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  1. NTU Theses and Dissertations Repository
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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/95320
完整後設資料紀錄
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dc.contributor.advisor楊鏡堂zh_TW
dc.contributor.advisorJing-Tang Yangen
dc.contributor.author汪詠心zh_TW
dc.contributor.authorYung-Hsin Wangen
dc.date.accessioned2024-09-05T16:08:56Z-
dc.date.available2024-09-06-
dc.date.copyright2024-09-05-
dc.date.issued2024-
dc.date.submitted2024-08-13-
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Johansson, L. C., & Henningsson, P. (2021). Butterflies fly using efficient propulsive clap mechanism owing to flexible wings. Journal of the Royal Society Interface, 18(174), 20200854.
Karásek, M., Muijres, F. T., De Wagter, C., Remes, B. D., & De Croon, G. C. (2018). A tailless aerial robotic flapper reveals that flies use torque coupling in rapid banked turns. Science, 361(6407), 1089-1094.
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Lua, K. B., Lim, T. T., & Yeo, K. S. (2011). Effect of wing–wake interaction on aerodynamic force generation on a 2D flapping wing. Experiments in Fluids, 51, 177-195.
Ma, Y., Zhao, H., Ma, T., Ning, J., & Gorb, S. (2021). Wing coupling mechanism in the butterfly Pieris rapae (Lepidoptera, Pieridae) and its role in taking off. Journal of Insect Physiology, 131, 104212.
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費約翰. (2017). 蝴蝶身體俯仰動態之飛行動力機制與飛行操控研究. 國立臺灣大學機械工程學系博士論文.
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林有駿. (2022). 蝴蝶飛行之翅膀旋轉動力機制分析與翅膀撓性效應. 國立臺灣大學機械工程學系博士論文.
魯以樂. (2023). 蝴蝶轉彎之飛行動態與流場機制. 國立臺灣大學機械工程學系碩士論文.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/95320-
dc.description.abstract本文結合實驗與數值模擬方法,將實驗觀測之真實飛行動態,利用週期性傅立葉級數擬合身體與翅膀旋轉角度函數,建立三維數值流場模型,旨在探討三種蝴蝶轉彎模式間,翅身動態與流場結構渦漩、作用力等機制。
隨著攝影技術的進步,得以將蝴蝶飛行瞬間運動的連續變化過程,以每秒幀率一千的高速攝影技術同步捕捉,解析運動軌跡紀錄。本研究選用台灣南部產大白斑蝶(學名Idea leuconoe)成蟲作為實驗對象,此種蝶類拍翅頻率較低且體型大、飛行速度較慢為其特色,然而該蝴蝶依然可以靈活地操縱身體,快速地達成轉彎避敵與穿梭。為量化一個拍翅週期內蝴蝶的轉彎程度,本研究將三維空間中所記錄的自由轉彎飛行移動軌跡,經改良過往投影方法至回歸平面,並將位於回歸平面上各時刻之軌跡點群擬合出轉彎半徑,以此劃分轉彎模式。
根據空氣動力與動態分析結果,發現蝴蝶翅膀初期主動進行不對稱的拍翅運動,可影響身體之滾轉角與偏航角,分別提供轉彎初始的傾斜及偏轉條件,在下拍中期至上拍初期,飛行姿態快速轉換影響作用力方向,而時間平均下的俯仰角變化在20度以內,對於三種轉彎模式的半徑幅度具有建設性影響。內外翅動態方面,比較時間平均下的拍撲振幅量值相近,但是有著外翅下拍振幅大於內翅、上拍振幅小於內翅的特色,並且隨著轉彎模式的半徑減小,平均前翅偏移的增量差異為1.3倍。若是從流場結構觀察渦漩分布特性,與翼表面受力位置和程度息息相關。最後,本研究嘗試組合大轉彎半徑的翅膀動態與小轉彎半徑的身體動態,由數值模擬果顯示,該動態搭配方式無法提供飛行充足的升力與轉彎穩定性,代表翅身動態於時序存在耦合效應。
本研究貢獻為歸納轉彎方面,真實蝴蝶於不同轉彎模式下的飛行動態,可將蝴蝶飛行轉彎方法,應用於未來仿生撲翼及微飛行器操控性設計,提供轉彎飛行多角化的觀點與更全面的知識架構,從而最佳化飛行任務。
zh_TW
dc.description.abstractTo investigate the butterfly flight among three turning modes with wing and body motion, interaction forces, vortex structures and other mechanisms in air flow. Combing experimental and numerical simulation method, this research collected abundant of real flight motion data and modeled the three-dimensional numerical flow filed with periodic functions fitting body and wing angles by Fourier series.
As the advance in photography technologies, the high-speed cameras with 1000fps resolution could synchronous capture of the instant locomotion of butterfly flight and record for later analyze. The subject is native species Idea leuconoe, taken from southern Taiwan, been used in the biological experiment. It has low flapping frequency and large size compare to other species. However it can still maneuver its agile body making sharp turn quickly to avoid predators. To quantify the degree of turning in one stroke, the feature point set of free turning flight trajectory in three-dimension space are projected to the regression plane by improved method. Fitting these in-plane points to the circle and categorize turning mode by the radius.
According to the result analysis of aerodynamic and flight motion, in the early stage, an asymmetry flapping motion active by butterfly wings could affect yaw and roll angle of the body, respectively providing the initial tilt and deflection conditions for turning. During mid-downstroke to early upstroke stage, flight attitude rapid changes and affect the direction of response forces. While the pitch angle changes within 20 degrees under time averaging, this angle has a constructive influence to the radius length of the three turning modes. The flapping amplitude of inner and outer wing under mean time are similar, but the flap-down amplitude of the outer wing is larger than that of the inner wing, and the flap-up amplitude is in contrast, smaller than the other. As the radius of the turning mode decrease, the average forewing deviate angle increase 1.3 times. Observing the vortex distribution characteristics from the flow field, it is closely related to the position and degree of stress on the wing surface. Final section attempts to combine wing dynamics of large turning mode and body motion of small turning mode. Result shows this combination case cannot provide sufficient lift for flight and turning stability, indicating the coupling effect of motion timing.
This work summarizes the flight dynamics of real butterfly in three turning modes. The turning flight method with a diversified perspective could be applied to future biomimicry design and micro-aircraft control design, providing a more comprehensive knowledge frame work to optimize flight missions.
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dc.description.tableofcontents口試委員會審定書 i
致 謝 ii
摘 要 iii
Abstract iv
目 次 vi
圖 次 ix
表 次 xi
符號表 xii
第一章 前言 1
1-1 研究背景 1
1-2 研究動機 2
第二章 文獻回顧 3
2-1 定翼飛行背景 3
2-1.1 定翼飛行 3
2-1.2 定翼機與定翼轉彎飛行 4
2-1.3 衍伸拍撲翼飛行 4
2-2 拍撲翼飛行理論 6
2-2.1 翼渦漩 6
2-2.2 空氣動力學 7
2-3 蝴蝶飛行特色 11
2-3.1 動作與姿態 11
2-3.2 飛行軌跡 12
2-3.3 轉彎飛行特色:從生物轉彎至蝴蝶轉彎 12
2-3.4 蝴蝶轉彎飛行現況與挑戰 14
第三章 研究方法 16
3-1 研究對象 16
3-2 生物實驗 18
3-2.1 實驗樣本 18
3-2.2 實驗設置 19
3-2.3 動態資料前處理 21
3-2.4 座標系與角度定義 21
3-2.5 轉彎軌跡分類 25
3-2.6 動態函數計算 27
3-3 因次分析 27
3-4 數值模擬 29
3-4.1 統御方程式與邊界條件 30
3-4.2 求解器設定 31
3-4.3 模型建立 31
3-4.4 網格設置 34
3-4.5 獨立性檢驗 35
第四章 轉彎飛行模式 38
4-1 飛行實驗結果 38
4-1.1 轉彎軌跡 38
4-1.2 動作函數 40
4-1.3 轉彎姿態角 41
4-2 數值模擬結果 45
4-2.1 動態模擬驗證 46
4-2.2 空氣動力分析 47
4-2.3 上下拍階段流場現象 57
4-2.4 數值模擬小結 68
4-3 轉彎飛行機制探討 68
4-3.1 總體結果 69
第五章 結論與未來展望 70
5-1 結論 70
5-2 未來研究與展望 72
5-2.1 深入研究面向 72
5-2.2 轉彎飛行:應用於微飛行器 72
5-3 研究甘特圖 73
參考文獻 74
附 錄 78
附錄A - 擬合函數曲線 78
A-1 R8 轉彎動態角度 78
A-2 R16轉彎動態角度 79
A-3 R32轉彎動態角度 80
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dc.language.isozh_TW-
dc.subject自由飛行zh_TW
dc.subject蝴蝶動態zh_TW
dc.subject數值模擬zh_TW
dc.subject轉彎模式zh_TW
dc.subjectturning modeen
dc.subjectbutterfly locomotionen
dc.subjectfree turning flighten
dc.subjectnumerical simulationen
dc.title蝴蝶轉彎飛行模式與操控zh_TW
dc.titleTurning Flight Mode and Maneuver of Butterflyen
dc.typeThesis-
dc.date.schoolyear112-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee呂明璋;王安邦zh_TW
dc.contributor.oralexamcommitteeMing-Chang Lu;An-Bang Wangen
dc.subject.keyword轉彎模式,蝴蝶動態,自由飛行,數值模擬,zh_TW
dc.subject.keywordturning mode,butterfly locomotion,free turning flight,numerical simulation,en
dc.relation.page80-
dc.identifier.doi10.6342/NTU202404188-
dc.rights.note同意授權(限校園內公開)-
dc.date.accepted2024-08-14-
dc.contributor.author-college工學院-
dc.contributor.author-dept機械工程學系-
dc.date.embargo-lift2029-08-11-
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