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http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/47674完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 童慶斌 | |
| dc.contributor.author | Li-Hsin Chuang | en |
| dc.contributor.author | 莊立昕 | zh_TW |
| dc.date.accessioned | 2021-06-15T06:11:58Z | - |
| dc.date.available | 2012-08-16 | |
| dc.date.copyright | 2010-08-16 | |
| dc.date.issued | 2010 | |
| dc.date.submitted | 2010-08-13 | |
| dc.identifier.citation | 1. 顏本琦、徐享崑、郭振泰,「水資源風險與可靠度分析簡介」,台灣水利,Vol.40, No. 4, pp. 1-11 (1992) 。
2. 黃金山,「台灣水庫規劃缺水忍耐標準之探討」,第三屆水利工程研討會論文集,pp.51-64(1986)。 3. 恩洋工程顧問股份有限公司,「頭前溪流域汙染整治規劃」,新竹縣環境保護局,1995。 4. 廖述良、陳秋楊、廖朝軒、楊益嘉,「水資源承載容量分析與評估(II)-區域水資源承載力可靠度分析」,第十屆環境規劃與管理研討會論文集,第59-65頁,台中,1997。 5. 陳慶和,「河川流域水管理決策理論與決策支援系統之發展」,博士論文,國立中央大學環境工程研究所,1997。 6. 蕭政宗, 「單一水庫系統缺水特性之探討」,台灣水利,第47卷,第2期, June 1999。 7. 陳亭玉,「河川流域水土資源承載力與永續力評量模式之發展」,國立中央大學環境工程研究所碩士論文,2000。 8. 詹麗梅,「區域供水系統系統動力模型建立與策略評估 - 以大基隆供水區為例」, 國立台灣海洋大學河海工程研究所碩士論文,2001。 9. 溫漢章,「利用合成流量進行水資源系統分析」,國立台灣大學土木工程研究所碩士論文,2001。 10. 吳國銘,「農業水資源有效利用之研究-以新竹水利會竹東圳灌區為例」,國立台灣大學農業工程研究所碩士論文,2000。 11. 連宛渝,「氣候變遷對台灣水稻灌溉需水量及潛能產量之影響」,國立台灣大學農業工程研究所碩士論文,2000。 12. 行政院環保署,「氣候變化綱要公約國家通訊衝擊調適資料建制─氣候、水文、生態部分(一) 」,行政院環保署,2000。 13. 陳鵬旭,「新竹地區供水系統動力模式與供水評量系統之建構」,國立台灣海洋大學河海工程學系碩士論文,2002。 14. 陳明業,「淡水河流域水資源系統動力模式與永續管理策略之研究」,國立台灣大學生物環境系統工程學研究所碩士論文,2002。 15. 許大偉、沈潔瑩、葉彩雄,「香港天文台區域氣候模式及其季度雨量預測的驗證」,第18屆港澳氣象科技研討會,537,中國,香港,2004。 16. 林哲暐,「桃園地區乾旱時期供水風險之研究」,自來水會刊第26卷第一期31~40頁,2005。 17. 陳思瑋,「淡水河流域水資源永續性評估暨管理之研究」,國立台灣大學生物環境系統工程學研究所碩士論文,2005。 18. 王宗男,「水庫容量風險性設計準則比較探討」,國立成功大學水利與海洋工程研究所碩士論文,2006 19. 陳增壽、康瑞林、林俊男,「作物生長模式推估缺水敏感參數之研究」,農業工程學報,第52卷,第2期,2006 20. 經濟部水利署,「流域別用水量統計分析研究」,經濟部水利署,2007。 21. 經濟部水利署,「區域水資源經理策略擬定之研究」,經濟部水利署,2008。 22. 經濟部水利署,「頭前溪流域水資源開發個案工程初步規劃-新竹地區水資源供需檢討」,經濟部水利署水利規劃試驗所,2008。 23. 台灣省自來水事業股份有限公司,「台灣省自來水事業統計年報」,台灣省自來水事業股份有限公司,第二十四期~三十期,2001~2008。 24. Barbier, E. B., Joanne, C. B. and Folke, C., “Valuing Environmental Functions: Tropical Wetlands.” Paradise Lost: The Ecological Economics of Biodiversity. pp.267, 1994. 25. Boyer, C., Change, D., Chartier, I., Roy, A. G., “Impact of climate change on the hydrology of St. Lawrence tributaries.”Journal of Hydrology, v384, pp.65-83, 2010. 26. Catton, W. “Carrying capacity and the limits to freedom.” Paper prepared for Social Ecology Session 1, XI World Congress of Sociology. New Delhi, India.1986. 27. Cancelliere, A., Ancarani, A., and Rossi, G., “Susceptibility of Water Supply Reservoirs to Drought Conditions.” Journal of Hydrologic Engineering, v 3, n 2, pp. 140-148, 1998. 28. Chakraborty, Arindam and Krishnamurti, T.N., “Improved seasonal climate forecasts of the south Asian summer monsoon using a suite of 13 coupled ocean-atmosphere models”, Monthly Weather Review, Vol. 134(6), pp. 1697-1721, 2006. 29. Chiew, F. H. S., Teng, J., vaze, J., Kirono, D. G. C., “Influence of global climate model selection on runoff impact assessment.”Journal of Hydrology, v 379, pp.172-180, 2010. 30. Feng, L. H., Zhang, X. C. and Luo, G. Y., “Application of System Dynamics in Analyzing the Carrying Capacity of Water Resources in Yiwu City, China.” Mathematics and Computers in Simulation, Vol.79, pp.269-278, 2008. 31. Feng, L.H., Huang, C. F., “A Risk Assessment Model of Water Shortage Based on Information Diffusion Technology and its Application in Analyzing Carrying Capacity of Water Resources.” Water Resources Management, Vol.22, pp.621-633, 2008. 32. Garen, D. C., “Revised surface-water supply index for western United States”, Journal of Water Resources Planning and Management, v 119, n 4, pp.437-454, 1993. 33. Hanks, R.J, “Model for Predicting Plant Yield as Influenced by Water use.”Agronomy Joural, Vol.66, pp.660-665,1974. 34. Hashimoto, T., Stedinger, J.R., Loucks, D.P., “Reliability, resiliency and vulnerability crireria for water resource system performance evaluation.” WaterResources Research 18 (1), 14–20, 1982. 35. Hsu, S. K., “Shortage index for water-resouces planning in Taiwan.” Water Resources Planning and Management, 121(2), pp.119-131, 1995. 36. Hamlet, A. F., Huppertm D., Lettenmaier, D. P., “Economic value of long-lead streamflow forecasts for Columbia River hydropower”, Journal of Water Resources Planning and Management, Vol.128, No. 2, pp.91-101, 1999. 37. Johnson, F., Sharma, A., “Measurement of GCM Skill in Predicting Variables Relevant for Hydroclimatological Assessments.”American Meteorological Society, Aug. 2009. 38. Kang, B. and Ramirez, A. “Response of Streamflow to Weather Variability under Climate Change in the Colorado Rockies.” Journal of Hydrologic Engineering. Vol12, pp.63-72, 2007 39. Koutsoyiannis, D., Efstratiadis, A., Mamassis, N., Christofides, A., “On the credibility of climate predictions.” Hydrological Sciences Journal. v53(4), 2008. 40. Landman, W.A., Mason, S.J., Tyson, P.D., Tennant, W.J., “Statistical downscaling of GCM simulations to streamflow”, Journal of Hydrology, Vol.252, pp.221-236, 2001. 41. Maurer, E. P. “Uncertainty in hydrologic impacts of climate change in the Sierra Nevada, California under two emissions scenarios.” Climatic Change, Vol. 82, No. 3-4, 309-325, 2007. 42. Perkins, S.E., Pitman, A.J., Holbrook, N.J., McAneney, J., “Evaluation of the AR4 climate models’ simulated daily maximum temperature, minimum temperature and precipitation over Australia using probability density functions. ” Journal of Climate 20, 4356–4376, 2007. 43. Qiang, F., Kachanoski, G., Dong, L. and Zilong, W., “Evaluation of regional water security using water poverty index.” International Journal of Agricultural and Biological Engineering, v 1, n 2, pp.8-14, Dec. 2008. 44. Shafer, Bernie A., Dezman, Lawrence E.,“ Development of a Surface Water Supply Index (SWSI) to Assess the Severity of Drought Conditions in Snowpack Runoff Areas.”Proceedings of The Western Snow Conference, pp.164-175, 1982. 45. Sullivan, Caroline, “Calculating a Water Poverty Index.” World Development Vol. 30(7), pp. 1195-1210, 2002. 46. Suppiah, R., Hennessy, K.J., Whetton, P.H., McInnes, K., Macadam, I., Bathols, J.,Ricketts, J., Page, C.M.,“Australian climate change projections derived fromsimulations performed for the IPCC 4th assessment report. ” Australian Meteorological Magazine 56, 131–152, 2007. 47. Tung, C. P. and Haith, D. A., “Global Warming Effects on New York Streamflows.” Journal of Water Resources Planning and Management, 121(2):216-225, 1995. 48. US Army Corps of Engineers, “Uses of Simulation in River Basin Planning. ” Hydrologic Engineering Center, 1970. 49. Wood, A.W., Leung, L.P., Sridhar, V., Lettenmaier, D.P., “Hydrologic Implications of Dynamical and Statistical Approaches to Downscaling Climate Model Outputs”, Climate Change, Vol.62, Issue1-3, 189-216, 2004. 50. Xu, Z. X.,Takeuchi, K., Ishidaira, H. and X. W. Zhang, “Sustainability Analysis for Yellow River Water Resources Using the System Dynamics Approach. ” Water Resources Management, 16, pp.239-261 , 2002. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/47674 | - |
| dc.description.abstract | 永續發展為在不超過環境承載力下,可持續滿足現在與下一世代之需求,本研究目的為推求短期(西元2010-2039年)受氣候變遷條件影響下水資源系統能負荷的供水承載力,確保社會經濟發展與規劃不會超過供水承載力。本研究採用缺水指數SI (Shortage Index)、缺水百分率日數DPD指標 (Deficit Percent Day Index)和農業供水指標AWS (Agricultural Water Supply Index)等做為水資源系統評估基準,並考量缺水容忍度、水文條件、以及水利設施,建立供水承載力推估流程。
本研究以系統動力學軟體Vensim建立頭前溪水資源系統動力模式,以模擬研究區域內水資源使用的情形。再利用IPCC所提供大氣環流模式輸出資料,模擬頭前溪流域在氣候變遷影響下可能河川流量變化情形,並依據供水承載力推估流程分析氣候變遷下頭前溪流域供水承載力變化情形。結果顯示,未來氣候變遷影響下,頭前溪流域水資源系統公共用水之供水承載力是呈現下降的情形;而農業供水承載力分析結果顯示,未來因為枯水期流量減少、豐水期流量增加的結果使得一期作農業供水承載力下降、二期作農業供水承載力提升之趨勢。 另外考量頭前溪為川流式灌溉系統,當乾旱發生時對灌溉可供水量影響較以水庫供水灌溉區域大,因此發展季節性預報技術應用於水資源管理。本研究藉由中央氣象局所提供之未來三個月溫度及降雨機率,以蒙地卡羅模擬的方式合成未來可能氣象資料,並進一步模擬其可能河川流量,進而分析未來農業水資源可能遭遇缺水風險,以供水資源調配決策之依據。 | zh_TW |
| dc.description.abstract | Sustainable development aims to meet the needs of present and next generations without exceeding the carrying capacity of environment. The purpose of this study is to assess the carrying capacity of water supply system under climate change and ensure that the social and economic development and planning will not cause the overloading of water supply system in the future. First, an analysis framework for evaluating the carrying capacity of water supply system is established in this study. The framework considers hydrological conditions, tolerance of water shortage and water facilities, and shortage index(SI), deficit percent day index(DPD) and agricultural water supply index(AWS) are applied as criteria to evaluate the water shortage of water supply system. A water supply system dynamics model is established by the Vensim tool for the Touchien watershed. The results indicate that the carrying capacity of the water supply system has a decrease trend under climate change. In addition, the carrying capacity of agricultural water supply will decrease in first growing period due to the reduction of streamflow during dry period, while the carrying capacity will increase in second growing period because the increasing streamflow during wet period under climate change. Finally, the impacts of drought on streamflow irrigation area, such as the Touchien watershed, are more severely than the area irrigated by a reservoir. This study develops a seasonal forecast skill to strengthen water resources management to reduce the impacts. The forecast skill applies seasonal climate information with the lead-time of three months from Central Weather Bureau to estimate the risk of irrigation water shortage. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-15T06:11:58Z (GMT). No. of bitstreams: 1 ntu-99-R97622022-1.pdf: 8263771 bytes, checksum: b5334cc1335a908a3ca36b35043852be (MD5) Previous issue date: 2010 | en |
| dc.description.tableofcontents | 摘要 I
Abstract II 目錄 III 圖目錄 V 表目錄 VIII 第一章、緒論 1.1研究緣起與目的 1 1.2研究內容與架構 3 1.3研究章節與流程 4 第二章、文獻回顧 2.1 氣候變遷對水資源影響 6 2.2 系統動力模式 8 2.3 水資源系統供水能力評估 10 2.4氣候預報與應用 13 第三章、供水承載力推估方法建立 3.1 承載力介紹 14 3.2 供水承載力定義 15 3.3 缺水容忍度訂定 16 3.4 供水承載力推估流程 25 第四章、頭前溪水資源系統動力模式之建構 4.1 研究區域 27 4.2 需水量推估 36 4.3 頭前溪水資源系統動力模式之建立 41 第五章、氣候變遷於河川流量衝擊評估 5.1 氣候變遷情境設立 47 5.2 大氣環流模式挑選 50 5.3 降尺度和氣象資料合成 58 5.4 水文模式 61 5.5 氣候變遷於河川流量衝擊評估 66 第六章、氣候變遷下供水承載力影響 6.1 未來用水量探討 69 6.2 修正DPD指標計算時間 70 6.3 供水承載力分析 72 第七章、發展季節性預報技術於水資源管理 7.1 預報來源介紹 81 7.2 預報準確性分析 84 7.3 應用預報於缺水風險評估 85 第八章、結論與建議 8.1 結論 90 8.1 建議 92 參考文獻 93 | |
| dc.language.iso | zh-TW | |
| dc.subject | 氣候變遷 | zh_TW |
| dc.subject | 供水承載力 | zh_TW |
| dc.subject | 永續發展 | zh_TW |
| dc.subject | 頭前溪 | zh_TW |
| dc.subject | 季節性預報 | zh_TW |
| dc.subject | Sustainable Development | en |
| dc.subject | Seasonal Forecast | en |
| dc.subject | Touchien Watershed | en |
| dc.subject | Carrying Capacity of Water Supply | en |
| dc.subject | Climate Change | en |
| dc.title | 氣候變遷對供水系統承載力影響評估方法之建立 | zh_TW |
| dc.title | Establishment of a Methodology for Evaluating the Carrying Capacity of Water Resource System under Climate Change | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 98-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 李明旭,陳彥璋,林裕彬,胡明哲 | |
| dc.subject.keyword | 永續發展,氣候變遷,供水承載力,頭前溪,季節性預報, | zh_TW |
| dc.subject.keyword | Sustainable Development,Climate Change,Carrying Capacity of Water Supply,Touchien Watershed,Seasonal Forecast, | en |
| dc.relation.page | 108 | |
| dc.rights.note | 有償授權 | |
| dc.date.accepted | 2010-08-13 | |
| dc.contributor.author-college | 生物資源暨農學院 | zh_TW |
| dc.contributor.author-dept | 生物環境系統工程學研究所 | zh_TW |
| 顯示於系所單位: | 生物環境系統工程學系 | |
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