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Influence of duct aspect ratio on heat/mass transfer in coolant passages with rotation

机译:管道长宽比对带旋转的冷却液通道中热/质量传递的影响

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摘要

The combined effects of duct aspect ratio and rotation on heat/mass transfer characteristics are investigated. Mass transfer experiments are conducted to obtain detailed local heat/mass transfer coefficients on the leading and trailing surfaces in rotating two-pass ducts with a pair of opposite rib-roughened walls. The ducts of three different aspect ratios (W/H =0.5, 1.0, and 2.0) are employed with a fixed hydraulic diameter (D_h) of 26.7 mm. In all duct cases, the rib height-to-hydraulic diameter ratio (e/D_h) is 0.056 and the rib pitch-to-rib height (p/e) is 10. The rotation number ranges from 0.0 to 0.20 while the Reynolds number is fixed at 10,000. To verify the heat/mass transfer augmentation, internal flow structures are calculated for a smooth two-pass square duct using numerical simulations. The results show that Sherwood number ratios are approximately 2.5 times higher than the fully developed value in a stationary smooth pipe due to the flow reattachment near ribbed surfaces. The overall heat/mass transfer coefficient increases as the duct aspect ratio increases. It is because the core flow is highly disturbed and accelerated in the midsections of the ribs, as the rib height-to-duct height ratio (e/H) increases. Dean vortices generated due to 180°-turn augment heat/mass transfer in the turning region and in the upstream region of the second pass. The rotation of duct produces heat/mass transfer discrepancy between leading and trailing surfaces, having higher Sherwood number on the trailing surface in the first pass and on the leading surface in the second pass. However, the effects of duct turning curvature and rotation on heat/mass transfer become less significant for the higher aspect ratio.
机译:研究了管道纵横比和旋转对传热/传质特性的综合影响。进行了传质实验,以在带有一对相对的肋粗化壁的旋转双通道管道的前,后表面上获得详细的局部传热/传质系数。采用三种不同长宽比(W / H = 0.5、1.0和2.0)的管道,其固定液压直径(D_h)为26.7 mm。在所有导管情况下,肋骨高度与液压直径之比(e / D_h)为0.056,肋骨螺距与肋骨高度(p / e)为10。转数范围为0.0至0.20,而雷诺数为固定为10,000。为了验证传热/传质的增加,使用数值模拟为光滑的两通方管计算了内部流动结构。结果表明,由于肋面附近的流动重新附着,Sherwood数比约为固定平稳管中完全展开值的2.5倍。总的热/质量传递系数随着管道纵横比的增加而增加。这是因为随着肋的高度与导管的高度比(e / H)的增加,芯的流动在肋的中部受到极大的干扰和加速。由于180度转弯而产生的迪安涡旋会增加第二道次的转弯区域和上游区域的热量/质量传递。管道的旋转会在前导面和后导面之间产生热/质量传递差异,在第一遍中的后导面上和第二遍中的前导面具有较高的舍伍德数。但是,对于较高的宽高比,管道转向曲率和旋转对热量/质量传递的影响变得不那么明显。

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