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Study of the Effects of Single and Double Droplets Impingement on Surface Cooling

机译:单滴和双滴撞击对表面冷却的影响研究

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摘要

Spray cooling is a promising technique which is used to remove large amounts of heat from surfaces. It is characterized by uniform heat removal, low droplet impact velocity and better cooling efficiency when compared to other cooling schemes. It can be used in electronic cooling, and other applications. However, due to the multiple impacts of droplets, the film fluid dynamics and morphology are quite complicated. Moreover, the effect of heat transfer under spray cooling is not well understood due to the large number of interdependent variables such as impact spacing, impact angle, droplet diameter, droplet velocity and droplet frequency to name a few. An experimental approach is proposed and used to minimize and control key independent variables to determine their effects on surface temperature and heat transfer cooling mode. The effects of droplet impact angle and spacing on different heat flux conditions are studied. The film thickness is also obtained to further investigate the relationship between the independent variable and the observed heat transfer mechanism. The study of coherent droplet impingement on an open surface is experimentally characterized using high speed imaging and infrared thermography. Single stream droplet impingent cooling with different impact angle is also studied. Temperature distribution and impact crater morphology are obtained under different heat flux conditions. Film thickness inside droplet impact craters is measured to understand the relationship between minimum surface temperature and film thickness. Next, double streams droplet impingement cooling with different spacings and impact angles are investigated. The optimum spacing is found to reduce the droplet-to-droplet collision and to minimize splashing, resulting in enhanced heat transfer and better use of the cooling fluid. The film thickness is also measured to understand the relationship between the heat transfer results and the controllable independent variables. The results and conclusions of this study are useful in understanding the physics of spray cooling and can be applied to design better spray cooling systems.
机译:喷雾冷却是一种有前途的技术,可用于从表面去除大量热量。与其他冷却方案相比,它具有散热均匀,液滴冲击速度低和冷却效率高的特点。它可以用于电子冷却和其他应用。但是,由于液滴的多重影响,薄膜的流体动力学和形态非常复杂。而且,由于大量相互依赖的变量,例如冲击间距,冲击角,液滴直径,液滴速度和液滴频率等,因此在喷雾冷却下的传热效果还不为人所知。提出了一种实验方法,用于最小化和控制关键独立变量,以确定它们对表面温度和传热冷却模式的影响。研究了液滴冲击角和间距对不同热通量条件的影响。还获得了膜厚,以进一步研究自变量与观察到的传热机制之间的关系。使用高速成像和红外热成像技术对在开放表面上相干液滴撞击的研究进行了实验表征。还研究了具有不同冲击角的单流液滴冲击冷却。在不同的热通量条件下获得了温度分布和撞击坑的形态。测量液滴撞击坑内的膜厚,以了解最低表面温度和膜厚之间的关系。接下来,研究了具有不同间距和冲击角的双流液滴冲击冷却。发现最佳间距可减少液滴与液滴之间的碰撞并使飞溅最小化,从而增强了热传递并更好地利用了冷却液。还测量薄膜厚度以了解传热结果和可控独立变量之间的关系。这项研究的结果和结论有助于理解喷雾冷却的物理原理,可用于设计更好的喷雾冷却系统。

著录项

  • 作者

    Tsai Hsin-Min;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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