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Experimental and numerical investigation of heat and mass transfer due to pulse combustor jet impingement.

机译:脉冲燃烧器射流撞击引起的传热和传质的实验和数值研究。

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摘要

Porous media drying efficiency could be enhanced through incorporation of a pulse combustion driven impingement drying system. Under certain circumstances pulse combustors have been shown to improve both heat transfer and drying rate when compared to steady flow impingement. Despite this potential, there have been few investigations into the use of pulse combustor driven impingement jets for industrial drying applications. The research presented here utilized experimental and numerical techniques to study the heat transfer characteristics of these types of oscillating jets when impinging on solid surfaces and the heat and mass transfer when drying porous media. The numerical methods were extensively validated using laboratory heat flux and drying data, as well as correlations from literature. As a result, the numerical techniques and methods that were developed and employed in this work were found to be well suited for the current application. It was found that the pulsating flows yielded elevated heat and mass transfer compared to similar steady flow jets. However, the numerical simulations were used to analyze not just the heat flux or drying, but also the details of the fluid flow in the impingement zone that resulted in said heat and mass transport. It was found that the key mechanisms of the enhanced transfer were the vortices produced by the oscillating flow. The characteristics of these vortices such as the size, strength, location, duration, and temperature, determined the extent of the improvement. The effects of five parameters were studied: the velocity amplitude ratio, oscillation frequency, the time-averaged bulk fluid velocity at the tailpipe exit, the hydraulic diameter of the tailpipe, and the impingement surface velocity. Analysis of the resulting fluid flow revealed three distinct flow types as characterized by the vortices in the impingement zone, each with unique heat transfer characteristics. These flow types were: a single strong vortex that dissipated before the start of the next oscillation cycle, a single persistent vortex that remained relatively strong at the end of the cycle, and a strong primary vortex coupled with a short-lived, weaker secondary vortex. It was found that the range over which each flow type was observed could be classified into distinct flow regimes. The secondary vortex and persistent vortex regimes were found to enhance heat transfer. Subsequently, transition criteria dividing these regimes were formed based on dimensionless parameters. The critical dimensionless parameters appeared to be the Strouhal number, a modified Strouhal number, the Reynolds number, the velocity amplitude ratio, and the H/Dh ratio. Further study would be required to determine if these parameters offer similar significance for other configurations.
机译:通过结合脉冲燃烧驱动的冲击干燥系统,可以提高多孔介质的干燥效率。在某些情况下,与稳定流撞击相比,脉冲燃烧器已显示出改善传热和干燥速率的效果。尽管有这种潜力,但很少有研究将脉冲燃烧器驱动的冲击射流用于工业干燥应用。本文介绍的研究利用实验和数值技术研究了这些类型的振荡射流在撞击固体表面时的传热特性,以及干燥多孔介质时的传热和传质。数值方法已通过实验室热通量和干燥数据以及文献的相关性得到了广泛验证。结果,发现这项工作中开发和采用的数值技术和方法非常适合当前的应用。已发现,与类似的稳定流射流相比,脉动流产生更高的热量和质量传递。然而,数值模拟不仅用于分析热通量或干燥,而且还用于分析在冲击区域中导致所述热量和质量传递的流体流动的细节。发现增强传递的关键机制是振荡流产生的涡旋。这些漩涡的特征,例如大小,强度,位置,持续时间和温度,决定了改善的程度。研究了五个参数的影响:速度振幅比,振荡频率,在排气管出口处的时均体积流体速度,排气管的水力直径和撞击表面速度。对产生的流体流动的分析揭示了三种不同的流动类型,其特征在于撞击区域中的涡流,每种都有独特的传热特性。这些流动类型是:在下一个振荡周期开始之前消散的单个强涡旋,在周期结束时保持相对强的单个持续涡旋,以及强大的主涡旋和短时的,较弱的次级涡旋。已经发现,观察到每种流动类型的范围可以分为不同的流动形式。发现次级涡流和持久涡流体制增强了热传递。随后,基于无量纲参数形成了划分这些制度的过渡标准。关键的无量纲参数似乎是Strouhal数,修正的Strouhal数,雷诺数,速度振幅比和H / Dh比。需要进一步研究以确定这些参数是否对其他配置具有相似的意义。

著录项

  • 作者

    Psimas, Michael J.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 346 p.
  • 总页数 346
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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