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Modeling of fluid flow and heat transfer for optimization of pin-fin heat sinks.

机译:为优化针翅式散热器而设计的流体流动和传热模型。

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摘要

In this study, an entropy generation minimization procedure is employed to optimize the overall performance (thermal and hydrodynamic) of isolated fin geometries and pin-fin heat sinks. This allows the combined effects of thermal resistance and pressure drop to be assessed simultaneously as the heat sink interacts with the surrounding flow field. New general expressions for the entropy generation rate are developed using mass, energy, and entropy balances over an appropriate control volume. The formulation for the dimensionless entropy generation rate is obtained in terms of fin geometry, longitudinal and transverse pitches, pin-fin aspect ratio, thermal conductivity, arrangement of pin-fins, Reynolds and Prandtl numbers. It is shown that the entropy generation rate depends on two main performance parameters, i.e., thermal resistance and the pressure drop, which in turn depend on the average heat transfer and friction coefficients. These coefficients can be taken from fluid flow and heat transfer models. An extensive literature survey reveals that no comprehensive analytical model for any one of them exists that can be used for a wide range of Reynolds number, Prandtl number, longitudinal and transverse pitches, and thermal conductivity.; This study is one of the first attempts to develop analytical models for the fluid flow and heat transfer from single pins (circular and elliptical) with and without blockage as well as pin-fin arrays (in-line and staggered). These models can be used for the entire laminar flow range, longitudinal and transverse pitches, any material (from plastic composites to copper), and any fluid having Prandtl numbers ≥0.71. In developing these models, it is assumed that the flow is steady, laminar, and fully developed. Furthermore, the heat sink is fully shrouded and the thermophysical properties are taken to be temperature independent. Using an energy balance over the same control volume, the average heat transfer coefficient for the heat sink is also developed, which is a function of the heat sink material, fluid properties, fin geometry, pin-fin arrangement, and longitudinal and transverse pitches. The hydrodynamic and thermal analyses of both in-line and staggered pin-fin heat sinks are performed using parametric variation of each design variable including pin diameter, pin height, approach velocity, number of pin-fins, and thermal conductivity of the material.; The present analytical results for single pins (circular and elliptical) and pin-fin-arrays are in good agreement with the existing experimental/numerical data obtained by other investigators. It is shown that the present models of heat transfer and pressure drop can be applied for a wide range of Reynolds and Prandtl numbers, longitudinal and transverse pitches, aspect ratios, and thermal conductivity. Furthermore, selected numerical simulations for a single circular cylinder and in-line pin-fin heat sink are also carried out to validate the present analytical models. Results of present numerical simulations are also found to be in good agreement.
机译:在这项研究中,采用了一种熵产生最小化程序来优化隔离式鳍片几何形状和针形鳍片散热器的整体性能(热力学和流体力学)。当散热器与周围的流场相互作用时,这可以同时评估热阻和压降的综合影响。在适当的控制体积上,使用质量,能量和熵平衡来开发熵生成率的新通用表达式。根据翅片的几何形状,纵向和横向的间距,针翅的长宽比,导热率,针翅的排列,雷诺数和普朗特数来获得无量纲的熵产生率的公式。结果表明,熵产生率取决于两个主要性能参数,即热阻和压降,而这又取决于平均传热和摩擦系数。这些系数可以从流体流动和传热模型中获得。大量的文献调查表明,对于任何一个雷诺数,普朗特数,纵向和横向螺距以及热导率,都没有一个全面的分析模型可以使用。这项研究是开发分析模型的最初尝试之一,该模型用于分析单个销钉(圆形和椭圆形)的流体流动和传热(有无堵塞)以及销钉-翅片阵列(串联和交错)。这些模型可用于整个层流范围,纵向和横向螺距,任何材料(从塑料复合材料到铜)以及普朗特数≥0.71的任何流体。在开发这些模型时,假定流动是稳定的,层流的并且充分展开的。此外,散热器被完全覆盖,并且热物理性质与温度无关。通过在相同控制量上使用能量平衡,还可以计算出散热器的平均传热系数,该系数是散热器材料,流体特性,散热片几何形状,针形散热片布置以及纵向和横向间距的函数。在线式和交错式针翅式散热器的流体力学和热分析是通过使用每个设计变量的参数变化来进行的,这些参数包括针径,针高,进给速度,针翅数和材料的热导率。目前对单个引脚(圆形和椭圆形)和引脚-翅片阵列的分析结果与其他研究人员获得的现有实验/数值数据非常吻合。结果表明,目前的传热和压降模型可以用于广泛的雷诺数和普朗特数,纵向和横向螺距,长宽比和导热系数。此外,还对单个圆柱和直列针翅式散热器进行了选定的数值模拟,以验证当前的分析模型。还发现当前数值模拟的结果吻合良好。

著录项

  • 作者

    Khan, Waqar Ahmed.;

  • 作者单位

    University of Waterloo (Canada).;

  • 授予单位 University of Waterloo (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 339 p.
  • 总页数 339
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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