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A unified model for Digitized Heat Transfer in a microchannel

机译:微通道中数字化传热的统一模型

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摘要

Digitized Heat Transfer (DHT) is a novel method of adaptive thermal management for high powered devices that uses discrete microdroplets to remove heat. In this paper, the heat transfer characteristics of DHT are investigated for parallel plate and axisymmetric circular microchannels using scale analysis and numerical simulations. DHT in axisymmetric microchannels are also studied using experimental tests. Through scale analysis, it is found that DHT is quantified by the Nusselt number (Nu) and is a function of the Reynolds number (Re), Prandtl number (Pr), nondimensional axial distance (x/D_h), and droplet aspect ratio (AR) In simulation and experiment, Nu shows a direct relationship with Re and Pr as well as an inverse relationship with AR Using the Graetz problem as a model, new scaling relations are proposed for the axial distance, x, and Nu in an effort to collapse the Nu curves that exist for different flow parameters. To align the characteristic oscillations of Nu found in DHT, x is scaled by the droplet circulation length, L_(circ), to create a new nondimensional axial distance, x_(circ) = x/L_(circ) In order to match the overall magnitude, Nu scaling is derived based on the two different modes of heat transfer that occur before and after one circulation length. Prior to one circulation length, heat transfer is characterized by thermal boundary layer growth and the scaling parameter is determined to be f_1 =RePT/AR~(1/2) After one circulation length, recir- culation of heat is dominant and a scaling parameter f_2 is found to be a linear function of 1/AR.f_2 is modeled by the equation f_2 = c_1/AR+ c_2 where c_1 and c_2 are dependent on Re and Pr. The two scaling constants are merged using an inverse tangent weighting function (w) so that a fully scaled Nusselt number, Nu", is defined by Nu[(1/f-1)(1 - w) - (1/f_2)w]. Using this unified model, numerical and experimental data are reduced to a single curve that depicts the heat transfer to any digitized flow. In the future, this model will be helpful in comparing various DHT systems as well as enabling the design of powerful and efficient DHT based thermal management systems.
机译:数字化热传递(DHT)是一种适用于大功率设备的自适应热管理的新方法,该设备使用离散的微滴来散热。本文利用尺度分析和数值模拟研究了平行板和轴对称圆形微通道的DHT传热特性。还使用实验测试研究了轴对称微通道中的DHT。通过规模分析发现,DHT由Nusselt数(Nu)量化,并且是Reynolds数(Re),Prandtl数(Pr),无量纲轴向距离(x / D_h)和液滴长宽比( AR)在仿真和实验中,Nu显示与Re和Pr的直接关系,以及与AR的逆关系。使用Graetz问题作为模型,为轴向距离,x和Nu提出了新的比例关系,以便折叠存在于不同流量参数的Nu曲线。为了对准DHT中Nu的特征振荡,将x通过液滴循环长度L_(circ)缩放,以创建新的无量纲轴向距离,x_(circ)= x / L_(circ)以匹配总体在一个循环长度之前和之后,两种不同的传热模式可以得出Nu标度。在一个循环长度之前,传热的特征在于热边界层的生长,并且缩放参数被确定为f_1 = RePT / AR〜(1/2)在一个循环长度之后,热量的循环是主要的,缩放参数是f_2被发现是1 / AR的线性函数。f_2由方程f_2 = c_1 / AR + c_2建模,其中c_1和c_2取决于Re和Pr。使用反正切加权函数(w)合并这两个缩放常数,以便通过Nu [(1 / f-1)(1- w)-(1 / f_2)w定义完全缩放的Nusselt数Nu“ ]。使用此统一模型,数值和实验数据被简化为一条曲线,该曲线描述了热传递给任何数字化流的情况,将来,该模型将有助于比较各种DHT系统,并有助于设计功能强大且功能强大的基于DHT的高效热管理系统。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2014年第11期|393-407|共15页
  • 作者

    Peter Zhang; Kamran Mohseni;

  • 作者单位

    Department of Mechanical and Aerospace Engineering, University of Florida, 1064 Center Rm 150, Gainesville, FL 32611, United States;

    Department of Mechanical and Aerospace Engineering, University of Florida, 1064 Center Rm 150, Gainesville, FL 32611, United States,Department of Electrical and Computer Engineering, University of Florida, 1064 Center Rm 150, Gainesville, FL 32611, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Digitized Heat Transfer; Microchannel;

    机译:数字化传热;微通道;

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