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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Benefits of spanwise gaps in cylindrical vortex generators for conjugate heat transfer enhancement in micro-channels
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Benefits of spanwise gaps in cylindrical vortex generators for conjugate heat transfer enhancement in micro-channels

机译:用于圆柱形涡流发生器中的跨旋转流动的优点,用于微通道中的共轭传热增强

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Cylindrical vortex generators placed transversely over the span of a micro-channel can enhance heat transfer performance, but adding full-span vortex generators incurs a substantial pressure drop penalty. This paper examines the benefits of introducing various gaps along the length of the vortex generators, both for reducing pressure drop and improving the thermal conductance of the system. Three particular configurations are considered with varied dimensions: symmetrical gaps at each end of the vortex generator, i.e. adjacent to the channel side walls; a single central gap; and a combination of a central and end gaps. The performance is investigated numerically via 3D finite element analysis for Reynolds number in the range 300-2300 and under conditions of a uniform heat flux input relevant to microelectronics cooling. Results demonstrate that having end gaps alone substantially improves heat transfer while reducing the pressure drop. As well as generating longitudinal vortices which draw heat from the adjacent channel side walls, hot fluid passing through the gaps is swept directly upwards and inwards into the bulk flow, where it remains as it flows to the outlet. A thermal-hydraulic performance evaluation index is improved from 0.7 for full-span vortex generators to 1.0 with end gaps present. The central and central-plus-end gap geometries are less effective overall, but do offer localised improvements in heat transfer. Crown Copyright (C) 2017 Published by Elsevier Ltd. All rights reserved.
机译:圆柱形涡流发生器在微通道的跨度横向放置,可以提高传热性能,但添加全跨度涡流发电机会引起大幅压力下降罚款。本文研究了沿涡流发生器长度引入各种间隙的益处,用于减少压降并提高系统的热敏。用不同尺寸考虑三个特定配置:涡流发生器的每个端部的对称间隙,即沿沟道侧壁相邻;单一的中央间隙;以及中央和最终间隙的组合。通过300-2300范围内的Reynolds数和雷诺数的3D有限元分析和与微电子冷却相关的均匀热通量输入的条件进行数值通过3D有限元分析来研究性能。结果表明,单独的结束间隙显着提高热传递,同时降低压降。除了产生从相邻通道侧壁中抽出热的纵向涡流,通过间隙的热流体直接向上扫描并向内进入散装流动,在那里它仍然在流到出口时保持。热 - 液压性能评估指标从0.7提高到完全跨度涡流发生器的0.7到1.0,存在结束间隙。中央和中央加上端间隙几何形状整体效率较低,但确实提供了传热的局部改进。 Crown版权所有(c)2017由elestvier有限公司出版。保留所有权利。

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