| 研究生: | 王怡然 Wang, I-Jan | 
|---|---|
| 論文名稱: | 受磁場與化學反應下微極流體在垂直波形板表面之暫態混合對流熱傳研究 Study on Transient Mixed Convective Heat Transfer of Micropolar Fluid Flow through a Vertical Wavy Plate under Magnetic Field and Chemical Reaction Effects | 
| 指導教授: | 陳朝光 Chen, Chao-Kuang | 
| 學位類別: | 碩士 Master | 
| 系所名稱: | 工學院 - 機械工程學系 Department of Mechanical Engineering | 
| 論文出版年: | 2003 | 
| 畢業學年度: | 91 | 
| 語文別: | 中文 | 
| 論文頁數: | 102 | 
| 中文關鍵詞: | 三次樣線法 、微極流體 、座標轉換 | 
| 外文關鍵詞: | SADI, coordinate transformation, micropolar fluids | 
| 相關次數: | 點閱:101 下載:4 | 
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本文以座標轉換系統探討磁場及化學反應作用下微極流體通過垂直波形表面之混合對流的暫態行為。統制方程式之推導由完整的Navier-Stokes方程式著手,配合Eringen所推導之微極流體理論將牛頓流體擴展至非牛頓流體的應用。經轉換後之統制方程式可將不規則邊界展開成一規則的計算平面,並配合三次樣線交換方向定置法(SADI;Spline Alternating-Direction Implicit Method) 求解。
研究結果顯示,因微粒懸浮流體具有渦漩黏度、旋轉梯度黏度及微慣量密度等特性,因此造成流動阻力增加及熱傳率、質傳率下降。在加入磁場後,產生的Lorentz力為逆著浮力的方向,抵消了部分浮力效應,促使流體運動趨緩,熱傳、質傳效果因而變差。由於化學反應導致流體中濃度產生變化,流場中濃度梯度不再侷限在單一方向,在質傳率上的影響亦遠比熱傳率強烈。綜合本文實例發現,波形表面所增加的熱傳面積足以抵消因由表面幾何形狀所造成的流動不便所產生之熱阻抗。因此在波形表面的熱傳率皆高於相對應的平板。此外,值得注意的是,通常熱傳、質傳效率的增加亦隱含著板面摩擦係數的增加。
In this study, the coordinate transformation method is used to analyze the transient behavior of the mixed convection in micropolar fluids flow through a vertical wavy surface under magnetic field and    chemical raction effect. The governing equations of system are derived from complete Navier-Stokes equations with theories of micropolar fluids, and we can expand the applications from in Newtonian fluids to in non-Newtonian fluids. The transformed governing equations can expand the irregular boundary into a calculable regular plane, and then solve it by using the spline alternating-direction implicit method (SADI).
Numerical results show that, in micropolar fluids, with the velocity of fluid and heat transfer rate and mass transfer rate would decrease since effets of vortex viscosity, spin-gradient viscosity and micro-inertia density. After entering the magnetic field, the produced Lorentz force opposed the 
buoyancy effects, and urges the fluid motion into slowing, then the effects
on heat transfer and mass transfer are going to decrease. The chemical reaction induces the concentration change of the fluid, and the concentration gradient in the fluid is not only in one direction. It leads that the effects on mass transfer rate is much stronger than the effects on heat transfer rate.
    The synthetic result show that the add quantity of heat transfer area in wavy surfaces is enough to offset the thermal resistance which is due to the geometry surfaces. Therefore, the heat transfer rate of wavy surface is higher than that of the corresponding flat plate in all fluids. Furthermore, it should be noted that the increase in heat transfer rate usually implies the increase in skin-friction coefficient.
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