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完整後設資料紀錄
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dc.contributor.advisor童心欣zh_TW
dc.contributor.advisorHsin-hsin Tungen
dc.contributor.author呂秉澄zh_TW
dc.contributor.authorPing-Cheng Luen
dc.date.accessioned2025-07-11T16:19:33Z-
dc.date.available2025-07-12-
dc.date.copyright2025-07-11-
dc.date.issued2025-
dc.date.submitted2025-07-01-
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/97717-
dc.description.abstract本研究旨在探討都市湖泊在全球碳循環中的角色,特別是其作為碳源或碳匯的潛力與實際表現。都市湖泊由於位處人口密集的城市環境,經常受到污染物與營養鹽(如氮、磷)的輸入影響,導致水體優養化,進而影響其碳通量。本研究以台灣兩座代表性的都市水體—龍潭大池與大湖公園為研究對象,透過為期一年的實地採樣與氣體通量測量,分析二氧化碳(CO₂)與甲烷(CH₄)之排放情形,並探討其與環境因子間的關聯性。結果顯示,龍潭大池在多數時期呈現低於全球平均值的溫室氣體通量,甚至在某些季節具有碳匯的特徵,顯示其具有吸收CO₂的潛力。反之,大湖公園的甲烷排放通量明顯較高,並在部分時期超過全球平均值的兩倍,是顯著的碳排放源。此現象可能與該湖泊底泥厚度、厭氧環境,以及初級生產力有關。研究也發現甲烷通量在日間普遍高於夜間,推測可能受到光合作用強度與氣體溶解度變化的共同影響。統計分析顯示甲烷通量在季節間變異顯著,特別是在冬夏間的差異,可能與氣溫變化相關;而CO₂通量則未顯示出明確的時間與季節變化趨勢。透過冗餘分析(RDA),本研究進一步探討水質參數與氣體通量之間的關係。結果指出,葉綠素、總磷、硝酸鹽氮、有機碳、溶氧與光照等因子與甲烷通量密切相關,這些指標與湖泊的優養化程度與初級生產力密切相關;CO₂通量則與葉綠素、顆粒性有機碳、溶解性有機碳、pH值、溶氧與總磷等變項有明顯關聯,反映出都市湖泊中碳排放或吸收主要受到藻類光合作用與水質條件的雙重影響。研究也發現,相較於其他類型水體(如自然湖泊與水庫),都市湖泊特別是小型湖泊,其甲烷通量普遍較高,並具有顯著的貢獻潛力。此結果與全球研究一致,指出小型湖泊是內陸水域碳排放的重要熱點,尤其在氣候變遷加劇與都市化進程下,其重要性不容忽視。研究結果顯示,都市湖泊雖具有部分碳匯潛力,但在甲烷排放方面仍可能是重要的碳源,應透過改善水質、降低營養鹽輸入及生態系統管理等方式加以控制,提升其在碳中和政策中的貢獻潛力。zh_TW
dc.description.abstractThis study aims to explore the role of urban lakes in the global carbon cycle, particularly their potential and actual performance as carbon sources or sinks. Urban lakes, situated in densely populated areas, are often affected by inputs of pollutants and nutrients such as nitrogen and phosphorus, leading to eutrophication, which in turn influences their carbon fluxes. This research focuses on two representative urban water bodies in Taiwan—Longtan Large Tourist Pond and Dahu Park —and analyzes carbon dioxide (CO₂) and methane (CH₄) emissions through year-round field sampling and flux measurements. The results show that Longtan Large Tourist Pond generally exhibited greenhouse gas fluxes lower than the global average and even demonstrated characteristics of a carbon sink during certain seasons, indicating a potential for CO₂ absorption. In contrast, Dahu Park exhibited significantly higher methane emissions, with some periods reaching more than twice the global average, identifying it as a notable carbon source. This phenomenon is likely related to factors such as sediment thickness, anoxic conditions, and primary productivity. The study also found that methane fluxes were generally higher during the day than at night, possibly due to the combined effects of photosynthetic activity and wind speed variations. Statistical analysis revealed significant seasonal variation in CH₄ flux, particularly between winter and summer, which may be associated with temperature changes, whereas CO₂ fluxes did not show clear temporal or seasonal patterns. Redundancy analysis (RDA) was conducted to examine the relationships between water quality parameters and gas fluxes. The results indicate that chlorophyll-a, total phosphorus, nitrate, organic carbon, dissolved oxygen, and light intensity were closely associated with methane flux, reflecting the influence of eutrophication and primary productivity. CO₂ flux, on the other hand, was significantly correlated with variables such as chlorophyll-a, particulate and dissolved organic carbon, pH, dissolved oxygen, and total phosphorus, suggesting that both algal photosynthesis and water quality jointly affect carbon emissions or uptake in urban lakes. The study also observed that, compared to other water bodies such as natural lakes and reservoirs, urban lakes—especially small-sized ones—tend to have higher methane fluxes and substantial emission potential. This finding aligns with global research pointing out that small lakes are important hotspots of carbon emissions in inland waters, especially under accelerating climate change and urbanization. While urban lakes may possess some carbon sink potential, they are likely significant methane sources. Thus, measures such as water quality improvement, reduction of nutrient inputs, and ecosystem management are essential to enhance their contribution to carbon neutrality goals.en
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dc.description.tableofcontents誌謝 i
摘要 ii
ABSTRACT iii
目次 v
圖次 viii
表次 xi
1 第一章 前言 1
1.1 研究動機 1
1.2 研究假說 2
1.3 研究目的 2
2 第二章 文獻回顧 3
2.1 溫室效應 3
2.2 自然碳匯 4
2.2.1 森林碳匯 4
2.2.2 土壤碳匯 5
2.2.3 海洋碳匯 5
2.3 淡水水體 5
2.3.1 淡水水體的種類 6
2.3.2 淡水碳排放及其對全球碳排放之貢獻量 6
2.3.3 國內外淡水水體溫室氣體通量相關研究 7
2.4 溫室氣體通量的測量技術與方法 11
2.4.1 渦度協方差 (Eddy covariance measurements) 11
2.4.2 邊界層法 (Boundary layer method) 11
2.4.3 漂浮式氣罩法 (floating chamber) 12
2.5 本論文填補之知識缺口 13
3 第三章 材料與研究方法 14
3.1 研究架構及流程 14
3.2 採樣地點 15
3.2.1 龍潭大池 15
3.2.2 大湖公園 16
3.3 溫室氣體通量 18
3.3.1 採樣箱設計 18
3.3.2 氣體收集與分析 19
3.4 環境因子之量測 21
3.5 水樣採集與分析 21
3.5.1 酸鹼值(pH)、溶氧(Dissolved Oxygen, DO)與水溫 21
3.5.2 氨氮( Ammonium Nitrogen, NH₃-N)與硝酸鹽氮 (Nitrate Nitrogen, NO₃⁻-N) 21
3.5.3 總氮(Total Nitrogen, TN) 22
3.5.4 葉綠素a (Chlorophyll-a) 22
3.5.5 總磷(Total Phosphorus, TP) 23
3.5.6 溶解性有機碳(Dissolved Organic Carbon, DOC)以及溶解性無機碳(Dissolved Inorganic Carbon, DIC) 23
3.5.7 顆粒性有機碳(Particle Organic Carbon, POC) 24
3.6 Redundancy Analysis (RDA) 24
3.7 實驗儀器 25
4 第四章 結果 26
4.1 龍潭大池 26
4.1.1 龍潭大池環境與水質參數 26
4.1.2 龍潭大池氣體通量 35
4.2 大湖公園 41
4.2.1 大湖公園環境與水質參數 41
4.2.2 大湖公園氣體通量 50
4.3 多變量分析 56
4.3.1 龍潭大池RDA分析 56
4.3.2 大湖公園RDA分析 57
4.3.3 日間RDA分析 59
4.3.4 夜間RDA分析 60
4.4 與不同緯度及氣候區進行比較 62
4.4.1 溫室氣體比較 62
4.4.2 全球暖化潛勢比較 65
5 第五章 討論 66
5.1 龍潭大池與大湖公園之間的差異 66
5.2 水質與氣體通量間的關聯 67
5.3 與不同氣候區及不同淡水水體類型之差異 70
5.4 目前研究方法的限制 72
6 第六章 結論與建議 73
6.1 結論 73
6.2 建議 74
7 參考文獻 75
8 附錄 88
-
dc.language.isozh_TW-
dc.subject碳通量zh_TW
dc.subject甲烷zh_TW
dc.subject二氧化碳zh_TW
dc.subject碳源zh_TW
dc.subject碳匯zh_TW
dc.subject溫室氣體zh_TW
dc.subject都市湖泊zh_TW
dc.subjectgreenhouse gasesen
dc.subjecturban lakeen
dc.subjectcarbon fluxen
dc.subjectmethaneen
dc.subjectcarbon dioxideen
dc.subjectcarbon sourceen
dc.subjectcarbon sinken
dc.title都市淡水水體碳匯調查zh_TW
dc.titleSurvey of Urban Freshwater Carbon Sinken
dc.typeThesis-
dc.date.schoolyear113-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee闕蓓德;陳起鳳zh_TW
dc.contributor.oralexamcommitteePei-Te Chiueh;Chi-Feng Chenen
dc.subject.keyword都市湖泊,碳通量,甲烷,二氧化碳,碳源,碳匯,溫室氣體,zh_TW
dc.subject.keywordurban lake,carbon flux,methane,carbon dioxide,carbon source,carbon sink,greenhouse gases,en
dc.relation.page93-
dc.identifier.doi10.6342/NTU202501440-
dc.rights.note同意授權(全球公開)-
dc.date.accepted2025-07-01-
dc.contributor.author-college工學院-
dc.contributor.author-dept環境工程學研究所-
dc.date.embargo-lift2025-07-12-
顯示於系所單位:環境工程學研究所

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