曾莉珊
Tseng, Li-Shan 周佳 Chou, Chia |
學位類別: |
碩士 Master |
系所名稱: |
地球科學系 Department of Earth Sciences |
論文出版年: | 2015 |
畢業學年度: | 103 |
語文別: | 中文 |
論文頁數: | 90 |
中文關鍵詞: | 聖嬰事件 、降水頻率 、降水強度 、水氣收支方程式 |
論文種類: | 學術論文 |
相關次數: | 點閱:123 下載:28 |
分享至: |
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報 |
過去對東亞地區冬季與聖嬰現象(El Niño)的關係的研究中多半針對東亞地區平均降水量與大尺度環流的相關性分析,鮮少探討降水發生頻率與降水強度;然而瞬間的豪大雨有機會造成重大災情,因此在降水的研究上已不能僅局限於總降水量或平均降水量,了解降水強度與降水發生頻率的變化有助於我們提早應變可能發生的災害。
本文主要研究1998-2012年聖嬰事件之冬季期間,位於東亞地區的東北西南走向之正降水距平區的降水特性(降水發生頻率、降水強度),並利用水氣收支方程檢驗造成降水特性改變的物理機制。在降水特性的部分,觀測資料TRMM與再分析資料CFSR皆一致地顯示,聖嬰事件發生時降水頻率之相對變化率在強降水事件(≥10 mm/hr)增加,弱降水事件(0-1 mm/hr)則減少;而降水強度方面,所有有效降水事件之降水強度皆增強,尤其是強降水(第91至第100百分位數)與極端降水(第100百分位數)事件。
影響降水特性的主要因素有水氣(大氣熱力過程)與垂直運動(大氣動力過程),為了進一步瞭解造成降水特性改變的物理機制,我們利用水氣收支方程檢驗造成其變化的原因。結果顯示,對強降水事件之降水頻率而言,垂直運動(動力作用)的影響相較於水氣(熱力作用)較顯著;而在降水強度的部分,強降水與極端降水事件的變化主要來自水氣垂直傳輸的貢獻,水氣水平傳輸則為次要水氣貢獻,接著再進一步分析發現水氣垂直傳輸的異常輻合主要是受到垂直速度改變(動力分量)造成的影響。因此對強降水與極端降水事件而言,不論是降水頻率或降水強度,主要皆是受到上升運動的發生次數增加以及上升運動增強造成的結果;而弱降水事件則應屬於非對流系統影響,可能與層狀降水較有關係。
林伯東,2011:東亞地區降水特性的季節變化。臺北,國立臺灣師範大學地球科學系碩士論文。
Ashok, K., Behera, S. K., Rao, S. A., Weng, H. and Yamagata, T., 2007: El Nin ̃o Modoki and its possible teleconnection. J. Geophys. Res., 112, C11007
Chan, J. C. L., and C. Y. Li, 2004: The East Asia winter monsoon. East Asian Monsoon, C. P. Chang, Ed., World Scientific Publishing Co. Pet. Ltd., 54-106.
Chou, C., 2004: Establishment of the low-level wind anomalies over the western North Pacific during ENSO development. J Climate, 17, 2195-2212.
Chou, C., Huang L. F., Tu J. Y., Tseng L. H., 2009a: El Niño impacts on precipitation in the western North Pacific-East Asian sector. J Climate, 22, 2039–2057
Chou, C., L.-F. Huang, L. Tseng, J.-Y. Tu, and P.-H. Tan, 2009b: Annual cycle of rainfall in the western North Pacific and East Asian sector. J. Climate, 22, 2073–2094.
Chou, C., C.-A. Chen, P.-H. Tan, and K. T. Chen, 2012: Mechanisms for global warming impacts on precipitation frequency and intensity. J. Climate, 25, 3291–3306.
Emori, S., and S. J. Brown, 2005: Dynamic and thermodynamic changes in mean and extreme precipitation under changed climate. Geophys Res Lett, 32, L17706.
Feng, J., L. Wang, W. Chen, S. K. Fong, and K. C. Leong, 2010: Different impacts of two types of Pacific Ocean warming on Southeast Asian rainfall during boreal winter. J. Geophys. Res., 115, D24122.
Feng, J., and J. Li, 2011: Influence of El Niño Modoki on spring rainfall over South China. J. Geophys. Res., 116, D13102
Held, I. M., and B. J. Soden, 2006: Robust responses of the hydrological cycle to global warming. J Climate, 19, 5686-5699.
Kenyon, J., and G. C. Hegerl, 2010: Influence of modes of climate variability on global precipitation extremes. J. Climate, 23, 6248–6262.
Kao, H. Y. and Yu, J. Y., 2009: Contrasting Eastern-Pacific and Central-Pacific types of ENSO. J. Climate, 22, 615–632.
Kug, J. S., Jin, F. F. and An, S. I., 2009: Two types of El Nin ̃o events: cold tongue El Nin ̃o and warm pool El Nin ̃o. J. Climate, 22, 1499–1515.
Lau, K. M., and H. T. Wu, 2007: Detecting trends in tropical rainfall characteristics 1979-2003. Int J Climatol, 27, 979-988.
Li W., Zhai P., Cai J. H., 2010: Research on the Relationship of ENSO and the Frequency of Extreme Precipitation Events in China. Advances in Climate Change Research, 2, 101–107.
Li, X. Z., Zhou, W., Chen, D. L., Li, C. Y., Song, J., 2014: Water Vapor Transport and Moisture Budget over Eastern China: Remote Forcing from the Two Types of El Niño. J. Climate, 27, 8778-8792.
Sun, Y., S. Solomon, A. Dai, and R. W. Portmann, 2007: How often will it rain? J. Climate, 20, 4801-4818.
Trenberth, K. E., 1997: The Definition of El Nin ̃o. Bull. Amer. Meteor. Soc., 78, 2771-2777
Trenberth, K. E., A. Dai, R. M. Rasmussen, and D.B. Parsons, 2003: The changing character of precipitation. Bull. Am. Meteorol. Soc., 84, 1205-1217.
Trenberth, K. E., and coauthors, 2007: in Climate Change 2007, The Physical Science Basis Chapter 3, eds Solomon S. et al. (Cambridge Univ. Press, Cambridge) pp235-336.
Wang, B., R. Wu, and X. Fu, 2000: Pacific-East Asian teleconnection: How does ENSO affect East Asian climate? J. Climate, 13, 1517-1536.
Wang, L., and Chen W., 2009, How well do the exiting indices measure the strength of the East Asian winter monsoon? Adv. Atmos. Sci., doi: 10.1007/s00376-009-9094-3, in press.
Wu, Z.-Z. Hu, and B. P. Kirtman, 2003: Evolution of ENSO related rainfall anomalies in east Asia. J. Climate, 16, 3742–3758.
Yu J.-Y., Zou Y., Kim S. T. and Lee T., 2012: The changing impact of El Niño on US winter temperatures Geophys. Res. Lett., 39, L15702.
Yuan Y., Li C. Y., Yang S., 2012: Decadal Anomalies of Winter Precipitation over Southern China in Association with El Nin ̃o and La Nin ̃a. JOURNAL OF METEOROLOGICAL RESEARCH, 28,91-110.
Zhang, R. H., Sumi A., 2002: Moisture circulation over East Asia during El Nin ̃o episode in Northern winter, spring and autumn. J. Meteorol. Soc. Japan, 80, 213–227.
Zhang L., Fraedrich, K., Zhu X., Sielmann F., Zhi X., 2015: Interannual variability of winter precipitation in Southeast China. THEORETICAL AND APPLIED CLIMATOLOGY, 119, 229-238.
Zhou L. T., Wu R. G., 2010: Respective impacts of the East Asian winter monsoon and ENSO on winter precipitation in China. J. Geophys. Res., 115, D02107.