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Flow shaping and thrust enhancement of sidewall bounded oscillating cantilevers

机译:侧壁有界振荡悬臂的流动整形和推力增强

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摘要

An oscillating cantilever is employed in a vast number of applications ranging from electronics cooling to propulsion. The motion can be driven at resonance by piezoelectrics which make it an energy efficient source of flow generation from a robust solid state device. Commonly known as piezoelectric fans, they have been the topic of numerous studies, and although many applications ultimately require mounting the cantilever within an enclosure of some form, much of the literature only considers idealized conditions, with walls far removed from the beam. Although it is commonly understood that, in general, sidewalls will help direct the flow in a desired direction, there is little knowledge into what impact this has on key performance characteristics such as power consumption, thrust, or convection enhancement. In this paper, in order to develop a strategic design approach for the enclosure, the thrust produced by a cantilever operating at resonance is quantified with two sidewalls present for a range of beam to wall spacings. Additionally, the sensitivity of the thrust on the relative location of the downstream edge of the sidewalls to the free end of the cantilever (fan tip) is experimentally investigated. It is found that the sidewall gap has little effect on thrust enhancement, except for very small gaps, and that the tip location plays a very large and interesting role in power consumption. In effect, there are cantilever tip locations where one can obtain substantial thrust enhancement with little or no extra power consumption, suggesting that flow shaping has the potential to positively impact the performance. The findings in the paper provide not only a relevant basis for further study, but also a very meaningful indication of the most effective orientation when considering the enclosure design around the oscillating cantilever.
机译:摆动悬臂被广泛用于从电子冷却到推进的各种应用中。该运动可以由压电共振驱动,从而使其成为来自坚固的固态设备的高效节能流产生源。通常被称为压电风扇,它们已成为许多研究的主题,尽管许多应用最终要求将悬臂安装在某种形式的外壳内,但许多文献只考虑了理想条件,且壁距梁远。尽管通常可以理解,侧壁通常会帮助将流体引导到所需的方向,但很少有人知道这对关键性能特性(例如功耗,推力或对流增强)的影响。在本文中,为了开发一种策略性的外壳设计方法,在存在两个侧壁的情况下,针对一定的梁到壁间距,对在共振状态下悬臂产生的推力进行了量化。另外,实验研究了侧壁下游边缘相对于悬臂自由端(风扇尖端)相对位置的推力敏感性。已经发现,除了非常小的间隙之外,侧壁间隙对推力增强几乎没有影响,并且尖端位置在功耗中起着非常大且有趣的作用。实际上,有一些悬臂式尖端位置,可以在不增加或很少消耗额外功率的情况下获得明显的推力增强,这表明流整形有可能对性能产生积极影响。本文的研究结果不仅为进一步研究提供了相关依据,而且在考虑摆动悬臂周围的围护结构设计时,也为最有效的定向提供了非常有意义的指示。

著录项

  • 来源
  • 作者

    Andrew Eastman; Mark L. Kimber;

  • 作者单位

    Department of Mechanical Engineering and Materials Science, University of Pittsburgh, 206 Benedum Hall, 3700 O'Hara Street, Pittsburgh, PA 15261, United States;

    Department of Mechanical Engineering and Materials Science, University of Pittsburgh, 206 Benedum Hall, 3700 O'Hara Street, Pittsburgh, PA 15261, 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

    Piezoelectric fan; Thrust; Electronics cooling;

    机译:压电风扇推力;电子冷却;

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