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研究生: 陳琮瑜
Chen,Tsung-Yu
論文名稱: 低壓噴油嘴設計與微機電製程研發
Low Pressure Atomizer Design and UV-LIGA Micro Fabrication
指導教授: 楊鏡堂
Yang,Jing-Tang
口試委員:
學位類別: 博士
Doctor
系所名稱: 工學院 - 動力機械工程學系
Department of Power Mechanical Engineering
論文出版年: 2008
畢業學年度: 97
語文別: 中文
論文頁數: 124
中文關鍵詞: 粒徑量測儀微噴嘴微機電製程霧化
外文關鍵詞: micro-atomizers, MEMS fabrication, atomization, phase-Doppler particle anemometry, LIGA
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  • 本文主旨在於使用UV-LIGA製程製作霧化噴嘴,探討微型噴嘴在微尺度下的幾何限制,提供一種設計準則,並由套裝數值模擬軟體CFD-RC分析提供噴嘴內部流場的物理機制,分析空氣柱的成因與噴嘴幾何形狀的關係,最後以都卜勒粒徑分析儀(Phase Doppler Particle Anemometer, PDPA)實際量測霧化後的粒徑,瞭解噴嘴幾何形狀對霧化影響。
    在發展微機電製程中,對於次毫米等級的製作上向來有較難的限制,因其尺度處在於傳統製造與微米結構之間,對於傳統製程的更精密製作和微機電製程的向上堆疊能力都受到嚴格的考驗,本文使用SU-8當作噴嘴母模,其在光罩的設計上與在軟烤顯影等步驟對於溫度的敏感度有嚴苛的限制,使得需要掌握精確的時間控制才能達到準確的製作,本文成功達到1200 □m雙層光阻堆疊製作。
    壓力渦漩式噴嘴在傳統毫米等級的設計上可由一些參考工具書上得到正確的設計原則,然而邁入更小尺度的設計,其幾何尺度限制卻須備受考量,利用數值模擬我們可以得到更多的物理機制以瞭解幾何設計對壓力渦漩式噴嘴霧化的重要性。
    本文由數值分析以及實際量測噴嘴外部流場之粒徑與速度分佈,發現掌握幾何尺度最重要的參數是進液流道與釋流孔面積比值,此值是影響空氣柱形成的主要原因,比值超過4,不能形成空氣柱,最後霧化效果由PDPA量測出的粒徑明顯較大,且由垂直速度分佈場發現,其噴射方式已由壓力渦漩式轉化為平孔噴射,本文建議此比值設計在1.2~2.5之間,能得到較佳的霧化。最後量測NAG1噴嘴,其平均霧化噴嘴粒徑SMD值達到105 □m,這比目前台灣機車用噴射噴嘴的霧化效果還佳(380 □m)。


    We manufacture miniature atomizers by UV-LIGA, and investigate the influence of geometry scale of atomizer on atomization. With CFD simulation study, the air core generation and flow phenomenon within atomizers were understood. Meanwhile, the SMD of atomized droplet was measured by PDPA (Phase Doppler Particle Anemometer). It was found that SMD size of atomized droplet was inversely proportional to air core diameter.
    Sub-millimeter scale is a transient zone between traditional and MEMS manufacturing. The reasons lie on the precision of traditional fabrication and formation of thick photo-resist. In the traditional fabrication, the drill with its diameter less than 200 □m gets easily shaking, and is hard to drill a concentric circle. Moreover, it can’t manufacture high aspect ratio geometry. This work successfully manufactures micro atomizer with discharge orifice diameter less than 200 □m.
    Compared simulation data with experimental data, we organize an important parameter, contraction ratio, the ratio of inlet area to outlet area. It affects the air core generating within the atomizer. When contraction ratio is higher than 4, the air core can’t be formed. The data from PDPA also evident it generates coarse droplets even vertical velocity of center droplets is higher than those in the outer field. The spray model has transferred from swirl motion to jet motion. We recommend to design contraction ratio between 1.2~2.5 for reaching good atomization.
    Atomizer named NAG1 has Sauter mean diameter (SMD) of 105 □m, and it is the best among the designed atomizer in the presented work. And it is superior to those nozzles used in the motorcycles (380 □m).

    摘要 1 Abstract 1 目錄 3 圖表目錄 7 第一章 前 言 1 第二章 文獻回顧 4 2-1 噴霧機制與霧化特性 4 2-2 傳統噴嘴型式之設計研究 7 2-2.1 壓力渦漩式噴嘴之設計研究 8 2-2.2 氣助式噴嘴之設計研究 11 2-3 微噴嘴之設計研究 13 2-4 液滴粒徑與速度診測之技術 16 2-5 厚膜光阻SU-8製程回顧 19 2-5.1 SU-8組成與特性 19 2-5.2 SU-8製作流程 20 2-6 微小尺寸LIGA技術回顧 22 2-6.1 X-ray LIGA 23 2-6.2 ICP LIGA 25 2-6.3 Injection molding LIGA 27 2-7田口品質設計 29 第三章 實驗設計與規劃 31 3-1 微噴嘴渦漩腔設計 31 3-2 微機電製程設計 36 3-2.1 光罩設計 38 3-2.2 軟烤 40 3-2.3 曝光 42 3-2.4 曝後烤 42 3-2.5 顯影 42 3-3 噴霧流場觀測方法 43 3-3.1流場觀測 45 3-4 噴霧流場粒徑與速度量測 45 3-4.1 相位都卜勒粒徑量測儀(PDPA)原理 45 3-4.2 相位都卜勒粒徑量測儀(PDPA)架設 51 3-5 流體供應循環系統 56 3-6 其他實驗設備 56 3-6.1 雷射系統 56 3-6.2 高速攝影機 57 第四章 UV-LIGA製程結果與討論 58 4.1 SU-8母模結果分析 58 4-2電鑄製作分析 60 4-3 噴嘴製作結果 61 第五章 數值模擬 66 5-1 模組統御方程式 70 5-1.1 Flow模組 70 5-1.2 VOF模組 71 5-2 參數設定 72 5-2.1 邊界條件(BC) 72 5-2.2 初始條件(IC) 72 5-3 模擬驗證與分析 73 5-3.1網格切割與獨立 73 5-3.2 收斂度與殘值分析 77 5-3.3 實際內流場空氣柱驗證 77 5-4 數值結果分析與討論 78 5-4.1 噴嘴內部流場型態討論 79 5-4.2 噴嘴內部壓力場型態討論 81 5-4.3 噴嘴內部空氣柱討論 84 第六章 噴嘴定性與定量結果與討論 92 6-1 外流場垂直截面與噴霧錐角 92 6-2各組噴嘴速度量測分析 95 6-3各組噴嘴粒徑量測分析 99 第七章 噴嘴特性分析與討論 103 7-1噴嘴幾何尺寸與空氣柱關係 103 7-1.1 渦漩腔直徑的效應 103 7-1.2 進液流道寬度的效應 107 7-1.3 釋流孔直徑的效應 107 7-2進出口面積比值效應分析 108 7-2.1 對空氣柱大小 108 7-2.2 對噴霧錐角 111 7-2.3 對噴霧平均粒徑 111 7-3空氣柱的效應 112 7-3.1 空氣柱與噴霧錐角 113 7-3.2 液膜厚度與SMD 114 第八章 結論 115 第九章 參考文獻 117 Autobiography 122 簡 歷 123 個人資料 123 學歷 123 專長 123 經歷 124 榮譽 124

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