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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 應用力學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/94286
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor李雨zh_TW
dc.contributor.advisorU Leien
dc.contributor.author廖禹喨zh_TW
dc.contributor.authorYu-Liang Liaoen
dc.date.accessioned2024-08-15T16:37:38Z-
dc.date.available2024-08-16-
dc.date.copyright2024-08-15-
dc.date.issued2024-
dc.date.submitted2024-08-09-
dc.identifier.citation1. Bird, R. B., Armstrong, R. C., & Hassager, O. (1987). Dynamics of polymeric liquids. Vol. 1: Fluid mechanics, 2nd ed., John Wiley & Sons.
2. Bird, R. B. (2002). Transport phenomena. Appl. Mech. Rev., 55(1), R1-R4.
3. Weissenberg, K. (1947). A continuum theory of rheological phenomena. Nature, 159, 310-311.
4. David FJ. (1966). Open channel siphon with viscoelastic fluids. Nature, 212, 754-756.
5. Kaye, A. (1963). A Bouncing Liquid Stream. Nature, 197, 1001-1002.
6. Bird, R. B., Curtiss, C. F., Armstrong, R. C., & Hassager, O. (1987). Dynamics of polymeric liquids, volume 2: Kinetic theory, 2nd ed., John Wiley & Sons.
7. Yuan, C., Zhang, H. N., Li, Y. K., Li, X. B., Wu, J., & Li, F. C. (2020). Nonlinear effects of viscoelastic fluid flows and applications in microfluidics: A review. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 234(22), 4390-4414.
8. Ramsay, J., Simmons, M. J. H., Ingram, A., & Stitt, E. H. (2016). Mixing performance of viscoelastic fluids in a Kenics KM in-line static mixer. Chemical Engineering Research and Design, 115, 310-324.
9. Thakur, R. K., Vial, C., Nigam, K. D. P., Nauman, E. B., & Djelveh, G. (2003). Static mixers in the process industries—a review. Chemical engineering research and design, 81(7), 787-826.
10. Ghanem, A., Lemenand, T., Della Valle, D., & Peerhossaini, H. (2014). Static mixers: Mechanisms, applications, and characterization methods – A review. Chemical engineering research and design, 92(2), 205-228.
11. Goldshmid, J., Samet, M., & Wagner, M. (1986). Turbulent mixing at high dilution ratio in a Sulzer-Koch static mixer. Industrial & Engineering Chemistry Process Design and Development, 25(1), 108-116.
12. Baker, J. R. (1991). Motionless mixers stir up new uses. Chemical engineering progress, 87(6), 32-38.
13. Yasuda, K. Y., Armstrong, R. C., & Cohen, R. E. (1981). Shear flow properties of concentrated solutions of linear and star branched polystyrenes. Rheologica Acta, 20(2), 163-178.
14. Giesekus, H. (1982). A simple constitutive equation for polymer fluids based on the concept of deformation-dependent tensorial mobility. Journal of Non-Newtonian Fluid Mechanics, 11(1-2), 69-109.
15. Liu, S., Hrymak, A. N., & Wood, P. E. (2006). Laminar mixing of shear thinning fluids in a SMX static mixer. Chemical Engineering Science, 61(6), 1753-1759.
16. Gan, H. Y., Lam, Y. C., & Nguyen, N. T. (2006). Polymer-based device for efficient mixing of viscoelastic fluids. Applied Physics Letters, 88(22).
17. Gan, H. Y., Lam, Y. C., Nguyen, N. T., Tam, K. C., & Yang, C. (2007). Efficient mixing of viscoelastic fluids in a microchannel at low Reynolds number. Microfluidics and Nanofluidics, 3, 101-108.
18. Singh, M. K., Anderson, P. D., & Meijer, H. E. (2009). Understanding and optimizing the SMX static mixer. Macromolecular rapid communications, 30(4‐5), 362-376.
19. Lim, V., Hobby, A. M., McCarthy, M. J., & McCarthy, K. L. (2015). Laminar mixing of miscible fluids in a SMX mixer evaluated by magnetic resonance imaging (MRI). Chemical Engineering Science, 137, 1024-1033.
20. Mihailova, O., O'sullivan, D., Ingram, A., & Bakalis, S. (2016). Velocity field characterization of Newtonian and non-Newtonian fluids in SMX mixers using PEPT. Chemical Engineering Research and Design, 108, 126-138.
21. Zhang, M., Cui, Y., Cai, W., Wu, Z., Li, Y., Li, F., & Zhang, W. (2018). High mixing efficiency by modulating inlet frequency of viscoelastic fluid in simplified pore structure. Processes, 6(11), 210.
22. Migliozzi, S., Mazzei, L., & Angeli, P. (2021). Viscoelastic flow instabilities in static mixers: Onset and effect on the mixing efficiency. Physics of Fluids, 33(1).
23. Michael, V., Dawson, M., Prosser, R., & Kowalski, A. (2022). Laminar flow and pressure drop of complex fluids in a Sulzer SMX+ TM static mixer. Chemical Engineering Research and Design, 182, 157-171.
24. John, T. P., Poole, R. J., Kowalski, A., & Fonte, C. P. (2024). Viscoelastic flow asymmetries in a helical static mixer and their impact on mixing performance. Journal of Non-Newtonian Fluid Mechanics, 323, 105156.
25. 白翊宏. (2021). 靜態混合器內混合現象的數值研究. 臺灣大學應用力學研究所學位論文, 2021, 1-67.
26. 賴泓翰. (2022). 互溶/不互溶流體於靜態混合器中混合的數值研究. 臺灣大學應用力學研究所學位論文, 2022, 1-62.
27. 賴冠廷. (2023). 突縮流道內黏彈流體混合的數值研究. 臺灣大學應用力學研究所學位論文, 2023, 1-73.
28. COMSOL Multiphysics. CFD Module User’s Guide. 2024; Available From: https://doc.comsol.com/6.2/doc/com.comsol.help.cfd/CFDModuleUsersGuide.pdf
29. COMSOL Multiphysics. Polymer Flow Module User’s Guide. 2024; Available From: https://doc.comsol.com/6.2/doc/com.comsol.help.polymer/PolymerFlowModuleUsersGuide.pdf
30. COMSOL Multiphysics. Mixer Module User’s Guide. 2024; Available From: https://doc.comsol.com/6.2/doc/com.comsol.help.mixer/MixerModuleUsersGuide.pdf
31. Benchabane, A., & Bekkour, K. (2008). Rheological properties of carboxymethyl cellulose (CMC) solutions. Colloid and Polymer Science, 286(10), 1173-1180.
32. Shaqfeh, E. G. (1996). Purely elastic instabilities in viscometric flows. Annual Review of Fluid Mechanics, (28), 129-185.
33. Groisman, A., & Steinberg, V. (2000). Elastic turbulence in a polymer solution flow. Nature, 405(6782), 53-55.
34. Samanta, D., Dubief, Y., Holzner, M., Schäfer, C., Morozov, A. N., Wagner, C., & Hof, B. (2013). Elasto-inertial turbulence. Proceedings of the National Academy of Sciences, 110(26), 10557-10562.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/94286-
dc.description.abstract本研究透過COMSOL Multiphysics計算軟體進行數值模擬。在層流條件下,利用稀薄質傳法(Transport of Diluted Species),計算黏彈流體於靜態混合器中流場和濃度場,並進而分析其混合效果及壓降。本文所選用之混合器元件共有兩種,分別為SMX元件及突縮圓管(Sudden Contraction Tube,簡稱SCT)元件。通過調整元件種類、排列、及元件中的幾何參數,並選用不同黏度之流體,和不同流體模型(以反應不同程度之彈性效應)進行計算,以探討其對混合效果的影響。
經本文的研究,可得以下結論:(1)經與實驗比較,採用黏彈模型(如Giesekus Model)較採用剪切稀化模型(如Carreau Model)所得的計算結果更能與實驗結果相符,後者約低估了18%的混合效果;但前者卻需多耗約5倍計算時間、且兩種模型的計算結果定性相符,故建議如作靜態混合器參數的最佳化研究,可採用剪切稀化模型。(2)如使用標準SMX靜態混合器對黏彈流體或較黏牛頓流體進行混合,其最佳化幾何設計參數可採用文獻上提出的設計公式,Np=2/3Nx-1 和 Nθ=90,其中Nx為跨越流道寬度的橫桿數目,Np為沿著流道的平行橫桿數目,Nθ為相鄰兩橫桿之間的角度。唯由該公式可得多於一組的設計參數,宜選擇較少桿件那組以降低混合器壓降,最終得出 Nx=6、Np=3、Nθ=90;對於黏度較低(如水)之流體,使用商業標準之SMX混合器,即可達到最有效的混合。(3)相較於SMX靜態混合器,SMX+SCT混合器在能量耗損方面明顯增加,需根據具體應用來選擇合適的混合器。(4)隨著魏森貝格數(Weissenberg Number)的增加,流體的彈性效應增強,能量耗損也隨之減少,流體的混合效果獲得改善。
本研究為設計高效能的靜態混合器提供理論基礎,對提升工業製程中的混合效率具有重要意義,不僅可應用於化工、製藥、食品加工等傳統工業,還有助推動新興領域如生物工程和材料科學中的應用。
zh_TW
dc.description.abstractNumerical simulations were performed for studying the flow field and concentration field of viscoelastic fluids in static mixers, and thus the mixing performance and pressure drop were analyzed, using Transport of Diluted Species Method, with the aid of COMSOL Multiphysics, under laminar conditions. Two mixing elements were employed, the SMX element and the Sudden Contraction Tube (SCT) element. The mixing performance was analyzed for varied mixers with different combinations of mixing elements (different types and arrangements), using different fluids with different viscosities, and different constitutive models accounting for various elastic effects.
Several findings are as follows. (1) The calculations using the viscoelastic model (such as the Giesekus Model, which accounts more appropriate the elastic effect) are more consistent with the experimental results than those using the shear thinning model (such as the Carreau Model), and the latter underestimates the mixing effect by about 18%. However, the calculation time using the Giesekus Model is about 5 times longer than that using the Carreau Model, and both calculations are qualitatively similar. Therefore, it is recommended to use the shear thinning model for optimization research on static mixer parameters. (2) For the widely-used SMX static mixer in industry, the universal design rule, Np=2/3Nx-1 and Nθ=90, proposed in the literature, can be applied for the mixing of viscoelastic fluids and viscous Newtonian fluids, according to the present calculation. Here Nx represents the number of cross-bars over the width of mixer, Np represents the number of parallel cross-bars per element, and Nθ represents the angle between opposite cross-bars. However, the design rule can yield multiple sets of design parameters, and the set with fewer bars should be chosen for smaller pressure drop across the mixer. The final parameters for mixing optimization is Nx=6、Np=3、Nθ=90. For fluids with lower viscosity (such as water), using the commercial standard SMX mixer can achieve the most efficient mixing. (3) Compared to the SMX static mixer, the SMX+SCT mixer has significantly higher energy consumption, so the appropriate mixer should be selected based on the specific application. (4) As the Weissenberg number increases, the elastic effects of the fluid are enhanced, resulting in reduced energy consumption and improved mixing performance.
This study provides a theoretical basis for designing high-efficiency static mixers, which is of great significance for improving the mixing efficiency in industrial processes. It can be applied not only in traditional industries such as chemical engineering, pharmaceuticals, and food processing, but also in emerging fields such as bioengineering and materials science.
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dc.description.provenanceSubmitted by admin ntu (admin@lib.ntu.edu.tw) on 2024-08-15T16:37:38Z
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dc.description.provenanceMade available in DSpace on 2024-08-15T16:37:38Z (GMT). No. of bitstreams: 0en
dc.description.tableofcontents序言 i
中文摘要 ii
ABSTRACT iii
目次 v
圖次 vii
表次 xi
符號說明 xii
1 第一章 緒論 1
1.1 簡介–黏彈流體 1
1.2 簡介–靜態混合器 2
1.3 文獻回顧 4
1.4 研究動機 8
2 第二章 理論模型 10
2.1 物理模型與基本假設 10
2.1.1 SMX 靜態混合器 10
2.1.2 SMX+SCT混合器 13
2.1.3 基本假設 15
2.2 流體性質 15
2.2.1 流體模型 15
2.3 統御方程式 18
2.3.1 內部流場 18
2.3.2 稀薄質傳法 21
2.3.3 混合指標 22
2.4 初始條件與邊界條件 22
2.5 COMSOL Multiphysics計算軟體 24
3 第三章 結果與討論 26
3.1 網格設定 27
3.2 SMX幾何結構對於混合之影響 30
3.2.1 不同 Nx 之參數設計 32
3.2.2 不同 Np 之參數設計 33
3.2.3 不同 Nθ 之參數設計 35
3.2.4 最佳化設計與實驗結果比較 37
3.3 不同流體對於SMX混合器之影響 39
3.4 SMX+SCT混合器之混合情形 42
3.4.1 不同突縮比之影響 43
3.4.2 不同SCT長度之影響 47
3.5 黏彈流體模型與實驗結果比較 50
3.5.1 定性分析 50
3.5.2 定量分析 52
3.5.3 法向應力差 55
3.6 不同魏森貝格數之混合情形 59
4 第四章 結論與未來展望 63
參考文獻 64
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dc.language.isozh_TW-
dc.subject靜態混合器zh_TW
dc.subject黏彈流體zh_TW
dc.subject壓力降zh_TW
dc.subject混合指標zh_TW
dc.subject層流混合zh_TW
dc.subjectLaminar mixingen
dc.subjectPressure dropen
dc.subjectMixing indexen
dc.subjectViscoelastic fluidsen
dc.subjectStatic mixersen
dc.title黏彈流體於靜態混合器中混合的數值研究zh_TW
dc.titleNumerical study of mixing of viscoelastic fluids in static mixersen
dc.typeThesis-
dc.date.schoolyear112-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee雷顯宇;田華忠zh_TW
dc.contributor.oralexamcommitteeHsien-Yu Lei;Hwa-Chong Tienen
dc.subject.keyword黏彈流體,靜態混合器,層流混合,混合指標,壓力降,zh_TW
dc.subject.keywordViscoelastic fluids,Static mixers,Laminar mixing,Mixing index,Pressure drop,en
dc.relation.page67-
dc.identifier.doi10.6342/NTU202402077-
dc.rights.note同意授權(全球公開)-
dc.date.accepted2024-08-12-
dc.contributor.author-college工學院-
dc.contributor.author-dept應用力學研究所-
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