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  1. NTU Theses and Dissertations Repository
  2. 生物資源暨農學院
  3. 生物環境系統工程學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/49814
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor侯文祥(Wen-Shang Hou)
dc.contributor.authorJhe-Yi Yangen
dc.contributor.author楊哲一zh_TW
dc.date.accessioned2021-06-15T11:50:09Z-
dc.date.available2021-08-24
dc.date.copyright2016-08-24
dc.date.issued2016
dc.date.submitted2016-08-11
dc.identifier.citation英文部分
Avnimelech, Y. and Ritvo, G. (2003) Shrimp and Fish Pond Soils: Processes and Management. Aquaculture, 220, 549-567.
Backyard Aquaponics (n.d.). Type of Systems Retrieved May 28, 2016, from http://www.backyardaquaponics.com/guide-to-aquaponics/running-of-the-system/
Batal, K. M. (1991). Effects of nitrogen source, rate, and application frequency on yield and quality of onion. HortScience, 26(5), 490-491.
Brunty, J., Bucklin, R., Davis, J., Baird, C., Nordstedt, R. (1997) The influence of feed protein intake on tilapia ammonia production. Aquacult. Eng. 16:161–166
Carlsson D (2003) Aquaponic systems: Potentials on a northern latitude. MID Sweden University. Department of Ecotechnology and Sustainable Building Engineering.
Drost, D., Koenig, R., & Tindall, T. (2002). Nitrogen use efficiency and onion yield increased with a polymer-coated nitrogen source. HortScience, 37(2), 338-342.
Endut, A., Jusoh, A., & Ali, N. A. (2014). Nitrogen budget and effluent nitrogen components in aquaponics recirculation system. Desalination and Water Treatment, 52(4-6), 744-752.
Graber, A., & Junge, R. (2009). Aquaponic Systems: Nutrient recycling from fish wastewater by vegetable production. Desalination, 246(1), 147-156.
Hlaváč, D., Adámek, Z., Hartman, P., & Másílko, J. (2014). Effects of supplementary feeding in carp ponds on discharge water quality: a review.Aquaculture international, 22(1), 299-320.
Japen Aquaponics.(n.d.). Fish Tank Shape Retrieved May 27, 2016 from http://www.japan-aquaponics.com/fish-tank-guide.html
Jessica Mader (2012). Plant Growth in Aquaponic System through Comparison of Different Plant Media. Westover Honors Program.
Licamele, J. D. (2009). Biomass production and nutrient dynamics in an aquaponics system. The University of Arizona.
Mariscal-Lagarda, M.M., Páez-Osuna, F., Esquer-Méndez, J.L., Guerrero-Monroy,I., Romo del Vivar, A., Félix-Gastelum, R., (2012). Integrated culture of whiteshrimp (Litopenaeus vannamei) and tomato (Lycopersicon esculentum Mill) withlow salinity groundwater: management and production. Aquaculture, 366,76–84.
Mariscal-Lagarda, M.M., Páez-Osuna, F. (2012). Mass balances of nitrogen and phosphorus in an integrated culture of shrimp (Litopenaeus vannamei) and tomato (Lycopersicon esculentum Mill) with low salinity groundwater: A short communication Aquacultural Engineering, 58, 107-112.
Maslow, A. H. (1943). A theory of human motivation. Psychological review, 50(4), 370.
Rakocy, J. E., Masser, M. P., & Losordo, T. M. (2006). Recirculating aquaculture tank production systems: aquaponics—integrating fish and plant culture. SRAC publication, 454, 1-16.
Rakocy, J., Shultz, R. C., Bailey, D. S., & Thoman, E. S. (2003, February). Aquaponic production of tilapia and basil: comparing a batch and staggered cropping system. In South Pacific Soilless Culture Conference-SPSCC 648 (pp. 63-69).
Richard Tyson (2013). Aquaponics – Vegetable and Fish Co-Production University of Florida Retrieved May 31 2016 , from http://fisheries.tamu.edu/files/2013/10/Aquaponics-Vegetable-and-Fish-Co-Production-2013.pdf
Russell Brook.(n.d.). Top 7 aquaponics fish species Retrieved May 27, 2016 from http://homeaquaponicssystem.com/fish/top-7-aquaponics-fish-species/
Shahady, T., Cowden, N., & Gannicott, P. (2012). Plant Growth in Aquaponic System through Comparison of Different Plant Media Jessica Mader Senior Honors Project Submitted in partial fulfillment of the graduation requirements of the Westover Honors Program.
Sikawa, D. C., & Yakupitiyage, A. (2010). The hydroponic production of lettuce (Lactuca sativa L) by using hybrid catfish (Clarias macrocephalus× C. gariepinus) pond water: Potentials and constraints. Agricultural water management, 97(9), 1317-1325.
Somerville, C., Cohen, M., Pantanella, E., Stankus, A., & Lovatelli, A. (2014).Small-scale aquaponic food production: integrated fish and plant farming. Food and Agriculture Organization of the United Nations.
Sylvia Bernstein.(n.d.). Aquaponics How-To Guide: Grow Beds and Fish Tanks Retrieved May 27, 2016 from
http://goo.gl/k9mBgN
United Nations (2012). Population Division World Urbanization Prospects, the 2011 Revision; United Nations Department of Economic and Social Affairs/Population Division: New York, NY, USA, 318.
World Economic Forum (2015) Global Risks report,
Retrieved June 27, 2016 from http://opim.wharton.upenn.edu/risk/library/Global_Risks_2015.pdf
Zala Schmautz (2015). Mass Balance And Nutrient Recycling In Aquapoincs.

中文部分
土壤調查與整治研究室(無日期)。剖面土綱─台灣土壤分類。2016年7月5日,取自:
http://lab.ac.ntu.edu.tw/soilsc/sc/sc_box_taiwan.html
行政院農業委員會 (2016版)。吳郭魚主題館–農業知識入口網。2016年7月5日,取自:
https://kmweb.coa.gov.tw/subject/ct.asp?xItem=90554&ctNode=2437&mp=1&kpi=0&hashid=
行政院農業委員會水產試驗所 (2015) 。建立養殖水培系統試驗。赴澳洲研習養殖水耕技術出國報告。2016年7月6日,取自:
http://report.nat.gov.tw/ReportFront/report_detail.jspx?sysId=C10401876
行政院農業委員會農業試驗所 (2016) 台灣表層土壤酸鹼值分布圖(2015年4月版)。2016年7月6日,取自:
http://soilsurvey.tari.gov.tw/SOA/index.aspx
余津聚(2011)。水耕葉菜類營養元素吸收之研究
吳正宗(2016)。第三篇, 栽培介質的種類與特性。2016年5月29日,取自:
http://goo.gl/CEYxqz
李中光,劉新校,邱惠敏(2015)。淺談魚菜共生系統。環保簡訊(桃園縣大學校院產業環保技術服務團),第27期,p6, 1-8。
林昇益, 黃淑華(1993)。腐黴菌引起水耕蔬菜根腐病, 植物會刊 35:51-61
侯文祥(1995)。日本鰻池汙濁固形物動實態。民國84年農工研討會。139-150
柯清水(2014)。硝化細菌與水產養殖問答集。台北市:養魚世界雜誌社。
夏勇锋, 何少华, 凌 静, 林振波&皮艾南(2012). 底泥氮磷释放的影响因素及控制方法.水科学与工程技术, 2016年5月29日,取自「百度文庫」:
http://wenku.baidu.com/view/fef473a8b0717fd5360cdc11.html?re=view
袁文权, 张锡辉, 张丽萍. (2004). 不同供氧方式对水库底泥氮磷释放的影响. 湖泊科学, 1
郭秋雄(1993)。影響吳郭魚氨排泄因子之探討【摘要】。國立台灣海洋大學水產養殖研究所,未出版。2016年5月29日,取自「全國博碩士論文資訊網」: http://goo.gl/1GTgZ2
陳尊賢, 許正一(2002)。臺灣的土壤。新北市: 遠足文化事業股份有限公司。
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/49814-
dc.description.abstract魚菜共生自1970年代以來為農糧與養殖業帶來了新的概念,魚菜共生結合了養殖與水耕,將養殖廢汙中的氨氮透過硝化作用變成植物能利用的氮營養鹽,而被植物淨化後的水可以再繼續循環利用,魚菜共生能夠節省大量水資源,是結合永續發展概念的新型態農業。
然而,魚菜共生系統中魚與菜比例需透過生物排放與植物吸收實驗,進行氮營養鹽的收支計算,為魚菜共生系統主要的平衡關鍵。本研究以吳郭魚與珠蔥為實驗對象,建立魚菜比例的數據,計測總重224g的魚體之單日排泄累積實驗。再利用魚池底泥製成液肥試驗,浸泡出固定濃度的澆灌液肥廢汙,利用澆灌液肥或去離子水的方式製造5種濃度模組,作植物澆灌試驗,進行21日種植。利用種植前後之土壤分析實驗計測植物消耗之氮營養鹽,並將結果與吳郭魚單日排泄累積實驗進行計算,推估出吳郭魚與珠蔥之魚菜比例。
結果得知,利用廢汙澆灌0.329 mg的氮營養鹽,可使珠蔥有最佳生長速率,每增加1%的廢汙澆灌營養鹽可增加4.95%的植物生長。進行魚菜比例估算,可得知45±5.7g體型吳郭魚每1kg魚體所排泄之氮營養鹽,每日能夠提供93.24g的珠蔥吸收。本研究建立明確的生物排泄與植物吸收之實驗架構,提供魚菜比例計算方法,為國內魚菜共生系統配比研究之首篇,期待能對環境平衡管理型生物系統環境設計有實質助益。
zh_TW
dc.description.abstractAquaponics have brought about a new concept for food production since 1970. Aquaponics combined aquaculture and hydroponics, utilizing purified wastewater by nitrification from aquaculture, and use the water for plants. This simplified process can reduce water wasting, and creates a new way of sustainable development for agriculture.
However, the nutrients balance between the ecretion from aquatic and the abosorb from the absorption of plants which is the key to the success of running the system need to be determined by experiments. Tilapia and Shallot are the experimental subjects in this study. The total weight of 224g of Tilapia were used for the fish daily ecretion experiment. In order to irrigate the plants with the fixed concentration water, this study conducted the pond sediment soaked experiment to make simlar wastewater. There are five different irrigation types were set up into five different concentration groups by irrigating regularly with deionize or wastewater, represented by 0A,1A,2A,3A and 4A, respectively. After 21 days of irrigation experiment, the soil experiments were conducted before planting and after harvest, determining the nitrogen nutrients absorbed by Shallots. With the nitrogen nutrients data of ecretion and absorption, the ratio between the Tilapia and Shallot could be calculated.
With the experimental design of this study, the results shows that irragating Shallots by wastewater with 0.329mg of nitrogen nutrients increased 4.95% of plants growth with adding 1% nitrogen nutrients. The calculation results of fish and plants show that per kg of Tilapia (with size of 45±5.7g) could provide nitrogen nutrients for daily use by Shallot of 93.24g. This study created a new experimental architecture to find out the ratio between the fish and plants, and the results of nitrogen nutrients between fish(Tilapia) excretion and plants(Shallot) uptake could be used in Aquaponics system and help to stabilize the system. This study is the first domestic research of determining the nitrogen nutrients balance for aquaponics system.
en
dc.description.provenanceMade available in DSpace on 2021-06-15T11:50:09Z (GMT). No. of bitstreams: 1
ntu-105-R03622041-1.pdf: 2589583 bytes, checksum: 173a7ba46139b9732b12995ad9983976 (MD5)
Previous issue date: 2016
en
dc.description.tableofcontents摘要 I
Abstract II
表目錄 V
圖目錄 VI
第一章 前言 1
1.1 研究背景 1
1.2 研究動機 2
1.3研究目的 3
第二章 文獻回顧 4
2.1 魚菜共生系統研究概念 4
2.1.1養殖槽 5
2.1.2 植栽槽 6
2.1.3硝化作用 8
2.1.4 魚菜共生之魚菜比例計算 8
2.2 魚菜共生之植物營養 12
2.2.1水耕介質及液肥 12
2.2.2 魚池底泥營養 13
2.2.3 土壤介質營養 13
2.3 本研究使用生物實驗對象 14
2.3.1 珠蔥—植物 14
2.3.2 吳郭魚—水生生物 14
2.3.3 本研究設計重點 15
第三章 材料與方法 17
3.1 實驗流程 17
3.2 吳郭魚之排泄速率實驗 18
3.2.1 吳郭魚馴化 18
3.2.2吳郭魚之日液態排泄速率實驗 18
3.3 底泥浸泡製成液肥試驗 20
3.4 珠蔥生長實驗 20
3.5 土壤營養鹽消耗速率實驗 23
3.6 魚菜比例計算方式 26
第四章 結果與討論 29
4.1 吳郭魚日排泄實驗結果 29
4.2 底泥廢汙製成液肥試驗結果 32
4.3 植株生長與澆灌試驗結果 34
4.4 土壤營養鹽消耗速率與植物收成 35
4.5 魚菜比例計算 41
第五章 結論與建議 44
5.1 結論 44
5.2 建議 44
參考文獻 45
附錄 49
附表1 土壤水分含量 49
附表2. 土壤pH值 50
附表3. 土壤有機碳 51
附錄4.土壤EC值 51
附表5. 土壤有效磷 52
附表6. 土壤有效氮 53
dc.language.isozh-TW
dc.title吳郭魚與珠蔥之淡水魚菜共生系統研究zh_TW
dc.titleStudy on the Ratio of Tilapia and Shallot for Fresh Water Aquaponics Systemen
dc.typeThesis
dc.date.schoolyear104-2
dc.description.degree碩士
dc.contributor.oralexamcommittee陳尊賢,余化龍
dc.subject.keyword魚菜共生系統,魚菜比例,吳郭魚,珠蔥,氮營養鹽,zh_TW
dc.subject.keywordAquaponics system,Fish to Plants Ratio,Tilapia,Shallot,Nitrogen Nutrients,en
dc.relation.page53
dc.identifier.doi10.6342/NTU201602436
dc.rights.note有償授權
dc.date.accepted2016-08-12
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
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