請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/89047完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 李培芬 | zh_TW |
| dc.contributor.advisor | Pei-Fen Lee | en |
| dc.contributor.author | 連思雅 | zh_TW |
| dc.contributor.author | Szu-Ya Lien | en |
| dc.date.accessioned | 2023-08-16T16:54:37Z | - |
| dc.date.available | 2023-11-09 | - |
| dc.date.copyright | 2023-08-16 | - |
| dc.date.issued | 2023 | - |
| dc.date.submitted | 2023-08-04 | - |
| dc.identifier.citation | Baker, M. C. 1979. Morphological correlates of habitat selection in a community of shorebirds (Charadriiformes). Oikos 33:121-126.
Benstead, P., and P. José. 2001. Wetlands Restoration. Pages 805-822 in S. A. Levin, editor. Encyclopedia of Biodiversity. Elsevier, New York. Brandolin, P. G., and P. G. Blendinger. 2015. Effect of habitat and landscape structure on waterbird abundance in wetlands of central Argentina. Wetlands Ecology and Management 24:93-105. Brown, P., M. Monfils, and L. Fredrickson. 2009. Wetland ecology and management for birds and mammals. Pages 563-581 in G. E. Likens, editor. Encyclopedia of Inland Waters. Academic Press, Oxford. Busch, D. E., and J. C. Trexler. 2003. Monitoring Ecosystems: Interdisciplinary Approaches for Evaluating Ecoregional Initiatives. Island Press, Washington, D.C. Choi, C., X. Gan, N. Hua, Y. Wang, and Z. Ma. 2013. The habitat use and home range analysis of Dunlin (calidris alpina) in Chongming Dongtan, China and their conservation implications. Wetlands 34:255-266. Colwell, M. A., and O. W. Taft. 2000. Waterbird communities in managed wetlands of varying water depth. Waterbirds: The International Journal of Waterbird Biology 23:45-55. D Simberloff, a., and T. Dayan. 1991. The guild concept and the structure of ecological communities. Annual Review of Ecology and Systematics 22:115-143. Fang, X., R. Wu, Y. Feng, Y. Huang, S. Liu, L. Yuan, J. Liu, X. Niu, X. Wang, and H. Hu. 2021. Enhancing bird diversity via species differential analysis at the Haizhu National Wetland Park in Guangzhou, China: a case study. Restoration Ecology 29:e13329. Gerbeaux, P., C. M. Finlayson, and A. A. van Dam. 2018. Wetland Classification: Overview. Pages 1461-1468 in C. M. Finlayson, M. Everard, K. Irvine, R. J. McInnes, B. A. Middleton, A. A. van Dam, and N. C. Davidson, editors. The Wetland Book: I: Structure and Function, Management, and Methods. Springer Netherlands, Dordrecht. Gokce, D. 2019. Wetlands Management: Assessing Risk and Sustainable Solutions. IntechOpen, UK. Groffman, P. M., J. S. Baron, T. Blett, A. J. Gold, I. Goodman, L. H. Gunderson, B. M. Levinson, M. A. Palmer, H. W. Paerl, G. D. Peterson, N. L. Poff, D. W. Rejeski, J. F. Reynolds, M. G. Turner, K. C. Weathers, and J. Wiens. 2006. Ecological thresholds: the key to successful environmental management or an important concept with no practical application? Ecosystems 9:1-13. Hansson, L.-A., C. Bronmark, P. Anders Nilsson, and K. Abjornsson. 2005. Conflicting demands on wetland ecosystem services: nutrient retention, biodiversity or both? Freshwater Biology 50:705-714. Holm, T. E., and P. Clausen. 2006. Effects of water level management on autumn staging waterbird and macrophyte diversity in three Danish coastal lagoons. Biodiversity and Conservation 15:4399-4423. Hua, Y., B. Cui, and W. He. 2012. Changes in water birds habitat suitability following wetland restoration in the Yellow River Delta, China. CLEAN - Soil, Air, Water 40:1076-1084. Jaccard, P. 1912. The distribution of the flora in the alpine flora in the alpine zone.1. New Phytologist 11:37-50. Ma, Z., Y. Cai, B. Li, and J. Chen. 2009. Managing wetland habitats for waterbirds: an international perspective. Wetlands 30:15-27. Ma, Z., B. Li, B. Zhao, K. Jing, S. Tang, and J. Chen. 2004. Are artificial wetlands good alternatives to natural wetlands for waterbirds? – A case study on Chongming Island, China. Biodiversity & Conservation 13:333-350. Magurran, A. E. 2021. Measuring biological diversity. Current Biology 31:R1174-R1177. Masero, J., A. Perez-hurtado, M. Casas, and G. Munoz Arroyo. 2000. Complementary use of intertidal mudflats and adjacent salinas by foraging waders. Ardea 88:177-191. Menon, S., and K. S. Bawa. 1997. Applications of geographic information systems, remote-sensing, and a landscape ecology approach to biodiversity conservation in the Western Ghats. Current Science 73:134-145. Mitsch, W. J., and R. F. Wilson. 1996. Improving the success of wetland creation and restoration with know-how, time, and self-design. Ecological Applications 6:77-83. Nagarajan, R., and K. Thiyagesan. 1996. Waterbirds and substrate quality of the Pichavaram wetlands, southern India. Ibis 138:710-721. Ntiamoa-Baidu, Y. A. A., T. Piersma, P. Wiersma, M. Poot, P. Battley, and C. Gordon. 2008. Water depth selection, daily feeding routines and diets of waterbirds in coastal lagoons in Ghana. Ibis 140:89-103. Pöysä, H. 1983. Resource utilization pattern and guild structure in a waterfowl community. Oikos 40:295-307. Park, M. C., I. J. Won, H. D. Park, and S. R. Cho. 2016. Long-term trends of bird community in Ganwol Lake district, Seosan, Korea. The Korean Journal of Ornithology 23:39-53. Putera, A. K. S., D. Perwitasari-Farajallah, Y. A. Mulyani, S. Lhota, R. Herliansyah, and S. Sodikin. 2021. Waterbird foraging habitat selection in Balikpapan Bay: water depth and patch area as important factors. HAYATI Journal of Biosciences 28:312-324. Rabalais, N. N. 2002. Nitrogen in aquatic ecosystems. Ambio 31:102-112. Ramsar, I. 1971. Convention on wetlands of international importance, especially as waterfowl habitat. Ramsar (Iran) 2. Richard, T. T. F., and M. Godron. 1981. Patches and structural components for a landscape ecology. BioScience 31:733-740. Shannon, C. E. 1948. A mathematical theory of communication. The Bell System Technical Journal 27:379-423. Sorensen, T. A. 1948. A method of establishing groups of equal amplitude in plant sociology based on similarity of species content and its application to analyses of the vegetation on Danish commons. Biologiske Skrifter 5:1-34. Spearman, C. 1904. The proof and measurement of association between two things. The American Journal of Psychology 15:72-101. Streever, W. 1999. Examples of performance standards for wetland creation and restoration in Section 404 permits and an approach to developing performance standards. WRP Technical Notes Collection (TN WRP WG-RS-3.3). US Army Engineer Research and Development Center, Vicksburg, MS. Sulai, P., S. Nurhidayu, N. Aziz, M. Zakaria, H. Barclay, and B. Azhar. 2015. Effects of water quality in oil palm production landscapes on tropical waterbirds in Peninsular Malaysia. Ecological Research 30:941-949. Underwood, A. J. 1992. Beyond BACI: the detection of environmental impacts on populations in the real, but variable, world. Journal of Experimental Marine Biology and Ecology 161:145-178. Wilson, J. B. 1999. Guilds, Functional Types and Ecological Groups. Oikos 86:507-522. Yetis, R., H. Nergiz, and A. D. Yetis. 2021. Effects of water quality on the species richness and population distribution of waterbirds in Ahlat marshes, Turkey. Biologia 76:3299-3309. 方偉達、薛怡珍、何一先。2008。河流匯流處低水護岸之生態影響現象—以華江雁鴨自然公園為例。國立臺南大學「環境與生態學報」, 1:1-16。 王晴薇。2003。非法定保育地之永續性研究—以桃園沿海鳥類棲地區為例。碩士論文,臺灣師範大學,臺北市。 王駿穠、馮豐隆。2002。棲息地適宜度指標模式(Habitat Suitability Index Model, HSI)。台灣林業, 28: 72-75。 吳台琪。2011。社區參與華江雁鴨自然公園生態監測之研究。碩士論文,國立臺灣大學,臺北市。 呂翊維、洪貫捷、邱柏瑩。2015。台灣重要野鳥棲地手冊:第二版。行政院農委會林務局,臺北市。 李允如。2005。關渡自然公園內棲地管理對水鳥之影響。碩士論文,國立臺灣大學,臺北市。 李培芬、陳韋仁、柯佳吟。2019。108年度桃園市海岸地區生物多樣性指標調查計畫。桃園市政府,桃園市。 林大利、蔡芷怡、趙容、潘森識、呂翊維、林昆海、蔣功國、林瑞興。2021。臺灣新年數鳥嘉年華2021年度報告。社團法人中華民國野鳥學會、行政院農業委員會特有生物研究保育中心。臺北。 林明志。1994。關渡地區鳥類群聚動態與景觀變遷之關係。碩士論文,輔仁大學,新北市。 桃園市政府環境保護局。2017。自然樂活 海好有你 桃園海岸生態保護白皮書(2017)。桃園市。 陳坤能、方幼漢、連友賢、翁義聰。2015。臺南市曾文溪口東方環頸鴴度冬期之食性。濕地學刊, 4: 57-64。 陳柏元。2005。桃園埤塘景觀特性與水鳥族群關係之研究。碩士論文,中國文化大學,臺北市。 陳炤杰。1993。七股地區水鳥覓食行為及棲地利用之研究。行政院國家科學委員會專題研究計畫 (計畫編號 NSC91-2621-B-156-001-)。 辜國展。2005。大肚溪口繁殖期東方環頸鴴活動模式之研究。碩士論文,東海大學,台中市。 黃書彥、薛美莉。2014。涉禽對晒池魚塭之利用-以七股地區虱目魚及文蛤養殖為例。台灣生物多樣性研究, 16: 339-354。 黃國文。2022。111年度桃園市海岸地區生物多樣性指標調查計畫。桃園市政府,桃園市。 黃馨儀。2013。鷸鴴類岸鳥在魚塭環境的群棲地選擇與偏好。國立臺灣大學,臺北市。 劉小如、丁宗蘇、方偉宏、林文宏、蔡牧起、顏重威。2012。台灣鳥類誌:第二版。行政院農業委員會林務局,臺北。 潘天祺。1998。臺灣北部淡水河沿岸鳥類資源之組成與時空變遷。碩士論文,國立臺灣大學,臺北市。 蔡芷怡。2020。彰化沿海地區紅樹林結構與鳥類群聚之關係。碩士論文,國立臺灣大學,臺北市。 蔡嘉揚。1994。大肚溪口濱鷸數量季節和空間的變化與其主食端腳類之相關。碩士論文,東海大學,台中市。 賴怡蒨。2013。淡水河度冬水鳥族群的長期趨勢。碩士論文,國立臺灣大學,臺北市。 戴漢彰。2009。關渡自然公園棲地經營管理對鳥類相的影響。碩士論文,國立臺灣大學,臺北市。 羅暐菱。2014。宜蘭縣無尾港地區小水鴨度冬棲地特性。國立臺灣大學,臺北市。 | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/89047 | - |
| dc.description.abstract | 濕地可提供許多生態系服務及豐富的生物資源。許厝港國家重要濕地位於桃園市,為渡冬水鳥停留北臺灣重要的濕地之一。近幾年由於溪口垃圾堆積,影響鳥類的數量與分布。因此,桃園市政府海岸管理工程處於2019年清除老街溪口的垃圾、淤泥,並移除許厝港違法的廢棄魚塭,營造為適合鳥類棲息的棲地。本研究探討棲地改善工程對棲地地景造成的改變與其對於鳥類群集的影響。地景部分以ArcGIS將工程前後的衛星影像數化進行比較,鳥類調查由2019至2021年底,每季一次。分析比較鳥類群集變化,以相似性指數分析鳥類物種組成。以10m*10m的網格和鳥類座標點位,探討鳥類於四季分布之變化。
結果顯示,工程後灘地面積大量增加。整體鳥類於工程前的量豐度低,工程中增加許多後於2020冬季後下降。種豐度部分持續上下起伏,工程中數量上升後下降,同樣於2020年秋季才又回升。棲地同功群以泥灘涉禽佔有最大比例,水域泥岸游涉禽次之,泥灘涉禽量豐度、種豐度變化與整體鳥類相似。分布在工程前後先增後減,冬季增加,夏季減少,春秋都先增後減。密度於冬、夏兩季先增後減,春季不變,秋季相反。水域泥岸游涉禽量豐度上下起伏,在工程後增加,又再下降,至2020秋季回升卻又減少。種豐度變化較小,工程前後變化不大。分布於工程前後持續上升,除冬季上升外持續下降,密度都不高,夏季下降。優勢種—東方環頸鴴、黑腹濱鷸和太平洋金斑鴴皆於工程後才出現,數量與分布先增加後減少。小白鷺數量上下起伏,分布先升後降。四季間物種相似度2020與2021年皆最接近,冬季工程前後差異較大,但夏秋兩季都以2021年差異較大。 本研究顯示鳥類量豐度雖於工程後上升,但接下來的時間幾乎都減少,而新增的棲地區域確實增加了鳥類分布的範圍。與鄰近樣區比較發現工程中、後數量上升,與其他樣區不同,但隔年的數量下降其他樣區也未出現。水質中總磷與懸浮固體與鳥類數量呈高度負相關,可能為影響鳥類數量的因子,底棲物種數量則難以解釋鳥類數量變動情形。本研究認為工程區新增的棲地確實提供鳥類可棲息的環境,但鳥類變化於隔年無法維持一定數量為主要問題。可能因工程造成之變化正好為鳥類能承受的閾值,因此工程過一年後數量急速下降。建議增加棲地水深多樣性、種植植被以增加隱蔽性,及持續監測水質,避免汙染程度過高,並注意人類與其他動物的干擾。由於調查為每季一次,易因大量單一物種的出現,造成誤差,且此研究的觀測時間較短易受影響。也可能因物種需要時間適應新的棲地,此環境是否適合鳥類持續使用仍需更長時間的監測來評估工程的成果。 | zh_TW |
| dc.description.abstract | The Xucuogang National Important Wetland is located in Taoyuan City, which is one of the important wetlands for winter waterfowl to rest in northern Taiwan. However, the abundance and distribution of birds seem to be affected by the trash that piled up in the estuary in recent years. Accordingly, government of Taoyuan City carried out a project to dredge Laojie estuary and to remove the abandoned illegal fish farms to create a habitat suitable for birds, in 2019. Besides, it is necessary to keep monitoring the effect of habitat management for assessment and future plans. Therefore, this study would focus on the habitat changes caused by habitat improvement projects and their impact on bird assemblages. The sample area was the Laojie estuary and the abandoned fish farm for the project in Xucuogang Wetland. For the landscape, ArcGIS was used to digitize the Google Earth satellite images. Bird surveys started from 2019 to 2021 quarterly. Furthermore, seasonal analysis of bird abundance, species number and distribution of total of birds, each guild, and dominant species were conducted. Besides, we analyzed changes in species composition by the Jaccard similarity index. Next, bird positions were overlapped on a 10m*10m grid, and the distribution of each guild of the birds was calculated.
The results showed that the area of the beach had increased a lot for the change of landscape. As regards the abundance of the total of birds before the project was low but increased a lot after. However, it declined after the survey in 2020 winter. The species number increased during the project in summer, but decreased after that, and it rose again in 2020 in autumn. Regarding the guilds, mudflat waders accounted for the largest proportion, followed by water-shore waders. The trend of changing of these guilds and the species number of mudflat waders were almost the same as the total abundance of birds. The species number of water-shore waders changed slightly. As for the distribution of the guilds, the change in mudflat waders was almost the same as the abundance but did not decrease in winter after. And it was the same as the water-shore waders in winter. However, it increased slightly and then decreased a lot in autumn, and it decreased a lot in others. The dominant species of mudflat waders, Kentish Plover, Dunlin, and Pacific Golden Plover, only appeared after the project. The abundance of the above increased considerably right after the project. Conversely, they declined the next year and so as the distributions. As for mud-shore waders, Little egret, decreased except in winter. The distribution of Little egret increased in the first year and decreased then. It follows that the species similarity is the closest in 2020 and 2021 of the four seasons, and the difference is bigger in winter. This study shows that even though the abundance of birds had increased a lot right after the project, it decreased in the next year generally and so as the distribution. Anyway, the positions of birds were on the habitat which appeared after the project. In general, the changes in the abundance of birds are different to those outside the project area, it decreased a lot rather others. The total phosphorus and the suspended substrate of water quality were negative correlated to the total abundance, which may be the factor that impacted, and it is not correlated with the abundance of benthos. In conclusion, the project provided new habitat for birds. The main problem was the decrease after the next year. It may because of the change was almost at the threshold that the birds could afford. Increasing the diversity of habitat water depth, or planting vegetation for birds to hide and perch, and monitor the water quality could be the method of improving the effect. Long-term monitoring is needed to assess the project to assess the impact of the project. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2023-08-16T16:54:37Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2023-08-16T16:54:37Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 目錄
摘要 ii Abstract iv 目錄 vii 圖目錄 ix 表目錄 xiii 前言 1 材料與方法 5 研究地區 5 地景變遷 6 鳥類調查方法與分析方式 6 環境因子調查方式與分析方式 9 結果 13 地景變遷 13 整體物種變遷 13 棲地同功群數量與分布變化情形 14 優勢種的數量、分布變化 16 工程前後的物種變化 19 物種相似度 19 水質與鳥類數量之關係 20 底棲生物數量、多樣性與鳥類數量之關係 21 水深與鳥類分布之關係 21 討論 23 地景變化與鳥類群集分布之關係 24 與鄰近樣區進行比較 26 水質與鳥類整體數量變化 27 底棲生物數量、物種數與鳥類數量變化 28 感潮濕地內與老街溪口地形高程與各棲地同功群分布 28 結論與對棲地管理的建議 29 引用文獻 31 圖 36 表 66 附錄一、許厝港濕地鳥類名錄與棲地同功群類型 69 附錄二、許厝港濕地工程區域之調查日期 73 附錄三、河川汙染指標分級 73 附錄四、研究區域實際照片 74 | - |
| dc.language.iso | zh_TW | - |
| dc.subject | 許厝港濕地 | zh_TW |
| dc.subject | 棲地改善工程 | zh_TW |
| dc.subject | 鳥類 | zh_TW |
| dc.subject | 同功群 | zh_TW |
| dc.subject | 地景變化 | zh_TW |
| dc.subject | Birds | en |
| dc.subject | Habitat Improvement Project | en |
| dc.subject | Guilds | en |
| dc.subject | Xucuogang Wetland | en |
| dc.subject | Landscape | en |
| dc.title | 許厝港濕地棲地改善工程對鳥類群集的影響 | zh_TW |
| dc.title | Impacts of the Xucuogang Wetland Habitat Improvement Project on Bird Assemblage | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 111-2 | - |
| dc.description.degree | 碩士 | - |
| dc.contributor.oralexamcommittee | 柯佳吟;丁宗蘇 | zh_TW |
| dc.contributor.oralexamcommittee | Chia-Ying Ko;Tzung-Su Ding | en |
| dc.subject.keyword | 許厝港濕地,鳥類,棲地改善工程,同功群,地景變化, | zh_TW |
| dc.subject.keyword | Xucuogang Wetland,Birds,Habitat Improvement Project,Guilds,Landscape, | en |
| dc.relation.page | 78 | - |
| dc.identifier.doi | 10.6342/NTU202303006 | - |
| dc.rights.note | 同意授權(限校園內公開) | - |
| dc.date.accepted | 2023-08-08 | - |
| dc.contributor.author-college | 生命科學院 | - |
| dc.contributor.author-dept | 生態學與演化生物學研究所 | - |
| dc.date.embargo-lift | 2028-08-04 | - |
| 顯示於系所單位: | 生態學與演化生物學研究所 | |
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