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Oscillatory Streaming Flow Based Mini/Microheat Pipe Technology

机译:基于振荡流的微型/微热管技术

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摘要

The sustained drive for faster and smaller micro-electronic devices has led to a considerable increase in power density. The ability to effectively pump and enhance heat transfer in mini-/ microchannels is of immense technological importance. Using oscillatory flow to enhance the convective heat transfer coefficients in micro-Zminichannels is one of many new concepts and methodologies that have been proposed. In this paper, a novel and simple concept is presented on oscillating streaming flow based mini/ microheat pipe or heat spreader technology. Phenomena of the flow streaming can be found in zero-mean velocity oscillating flows in many channel geometries. Although there is no net mass flow (zero-mean velocity) passing through the channel, discrepancy in the velocity profiles between the forward and backward flows causes fluid particles near the walls to drift toward one end while particles near the centerline drift to the other end. This unique characteristic of flow streaming could be used for various applications. Some of the advantages include enhanced heat/mass transfer, pumpless fluid propulsion, multichannel fluid distribution, easy system integration, and cost-effective operation. Preliminary work has been conducted on scaling analysis, computerrnsimulations, and visualization experiments of fluid streaming, propulsion, and multichannel distribution by flow oscillation in mini-tapered channels and channel networks. Results show that streaming flow has the potential to be used as a cost-effective and reliable heat pipe and/or as a heat spreader technique when fluid thermal conductivity is low.
机译:对更快,更小的微电子设备的持续驱动导致功率密度的显着提高。有效泵送和增强微型/微通道中的热传递的能力具有巨大的技术重要性。使用振荡流来增强微Zminichannel中的对流传热系数是已提出的许多新概念和方法之一。在本文中,提出了一种新颖的,简单的基于振荡流的微型/微型热管或散热器技术。流的现象可以在许多通道几何形状的零均速振荡流中找到。尽管没有净质量流(平均速度为零)通过通道,但前向流和后向流之间的速度分布差异导致壁附近的流体粒子向一端漂移,而中心线附近的流体向另一端漂移。 。流传输的这种独特特性可以用于各种应用程序。其中的一些优势包括增强的热/质量传递,无泵流体推进,多通道流体分配,易于系统集成以及具有成本效益的操作。已经通过微型锥形通道和通道网络中的流动振荡对流体流动,推进和多通道分布的比例分析,计算机模拟和可视化实验进行了初步工作。结果表明,当流体的导热系数较低时,流动流有可能用作成本效益高且可靠的热管和/或散热器技术。

著录项

  • 来源
    《Journal of Heat Transfer》 |2010年第5期|p.055001.1-055001.8|共8页
  • 作者单位

    Department of Mechanical Engineering,University of Rhode Island,Kingston, RI 02881;

    rnDepartment of Mechanical Engineering,University of Rhode Island,Kingston, RI 02881;

    rnDepartment of Mechanical Engineering,University of Rhode Island,Kingston, RI 02881;

    rnDepartment of Mechanical Engineering,University of Rhode Island,Kingston, RI 02881;

    rnDepartment of Mechanical Engineering,University of Rhode Island,Kingston, RI 02881 Department of Architecture, Civil Engineering, and Environmental Sciences,Institute for Computational Modeling in Civil Engineering,TU Braunschweig,Braunschweig 38023, Germany;

    rnDepartment of Mechanical Engineering,University of Rhode Island,Kingston, RI 02881 Department of Mechanical Engineering,University of Massachusetts,Lowell One University Avenue, Lowell, MA 01854;

  • 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

    heat pipe; flow streaming; oscillation flow; bifurcation; microchannel;

    机译:热管;流式传输;振荡流分叉微通道;

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