請用此 Handle URI 來引用此文件:
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| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 許少瑜 | zh_TW |
| dc.contributor.advisor | Shao-Yiu Hsu | en |
| dc.contributor.author | 廖瓔棋 | zh_TW |
| dc.contributor.author | Ying-Chi Liao | en |
| dc.date.accessioned | 2026-02-04T16:18:01Z | - |
| dc.date.available | 2026-02-05 | - |
| dc.date.copyright | 2026-02-04 | - |
| dc.date.issued | 2026 | - |
| dc.date.submitted | 2026-01-28 | - |
| dc.identifier.citation | <2024 年中華民國國家溫室氣體排放清冊報告.pdf>.
Carrijo, D. R., Lundy, M. E., & Linquist, B. A. (2017). Rice yields and water use under alternate wetting and drying irrigation: A meta-analysis. Field Crops Research, 203, 173-180. Chidthaisong, A., Cha-Un, N., Rossopa, B., Buddaboon, C., Kunuthai, C., Sriphirom, P., Towprayoon, S., Tokida, T., Padre, A. T., & Minamikawa, K. (2018). Evaluating the effects of alternate wetting and drying (AWD) on methane and nitrous oxide emissions from a paddy field in Thailand. Soil Science and Plant Nutrition, 64(1), 31-38. Fageria, N. (2007). Yield physiology of rice. Journal of plant nutrition, 30(6), 843-879. Fox, R. W. (1830). On the electro-magnetic properties of metalliferous veins in the mines of Cornwall. Philosophical Transactions of the Royal Society of London, 399-414. Gaihre, Y. K., Bible, W. D., Singh, U., Sanabria, J., & Baral, K. R. (2023). Mitigation of Nitrous Oxide Emissions from Rice–Wheat Cropping Systems with Sub-Surface Application of Nitrogen Fertilizer and Water-Saving Irrigation. Sustainability, 15(9), 7530. Grafton, R. Q., Williams, J., Perry, C. J., Molle, F., Ringler, C., Steduto, P., Udall, B., Wheeler, S. A., Wang, Y., & Garrick, D. (2018). The paradox of irrigation efficiency. Science, 361(6404), 748-750. Green, S. M. (2013). Ebullition of methane from rice paddies: the importance of furthering understanding. Plant and soil, 370(1), 31-34. Haque, M. M., Biswas, J. C., Maniruzzaman, M., Hossain, M., & Islam, M. (2021). Water management and soil amendment for reducing emission factor and global warming potential but improving rice yield. Paddy and water environment, 19, 515-527. Holzapfel-Pschorn, A., Conrad, R., & Seiler, W. (1986). Effects of vegetation on the emission of methane from submerged paddy soil. Plant and soil, 92(2), 223-233. Ishfaq, M., Farooq, M., Zulfiqar, U., Hussain, S., Akbar, N., Nawaz, A., & Anjum, S. A. (2020). Alternate wetting and drying: A water-saving and ecofriendly rice production system. Agricultural Water Management, 241, 106363. Jiménez, J. d. l. C., & Pedersen, O. (2023). Mitigation of greenhouse gas emissions from rice via manipulation of key root traits. Rice, 16(1), 24. Kouchaki, B. M., Bernhardt-Barry, M. L., Wood, C. M., & Moody, T. (2019). A laboratory investigation of factors influencing the electrical resistivity of different soil types. Geotechnical Testing Journal, 42(4), 829-853. Lampayan, R. M., Rejesus, R. M., Singleton, G. R., & Bouman, B. A. (2015). Adoption and economics of alternate wetting and drying water management for irrigated lowland rice. Field Crops Research, 170, 95-108. Le Mer, J., & Roger, P. (2001). Production, oxidation, emission and consumption of methane by soils: a review. European journal of soil biology, 37(1), 25-50. Loke, M. H. (2004). Tutorial: 2-D and 3-D electrical imaging surveys. Meyer de Stadelhofen, C. (1991). Applications de la géophysique aux recherches d’eau. Paris: Tech. Doc. Lavoisier. Minami, K., & Neue, H.-U. (1994). Rice paddies as a methane source. Climatic change, 27(1), 13-26. Nie, T., Huang, J., Zhang, Z., Chen, P., Li, T., & Dai, C. (2023). The inhibitory effect of a water-saving irrigation regime on CH4 emission in Mollisols under straw incorporation for 5 consecutive years. Agricultural Water Management, 278. https://doi.org/10.1016/j.agwat.2023.108163 Qian, H., Zhu, X., Huang, S., Linquist, B., Kuzyakov, Y., Wassmann, R., Minamikawa, K., Martinez-Eixarch, M., Yan, X., Zhou, F., Sander, B. O., Zhang, W., Shang, Z., Zou, J., Zheng, X., Li, G., Liu, Z., Wang, S., Ding, Y.,…Jiang, Y. (2023). Greenhouse gas emissions and mitigation in rice agriculture. Nature Reviews Earth & Environment, 4(10), 716-732. https://doi.org/10.1038/s43017-023-00482-1 Reynolds, J. M. (2011). An introduction to applied and environmental geophysics. John Wiley & Sons. Samouëlian, A., Cousin, I., Tabbagh, A., Bruand, A., & Richard, G. (2005). Electrical resistivity survey in soil science: a review. Soil and Tillage research, 83(2), 173-193. Seiler, W., Holzapfel-Pschorn, A., Conrad, R., & Scharffe, D. (1983). Methane emission from rice paddies. Journal of Atmospheric Chemistry, 1, 241-268. Setyanto, P., Pramono, A., Adriany, T. A., Susilawati, H. L., Tokida, T., Padre, A. T., & Minamikawa, K. (2018). Alternate wetting and drying reduces methane emission from a rice paddy in Central Java, Indonesia without yield loss. Soil Science and Plant Nutrition, 64(1), 23-30. Sheng, R. T.-C., Huang, Y.-H., Chan, P.-C., Bhat, S. A., Wu, Y.-C., & Huang, N.-F. (2022). Rice growth stage classification via RF-based machine learning and image processing. Agriculture, 12(12), 2137. Van Genuchten, M. T. (1980). A closed‐form equation for predicting the hydraulic conductivity of unsaturated soils. Soil science society of America journal, 44(5), 892-898. Zhao, C., Qiu, R., Zhang, T., Luo, Y., & Agathokleous, E. (2024). Effects of Alternate Wetting and Drying Irrigation on Methane and Nitrous Oxide Emissions From Rice Fields: A Meta‐Analysis. Global Change Biology, 30(12), e17581. Zhuang, Y., Zhang, L., Li, S., Liu, H., Zhai, L., Zhou, F., Ye, Y., Ruan, S., & Wen, W. (2019). Effects and potential of water-saving irrigation for rice production in China. Agricultural Water Management, 217, 374-382. 吳瑞賢, 劉日順, 張聖瑜, 蘇家陞, & 陳佩螢. (2018). 建立水旱作混植區之地表水與地下水聯合灌溉管理模式. 農業工程學報, 64(1), 60-90. 殷祥玲. (2023). 利用田間試驗與模式模擬探討水稻田灌溉策略. 國立臺灣大學生物環境系統工程學系學位論文, 2023, 1-109. 蔡義誌. (2010). 緩坡地三種不同土地利用之土層水力性質與長期的水分分佈. 工程環境會刊(5), 77-91. 賴文龍、郭雅紋. (2015). 水稻栽培管理技術手冊. 交通部中央氣象署農業部農業氣象觀測網監測系統:https://agr.cwa.gov.tw/NAGR/history/station_day 農業部臺東區農業改良場:https://www.ttdares.gov.tw/index.php | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/101502 | - |
| dc.description.abstract | 本研究以桃園區農業改良場有機水稻田作為研究場域,分別採用傳統慣行湛水灌溉(Continuous Flooding, CF)與間歇灌溉(Alternate Wetting and Drying, AWD)管理,探討不同灌溉管理對有機水稻田甲烷排放及地下水補注的影響。研究結果顯示,間歇灌溉可顯著降低甲烷排放,輪作田區全年排放量明顯低於連作田區。然而在一期作中,間歇灌溉並未呈現出節水的效果。透過簡易水平衡計算指出,輪作田區具有較高的滲漏量,可能導致灌溉需求增加。不過整體而言,由於該田區於二期作改種植旱作,大幅減少灌溉用水,使其全年灌溉總量仍低於連作田區。在地下水補注方面,雖然輪作田區於一期作滲漏量較高,但連作田區因全年維持湛水,其年度總滲漏量仍高於輪作田區,推估輪作田區對於整體地下水補注的貢獻可能少於連作田區。另一方面,根據地下水位監測結果可發現,一期作灌溉開始後,田區觀測地下水位明顯上升,並維持至二期作結束才逐漸下降,顯示區域性的灌溉活動對於地下水變化具有即時且顯著的影響。本研究亦使用THMC(Thermal Hydrology Geo-Mechanics Reactive Model)模式模擬該區域灌溉與降雨對於地下水位的影響,結果顯示降雨與灌溉行為對於地下水位有顯著的影響,僅考慮降雨的地下水位雖然會受到降雨產生短期抬升,但在補注灌溉與降雨同時存在之情境可使地下水位呈現緩慢上升的趨勢。本研究結合實際觀測資料與地下水位模擬結果,分析降雨與水稻田灌溉對桃園沿海地下水位的影響,將有助於未來了解執行間歇灌溉對於地下水補注的衝擊。 | zh_TW |
| dc.description.abstract | This study was conducted in organic paddy fields at the Taoyuan District Agricultural Research and Extension Station, where traditional continuous flooding (CF) and alternate wetting and drying (AWD) irrigation practices were implemented to investigate the effects of different irrigation management strategies on methane emissions and groundwater recharge. The results indicate that AWD significantly reduced methane emissions, with the annual emissions from the rotation field being markedly lower than those from the continuously cultivated field. However, during the first rice cropping season, AWD did not demonstrate a water-saving effect. Based on a simplified water balance analysis, the rotation field exhibited higher percolation losses, which likely increased irrigation water demand. Nevertheless, because the rotation field was converted to an upland crop during the second cropping season, irrigation water use was substantially reduced, resulting in a lower annual irrigation volume compared to the continuously cultivated field. With respect to groundwater recharge, although the rotation field showed higher percolation during the first cropping season, the continuously cultivated field maintained flooded conditions throughout the year, leading to a higher annual cumulative percolation. This suggests that the overall contribution of the rotation field to groundwater recharge may be lower than that of the continuously cultivated field. In addition, groundwater level observations revealed a clear rise following the onset of irrigation during the first cropping season, which persisted until the end of the second cropping season before gradually declining. This pattern indicates that regional irrigation activities exert an immediate and pronounced influence on groundwater dynamics. Furthermore, the Thermal Hydrology Geo-Mechanics Reactive Model (THMC) was employed to simulate the impacts of irrigation and rainfall on groundwater levels in the study area. The simulation results demonstrate that both rainfall and irrigation significantly affect groundwater levels. While groundwater levels respond to rainfall events with short-term rises when rainfall alone is considered, scenarios incorporating both irrigation and rainfall lead to a gradual and sustained increase in groundwater levels. By integrating field observations with groundwater modeling, this study provides insights into the combined effects of rainfall and paddy field irrigation on groundwater levels in the coastal area of Taoyuan, contributing to a better understanding of the potential impacts of implementing AWD irrigation on groundwater recharge. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2026-02-04T16:18:01Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2026-02-04T16:18:01Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 口試委員會審定書 #
謝誌 i 中文摘要 ii ABSTRACT iii 目次 v 圖次 viii 表次 xii 第1章 緒論 1 1.1 研究動機 1 1.2 文獻回顧 3 1.2.1 水稻田灌溉方式與甲烷排放機制 3 1.2.2 間歇灌溉對溫室氣體排放之影響 4 1.2.3 水稻田灌溉管理與地下水補注之影響 5 第2章 研究目的與研究架構 8 2.1 研究目的 8 2.2 研究架構 9 第3章 研究方法 11 3.1 試驗場域概述 11 3.2 觀測儀器介紹 12 3.2.1 土壤含水量感測計 12 3.2.2 土壤張力計 13 3.2.3 自動資料收集記錄器 15 3.2.4 田間水位計 15 3.2.5 通量塔 16 3.2.6 觀測井與水位計 17 3.3 地電阻 19 3.3.1 地電阻介紹 19 3.3.2 地電阻施測原理 20 3.4 資料與參數收集 25 3.4.1 土壤粒徑分布 25 3.4.2 保水曲線試驗 29 3.5 微量氣體分析儀 33 3.6 田間管理與灌溉模式介紹 34 3.7 水平衡 37 3.7.1 氣象資料 38 3.8 THMC地下水模式 40 3.8.1 模式理論 40 3.8.2 THMC輸入參數 45 第4章 研究結果 47 4.1 有機水稻田土壤參數試驗結果 47 4.1.1 土壤粒徑分佈 47 4.1.2 保水曲線 50 4.2 產量與灌溉水量 52 4.2.1 期作產量 52 4.2.2 灌溉水量 54 4.3 地下水位變化 62 4.3.1 地下水 62 4.3.2 地電阻 66 4.3.3 地電阻與土壤含水量關係 73 4.4 溫室氣體排放量 75 4.5 水稻田水文收支 80 4.6 THMC模擬結果 84 第5章 結論與建議 89 5.1 結論 89 5.2 建議 90 參考文獻 91 | - |
| dc.language.iso | zh_TW | - |
| dc.subject | 間歇灌溉 | - |
| dc.subject | 甲烷 | - |
| dc.subject | 水平衡 | - |
| dc.subject | 地下水位 | - |
| dc.subject | THMC | - |
| dc.subject | Alternate Wetting and Drying (AWD) | - |
| dc.subject | Methane | - |
| dc.subject | Water Balance | - |
| dc.subject | Groundwater Level | - |
| dc.subject | THMC model | - |
| dc.title | 間歇灌溉(AWD)對有機水稻田甲烷排放與地下水補注之影響 | zh_TW |
| dc.title | The Impact of Alternate Wetting and Drying (AWD) on Methane Emissions and Groundwater Recharge in Organic Paddy Fields | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 114-1 | - |
| dc.description.degree | 碩士 | - |
| dc.contributor.oralexamcommittee | 王聖瑋;楊志維 | zh_TW |
| dc.contributor.oralexamcommittee | Sheng-Wei Wang;Zhi-Wei Yang | en |
| dc.subject.keyword | 間歇灌溉,甲烷水平衡地下水位THMC | zh_TW |
| dc.subject.keyword | Alternate Wetting and Drying (AWD),MethaneWater BalanceGroundwater LevelTHMC model | en |
| dc.relation.page | 94 | - |
| dc.identifier.doi | 10.6342/NTU202600312 | - |
| dc.rights.note | 同意授權(限校園內公開) | - |
| dc.date.accepted | 2026-01-29 | - |
| dc.contributor.author-college | 生物資源暨農學院 | - |
| dc.contributor.author-dept | 生物環境系統工程學系 | - |
| dc.date.embargo-lift | 2030-12-15 | - |
| 顯示於系所單位: | 生物環境系統工程學系 | |
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