Heat Transfer Analysis in a Rectangular Duct Without and With Cross-Flow and an Impinging Synthetic Jet

M. Chaudhari, B. Puranik, A. Agrawal
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引用次数: 22

Abstract

A synthetic jet is a zero-net-mass-flux device, which synthesizes stagnant air to form a jet, and is potentially useful for cooling. Due to the inherent suction and ejection processes in a synthetic jet, its utility in a confined enclosure is not obvious. The synthetic jet impingement heat transfer characteristics inside a rectangular duct are studied in this paper. In addition, the effect of cross-flow created using either fans or another synthetic jet on its heat dissipation capability is examined. Experiments are conducted for different jet Reynolds numbers (Re), in the range of 950-4000, at different offset positions of the synthetic jet with respect to a heated block flush mounted on one surface of the duct. The height of the duct is the same (25 mm) for all measurements while the width is varied between 110 mm and 330 mm in order to examine the effect of confinement on the heat transfer coefficient. The change in the width of the duct is found to have a negligible effect on heat transfer. The heat transfer coefficient is found to be more with synthetic jet direct impingement (150 W/m2 · K) than with combined flow (both impingement and cross-flow) (134 W/m2 · K) or with only cross-flow (45 W/m2 · K) in the duct. The offset of the synthetic jet from the center of the heated block is found to drastically reduce the heat transfer. These results are expected to be useful for designing synthetic jet-based cooling solutions.
无和有横流及碰撞合成射流矩形管道的传热分析
合成射流是一种零净质量通量装置,它将停滞的空气合成成射流,并可能用于冷却。由于合成射流固有的吸射过程,其在密闭环境中的应用并不明显。研究了矩形管道内合成射流冲击换热特性。此外,还研究了风扇或其他合成射流产生的交叉流对其散热能力的影响。实验对不同的射流雷诺数(Re),在950-4000范围内,在合成射流的不同偏移位置相对于安装在管道表面的加热块冲洗。在所有测量中,管道的高度是相同的(25毫米),而宽度在110毫米到330毫米之间变化,以便检查约束对传热系数的影响。发现管道宽度的变化对传热的影响可以忽略不计。综合射流直接冲击的换热系数(150 W/m2·K)高于混合流动(冲击和横流)(134 W/m2·K)或仅横流(45 W/m2·K)的换热系数。合成射流与受热块中心的偏移量大大减少了传热。这些结果有望为设计基于射流的合成冷却解决方案提供帮助。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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