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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 機械工程學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/24198
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor陳希立
dc.contributor.authorWei-Chien Maen
dc.contributor.author馬瑋鍵zh_TW
dc.date.accessioned2021-06-08T05:18:16Z-
dc.date.copyright2011-08-08
dc.date.issued2011
dc.date.submitted2011-07-29
dc.identifier.citation1.V.H. Meadows, rotary ventilator, United State patent, US1,857,762, 1932.
2.江哲銘,「建築物理」,三民書局,1997。
3.A. Revel, “Testing of 2 wind driven roof ventilator,” Available from: www.edmonds.com.au, 1998.
4.C. Lai, “Experiments on the ventilation efficiency of turbine ventilator used for building and factory ventilation”, Energy Buildings 35, pp. 927–932, 2003.
5.J.D. Dale and M.Y. Ackerman, “Evaluation of the performance of attic turbine ventilators,” ASHRAE Transactions 99 (1), pp. 14–22, 1993.
6.N. Khan, Y. Su, S.B. Riffat and C. Biggs, Performance testing and comparison of turbine ventilator,” Renewable Energy 33, pp. 2441–2447, 2008.
7.王承陽、徐廣儁、高標、赫冀成,「風動力屋頂排風機性能分析及實驗研究」,東北大學期刊,第28卷第5期,2007。
8.S. Shun and N.A. Ahmed, “Utilizing wind and solar energy as power sources for a hybrid building ventilation device,” Renewable Energy 33, pp. 1392–1397, 2008.
9.N. Khan, Y. Su and S.B. Riffat, “A review on wind driven ventilation techniques,” Energy and Buildings 40, pp. 1586–1604, 2008.
10.A.S. Farahani , N.M. Adam and M.K.A Ariffin, “Simulation of airflow and aerodynamic forces acting on a rotating turbine ventilator,” American Journal of Engineering and Applied Sciences 3, pp. 159-170, 2010.
11.S.J. Lien, and N.A. Ahmed, “Numerical simulation of rooftop ventilator flow,” Building and Environment 45, pp. 1808-1815, 2010.
12.Y. Lin, T. Shieh, C. Chiang and C. Lai, “How the rooftop turbine ventilator powered by hybrid renewable energy affects factory ventilation performance,” Journal of Process Mechanical Engineering, pp. 224-275, 2010.
13.B.R. Hughes, H.N. Chaudhry and S.A. Ghani, “A review of sustainable cooling technologies in buildings,” Renewable and Sustainable Energy Reviews 15 pp. 3112-3120, 2011.
14.B.R. Munson, D.F. Young, and T.H. Okiishi, “Fundamentals of fluid mechanics,”5th edition, Wiley, 2006.
15.F. M. White, “Fluid mechanics,” McGraw-Hill, 1986.
16.H. Schlichting, and K. Gersten, “Boundary layer theory,” 7th edtion, McGraw-Hill, 1979.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/24198-
dc.description.abstractThis study intends to improve the operational performance of commercially available turbine ventilator. The idea of improvements is to design different types of wind deflector and tail fin that are attached peripheral to the impeller. Wind deflector provides guidance for the air current and mends the flow problem, thus increases the rotation speed of impeller, enhance the exhaust ability of ventilator and boost induced flow rate. The tail fin is attached to the rear side of wind deflector, which makes the whole device adaptable to any wind direction and keeps it at proper aweather position.
This study starts with setting up the baseline of the prototype of ventilator, then proposes two improved models, applied respectively to the test of two different prototypes. The experimental parameters are the speed of incoming current, the angle of wind deflector’s opening and the deviation angle of tail fin. The correlations between each parameter and the rotation rate of impeller or induced flow rate are established on measured data, for the purpose of investigating the influence each parameter caused on the enhancement of turbine ventilator’s performance.
According to the results of experimental measurement, under the first improved model, the turbine ventilator reached the highest average rotational speed of impeller when the angle of wind deflector ‘s opening, θo, equals 0° or 22.5° and the highest induced flow rate when θo equals 112.5°. Under the second improved model, the turbine ventilator reached the highest average rotational speed of impeller when the deviation angle of tail fin, θd, equals 5° and 10°, while the tail fin can always promptly respond to the flow of different wind directions and accomplish its directional effect.
The patent of this study is applied. Guided fluid driven turbine(Patent Taiwan: I255880 U.S.: 7086824 China: 200410069797.7 200910157236.5 Patent Pending: Japan).
en
dc.description.provenanceMade available in DSpace on 2021-06-08T05:18:16Z (GMT). No. of bitstreams: 1
ntu-100-R98522120-1.pdf: 3870353 bytes, checksum: d206036ff0aed73905211d2c74bf6f12 (MD5)
Previous issue date: 2011
en
dc.description.tableofcontents誌謝 I
摘要 II
Abstract III
目錄 V
圖目錄 VII
表目錄 X
符號說明 XI
第一章 緒論 1
1.1 前言 1
1.2 文獻回顧 3
1.2.1 運作性能的實驗與討論 3
1.2.2 電腦數值分析軟體模擬 5
1.3 研究動機與目的 6
1.4 本文架構 7
第二章 基礎理論 19
2.1 渦輪通風機運作原理 19
2.1.1 伯努利原理 19
2.1.2 煙囪效應 20
2.2 外流場之特性 21
2.2.1 阻力與升力之概念 21
2.2.2 阻力 23
2.2.3 升力 24
2.3 流場現象 25
2.3.1 流體分離 25
2.3.2 迴流 25
2.4 相似定律 26
第三章 實驗設備及研究方法 34
3.1 實驗系統簡介 34
3.2 實驗設備與量測儀器 35
3.3 實驗方法 37
3.4 實驗參數 38
3.4.1 模擬風源之風速 38
3.4.2導風板開口角度 39
3.4.3尾翼偏移角度 39
3.5 實驗流程 39
3.5.1渦輪通風機葉輪轉速量測實驗 40
3.5.2渦輪通風機排氣量量測實驗 40
3.5.3尾翼偏移角度與葉輪轉速量測實驗 41
3.6 分析方法 42
第四章 結果與討論 55
4.1 來流風速對渦輪通風機性能之影響 55
4.2 導風板開口角度對渦輪通風機性能之影響 56
4.3 尾翼偏移角度對渦輪通風機性能之影響 57
4.4 實驗結果與討論 58
第五章 結論與建議 75
5.1 結論 75
5.2 建議 76
參考文獻 78
dc.language.isozh-TW
dc.subject尾翼zh_TW
dc.subject排氣量zh_TW
dc.subject渦輪通風機zh_TW
dc.subject葉輪轉速zh_TW
dc.subject導風板zh_TW
dc.subjectTurbine ventilatoren
dc.subjectInduced flow rateen
dc.subjectRotational speeden
dc.subjectTail finen
dc.subjectWind deflectoren
dc.title渦輪通風機性能之改良與設計zh_TW
dc.titleThe Performance Improvement and Design of Turbine Ventilatoren
dc.typeThesis
dc.date.schoolyear99-2
dc.description.degree碩士
dc.contributor.oralexamcommittee李文興,江沅晉,張至中
dc.subject.keyword渦輪通風機,導風板,尾翼,葉輪轉速,排氣量,zh_TW
dc.subject.keywordTurbine ventilator,Wind deflector,Tail fin,Rotational speed,Induced flow rate,en
dc.relation.page79
dc.rights.note未授權
dc.date.accepted2011-07-29
dc.contributor.author-college工學院zh_TW
dc.contributor.author-dept機械工程學研究所zh_TW
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