首页> 外文会议>ASME InterPACK Conference >AN EXPERIMENTAL AND THEORETICAL INVESTIGATION OF THE PUMPING PERFORMANCE OF GEOMETRICALLY SIMILAR FLOW FIELDS WITHIN MINIATURE-SCALE CENTRIFUGAL PUMPS
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AN EXPERIMENTAL AND THEORETICAL INVESTIGATION OF THE PUMPING PERFORMANCE OF GEOMETRICALLY SIMILAR FLOW FIELDS WITHIN MINIATURE-SCALE CENTRIFUGAL PUMPS

机译:微型离心泵内几何类似流场泵浦性能的实验与理论研究

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Thermal management has become a key point in the development of contemporary electronics systems. It is evident that heat fluxes are currently approaching the limits of conventional forced air cooling, and that liquid cooling technologies are now under consideration. Most recent research in liquid cooling has focused on primary heat removal, with relatively little attention paid to liquid pumping. As the space available to incorporate a pump is often limited, miniature-scale pumps are required. Because such pumps operate at low Reynolds numbers, their operation may deviate from that predicted from the conventional pump affinity laws, and their efficiencies reduced. This paper investigates such deviations, and reduced efficiency, through experimental measurements of the performance of three pumps of varying scale. The pumps were fabricated using transparent material to allow optical access for PIV measurements. A characterization facility is described, which allows measurement of bulk pressure-flow performance characteristics. The measurements demonstrate that variations in diameter, without changed pump height, cause deviation from the affinity laws, whilst the characteristics of pumps whose diameter and height are varied proportionately obey the affinity laws. Efficiency was seen to reduce significantly with Reynolds number. PIV measurements of flow in the pump blade passages are also presented, which show a clear increase in the absolute velocity vectors within the blade passage and conversely a decrease in fluid velocity directly after blade tip in the expanding volute of the pump. The paper concludes that pump scaling laws predict accurately the pump performance in downsizing a geometrically identical pump but fail to predict when all aspects of the pump are scaled except height. It is also concluded that there is a significant decrease in efficiency in pump performance at low Reynolds numbers.
机译:热管理已成为现代电子系统发展的关键点。显而易见的是,热通量目前正在接近传统的强制空气冷却的限制,现在正在考虑液体冷却技术。最近的液体冷却研究集中于初级散热,对液体泵送的关注相对较少。随着可用于泵的空间通常是有限的,需要微型泵泵。因为这种泵在低雷诺数下操作,所以它们的操作可能偏离来自传统泵亲和力法的预测,并且它们的效率降低。本文通过实验测量来研究这种偏差,降低效率,并进行三种不同规模的三个泵的性能。使用透明材料制造泵,以允许PIV测量的光学访问。描述了表征设施,其允许测量散装压力流性能特性。测量结果表明,无需改变的泵高度,导致直径的变化导致与亲和力规律的偏差,同时直径和高度的泵的特性相等地遵守亲和力法。看到效率明显减少雷诺数。还呈现了泵叶片通道中的流动的PIV测量,这在刀片通道内的绝对速度矢量透明增加,并且在泵的膨胀蜗壳中直接在叶片尖端的流体速度的降低。本文得出结论,泵缩放法则预测泵浦几何相同泵的泵性能,但是当泵的所有方面除了高度之外时,何时可以缩放。还得出结论,在低雷诺数的泵性能下有显着降低。

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