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| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 黃振康 | |
| dc.contributor.author | Qing-Xun Gao | en |
| dc.contributor.author | 高慶勳 | zh_TW |
| dc.date.accessioned | 2021-06-17T06:42:31Z | - |
| dc.date.available | 2021-08-16 | |
| dc.date.copyright | 2018-08-16 | |
| dc.date.issued | 2018 | |
| dc.date.submitted | 2018-08-15 | |
| dc.identifier.citation | 李宗翰. (2008). 多孔性加熱表面對沸騰熱傳之影響. 臺北科技大學機電整合研究所學位論文, 1-104.
林堅楊, 連培榮, 楊庭毓, 洪偉欽, & 鄧育庭. (2009). 以陽極鋁氧化法形成奈米孔陣列. 先進工程學刊, 4(1), 71-75. Berry, J. D., Neeson, M. J., Dagastine, R. R., Chan, D. Y., & Tabor, R. F. (2015). Measurement of surface and interfacial tension using pendant drop tensiometry. Journal of colloid and interface science, 454, 226-237. Buijnsters, J. G., Zhong, R., Tsyntsaru, N., & Celis, J.-P. (2013). Surface wettability of macroporous anodized aluminum oxide. ACS applied materials & interfaces, 5(8), 3224-3233. Cai, S. Q., & Bhunia, A. (2017). Superhydrophobic Condensation Enhanced by Conical Hierarchical Structures. The Journal of Physical Chemistry C, 121(18), 10047-10052. Cassie, A., & Baxter, S. (1944). Wettability of porous surfaces. Transactions of the Faraday society, 40, 546-551. Deng, X., Mammen, L., Butt, H.-J., & Vollmer, D. (2012). Candle soot as a template for a transparent robust superamphiphobic coating. Science, 335(6064), 67-70. Earle, R. L. (2013). Unit operations in food processing: Elsevier. Ivanovskii, M., Subbotin, V., & Milovanov, Y. V. (1967). Heat transfer with dropwise condensation of mercury vapour. Kamaraj, A. B., Shaw, V., & Sundaram, M. M. (2015). Novel fabrication of un-coated super-hydrophobic aluminum via pulsed electrochemical surface modification. Procedia Manufacturing, 1, 892-903. Kim, S., & Kim, K. J. (2011). Dropwise condensation modeling suitable for superhydrophobic surfaces. Journal of heat transfer, 133(8), 081502. Lafuma, A., & Quéré, D. (2003). Superhydrophobic states. Nature materials, 2(7), 457. Lafuma, A., & Quéré, D. (2011). Slippery pre-suffused surfaces. EPL (Europhysics Letters), 96(5), 56001. Lee, M. H., Lim, N., Ruebusch, D. J., Jamshidi, A., Kapadia, R., Lee, R., . . . Fan, Z. (2011). Roll-to-roll anodization and etching of aluminum foils for high-throughput surface nanotexturing. Nano letters, 11(8), 3425-3430. Lo, C. W., Wang, C. C., & Lu, M. C. (2014). Spatial control of heterogeneous nucleation on the superhydrophobic nanowire array. Advanced Functional Materials, 24(9), 1211-1217. Preston, D. J., Mafra, D. L., Miljkovic, N., Kong, J., & Wang, E. N. (2015). Scalable graphene coatings for enhanced condensation heat transfer. Nano letters, 15(5), 2902-2909. Rose, J. (2002). Dropwise condensation theory and experiment: a review. Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy, 216(2), 115-128. Schmidt, E., Schurig, W., & Sellschopp, W. (1930). Versuche, Über die kondensation in film-und tropfenform, Technol. Mech. Thermodyn. Forsch. Ing. Wes, 1, 53-63. Seo, D., Lee, J., Lee, C., & Nam, Y. (2016). The effects of surface wettability on the fog and dew moisture harvesting performance on tubular surfaces. Scientific reports, 6, 24276. Stauffer, C. E. (1965). The measurement of surface tension by the pendant drop technique. The journal of physical chemistry, 69(6), 1933-1938. Tanasawa, I. (1991). Advances in condensation heat transfer. Advances in heat transfer, 21, 55-139. Varshney, P., Mohapatra, S. S., & Kumar, A. (2016). Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process. International Journal of Smart and Nano Materials, 7(4), 248-264. Wenzel, R. N. (1936). Resistance of solid surfaces to wetting by water. Industrial & Engineering Chemistry, 28(8), 988-994. University of Minnesota. 2011. Surface Texturing. the University of Minnesota Available at:http://www.me.umn.edu/~lixxx099/EFRI_CAES/Research/texturing.htm. Accessed 1 April 2018 Splung.com physics. 2018. Latent Heat Splung Physics Forum Available at:http://www.splung.com/content/sid/6/page/latentheat. Accessed 15 March 2018 | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/72436 | - |
| dc.description.abstract | 物質相變化會伴隨帶來大量的能量交換現象,沸騰、凝結、冰塊融化等都屬於物質相變化的範疇,水氣的結露現象也是一個相變化現象,因此預期會有較大的能量交換現象。
本研究將以Al-1050、SUS304、銅與鈦作為基板,以數種表面處理方式對其表面進行改質,來觀察表面改質對於表面結露現象的影響,改質後的表面藉由顯微鏡表面觀測、接觸角量測、表面熱傳量計算、露點溫度判斷來做討論。 將表面處理之樣品與原始表面之樣品進行梯次降溫之實驗,於梯次降溫的過程中,以資料擷取器紀錄每次降溫狀態達到穩態時之溫度數據,利用水套內部溫度梯度推算表面之熱傳量,並且於表面溫度降溫至接近露點溫度時,減少降溫幅度,以得到較為準確之露點溫度。數種樣品當中,以陽極處理之Al-1050樣品對於結露溫度之改變最為顯著,表面產生結露之溫度較理論露點溫度下降2.5oC,陽極處理之Al-1050樣品產生滴式結露,其他處理之樣品則產生膜式結露之現象。 Al-1050鋁合金行陽極處理的過程,以4 oC之0.3 M草酸作為電解質,30V外加電壓下進行第一步驟陽極處理3小時,再以50%之磷酸去除不規則氧化鋁,留下排序整齊之孔洞於表面上,再以25oC之0.3 M草酸作為電解質,30V外加電壓下進行第二步驟陽極處理1.5小時以增加氧化層厚度,可製作出孔徑30~50 nm結構較完整且均勻之陽極處理表面。 由於液滴凝結量較少,因而產生的潛熱量不大,於本量測系統中不能看到表面之熱傳量因液滴凝結而產生變化之現象 | zh_TW |
| dc.description.abstract | The phase-change process is going to absorb or release a large amount of energy. Boiling, condensing and melting are all phase-change process. Dewing of wet air is also a phase-change process, so is expected to transfer a large amount of energy.
In this study, Al-1050, SUS304, Copper and Titanium are the substrates. Several surface treatments were conducted on the substrates. The modified surfaces by observing with microscope, measuring contact angle, calculating surface heat transfer rate and dew point, were discussed in this work. The modified surface and the original surface were conducted stepwise cooling experiments. A data logger recorded the steady state temperature of every cooling step during the stepwise cooling experiment, and the temperature gradients in the cooling system were to calculate the heat transfer rate of each surface. When the surface temperature was close dew point, the temperature difference of every cooing step was reduced to get an accurate dew point. The maximum difference between the surface dew point and theoretical dew point of surrounding, 2.5 oC was achieved by the anodic aluminum oxide on the Al-1050 surface. The AAO- Al-1050 surface showed the formation of DWC in the cooling experiment, but the other surfaces with different surface treatments showed the formation of FWC in the cooling experiment. To preparation of AAO Surfaces on the commercial aluminum alloy 1050, the first anodization step applied constant anodization voltage of 30 V in electrolytes of 0.3 M oxalic acid at 4 oC. After 3 hours of first anodization, the alumina layer was removed from the aluminum substrate using a mixture of 50 wt % phosphoric acid, leaving a highly ordered concave pattern on the surface of the samples. Following, a second anodization step applied constant anodization voltage of 30 V in electrolytes of 0.3 M oxalic acid at 25 oC. for 1.5 hours in order to increasing the film thickness. After the two-step anodization process, the AAO- Al-1050 surface with pore diameter about 30 nm to 50 nm was manufactured. There were very few droplets dewing on the surface, so the measured heat transfer rate didn’t increase when dewing occurred. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-17T06:42:31Z (GMT). No. of bitstreams: 1 ntu-107-R05631040-1.pdf: 5461675 bytes, checksum: 3e5ce96977bfa64c96d673eba8bdc430 (MD5) Previous issue date: 2018 | en |
| dc.description.tableofcontents | 目錄
致謝 i 摘要 ii Abstract iii 圖目錄 vii 表目錄 x 第一章 前言 1 1.1研究背景 1 1.2 研究目的 2 第二章 文獻探討 5 2.1 結露現象 5 2.2凝結狀態對於熱傳效率的影響 6 2.3 表面處理方式對於親疏水性之影響 8 2.4 改善液滴滑落性質 11 2.5 評估表面處理對於凝結效果與熱傳量之方法 15 第三章 材料與方法 16 3.1 實驗設備 16 3.1.1 冷卻系統 17 3.1.2 觀察系統 18 3.1.3 量測系統 19 3.2 實驗步驟與方法 21 3.2.1 同步實驗 21 3.2.2 溫度計校正與同步空白實驗 21 3.2.3 實驗流程 26 3.2.3 降溫實驗降溫方式探討 27 3.2.4 表面製作方式 29 第四章 結果與討論 30 4.1 表面基本性質 30 4.1.1 原始表面 30 4.1.2 Al-1050碳粒微結構表面 32 4.1.3 Al-1050陽極處理表面 33 4.1.4 經噴砂處理Al-1050表面 36 4.1.5 表面接合銅網之SUS304表面 37 4.1.6 經噴砂處理SUS304表面 38 4.1.7 表面接合銅網之鈦表面 39 4.1.8 經噴砂處理鈦表面 40 4.1.9 表面接合銅網之銅表面 41 4.1.10 經噴砂處理銅表面 42 4.2 液滴結露溫度分析 45 4.3 表面之熱傳性質比較 47 4.4 陽極處理對於結露現象之差異 57 4.5 噴砂處理與表面接合銅網對於結露現象之差異 60 4.6 實驗誤差來源分析探討 61 第五章、結論 62 5.1 結論 62 5.2 建議. 63 參考文獻 65 | |
| dc.language.iso | zh-TW | |
| dc.subject | 除濕熱傳 | zh_TW |
| dc.subject | 表面處理 | zh_TW |
| dc.subject | 露點溫度 | zh_TW |
| dc.subject | 疏水性 | zh_TW |
| dc.subject | dehumidification heat transfer | en |
| dc.subject | dew point | en |
| dc.subject | surface treatment | en |
| dc.subject | hydrophobic | en |
| dc.title | 表面處理對露點及其熱傳之影響 | zh_TW |
| dc.title | The Effects of Surface Treatments
on the Dew Point and Its Heat Transfer | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 106-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 蘇程裕,陳洵毅 | |
| dc.subject.keyword | 除濕熱傳,露點溫度,表面處理,疏水性, | zh_TW |
| dc.subject.keyword | dehumidification heat transfer,dew point,surface treatment,hydrophobic, | en |
| dc.relation.page | 66 | |
| dc.identifier.doi | 10.6342/NTU201803469 | |
| dc.rights.note | 有償授權 | |
| dc.date.accepted | 2018-08-15 | |
| dc.contributor.author-college | 生物資源暨農學院 | zh_TW |
| dc.contributor.author-dept | 生物產業機電工程學研究所 | zh_TW |
| 顯示於系所單位: | 生物機電工程學系 | |
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