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Effect of Nozzle-to-Target Spacing on Fin Effectiveness and Convective Heat Transfer Coefficient for Array Jet Impingement onto Novel Micro-Roughness Structures

机译:喷嘴到目标间距对阵列射流撞击新型微粗糙度结构的鳍片效率和对流传热系数的影响

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With recent advancements in the field of additive manufacturing, the design domain for development of complicated cooling configurations has significantly expanded. The motivation of the present study is to develop high-performance impingement cooling designs catered towards application's requiring high rates of heat removal, e.g. gas turbine blade leading edge and double-wall cooling, air-cooled electronic devices etc. Jet impingement is a popular cooling technique which results in high convective heat rates. In the present study, jet impingement is combined with strategic roughening of the target surface, such that a combined effect of impingement-based and curved-surface area based enhancement in heat transfer coefficient could be achieved. Traditionally, for surface roughening, cylindrical and cubic elements are used. We have demonstrated, through our steady-state experiments, a novel "concentric" shaped roughness element design which has resulted in about 20-60% higher effectiveness compared to smooth target jet impingement, for jet-to-target spacing of one jet diameter. The cubic shaped roughened target yielded about 20% to 40% enhancement in effectiveness, and the cylindrical shaped roughened target yielded 10% to 30% enhancement. Through the plenum pressure measurements, it was found that the addition of the micro-roughness elements does not result in a discernable increment in pressure losses, compared to the standard impingement on the smooth target surface. Hence, the demonstrated configuration with the highest heat transfer coefficient also resulted in the highest thermal hydraulic performance.
机译:随着增材制造领域的最新进展,用于复杂冷却配置开发的设计领域已大大扩展。本研究的动机是开发高性能冲击冷却设计,以适应需要高排热率的应用,例如:燃气涡轮叶片的前缘和双壁冷却,风冷电子设备等。射流撞击是一种流行的冷却技术,可产生较高的对流热率。在本研究中,射流冲击与目标表面的战略性粗糙化相结合,从而可以实现基于冲击和基于曲面面积的传热系数增强的组合效果。传统上,对于表面粗糙化,使用圆柱和立方元素。通过稳态实验,我们已经证明了一种新颖的“同心”形状的粗糙度元件设计,与光滑的目标射流撞击相比,该射流对于一个射流直径的目标间距而言,其有效性提高了约20-60%。立方体形状的粗糙靶材的功效提高了约20%至40%,而圆柱形形状的粗糙靶材则提高了10%至30%。通过充气压力测量,发现与粗糙度目标表面上的标准撞击相比,添加微粗糙度元素不会导致可识别的压力损失增加。因此,所展示的具有最高传热系数的配置也导致了最高的热液压性能。

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