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Experimental Investigation of Impinging Heat Transfer of the Pulsed Chevron Jet on a Semicylindrical Concave Plate

机译:人字形射流冲击半圆柱形凹板传热的实验研究

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摘要

Impinging heat transferred by a pulsed jet induced by a six-chevron nozzle on a semicylindrical concave surface is investigated by varying jet Reynolds numbers (5000 ≤ Re ≤ 20,000), operational frequencies (0 Hz ≤ f ≤ 25 Hz), and dimensionless nozzle-to-surface distances (1 ≤ H/d ≤ 8) while fixing the duty cycle as DC = 0.5. The semicylindrical concave surface has a cylinder diameter-to-nozzle diameter ratio (D/d) of 10. The results show that the nozzle-to-surface distance has a significant impact on the impingement heat transfer of the pulsed chevron jet. An optimal nozzle-to-surface distance for achieving the maximum stagnation Nusselt number appears at H/d  =  6. In the wall jet zone, the averaged Nusselt number is the largest at H/d = 2 and the smallest at H/d = 8. In comparison with the chevron steady jet impingement, the effect of nozzle-to-surface distance on the convective heat transfer becomes less notable for the pulsed chevron jet impingement. The stagnation Nusselt number under the pulsed chevron jet impingement is mostly less than that under the chevron steady jet impingement. However, at H/d = 8, the pulsed chevron jet is more effective than the steady jet. This study confirmed that the pulsed chevron jet produced higher azimuthally averaged Nusselt numbers than the steady chevron jet in the wall jet flow zone at large nozzle-to-surface distances. The stagnation Nusselt numbers by the pulsed chevron jet impingement have a maximum reduction of 21.0% (f = 20 Hz, H/d = 4, and Re = 2000) compared with that of the steady chevron jet impingement. Also, the pulsed chevron jet impingement heat transfer on a concave surface is less effective compared to a flat surface. The stagnation Nusselt numbers on the semicylindrical concave surface have a maximum reduction of about 37.7% (f = 20 Hz, H/d = 8, and Re = 5000) compared with that on the flat surface.
机译:通过改变射流雷诺数(5000≤Re≤20,000),工作频率(0 Hz≤f≤25 Hz)和无量纲喷嘴-到表面的距离(1≤H / d≤8),同时将占空比固定为DC = 0.5。半圆柱形凹面的圆柱直径与喷嘴直径之比(D / d)为10。结果表明,喷嘴与表面的距离对脉冲V形射流的冲击传热有重要影响。达到最大停滞Nusselt数的最佳喷嘴到表面距离出现在H / d = 6处;在壁喷区中,平均Nusselt数在H / d = 2处最大,在H / d =处最小。 8.与人字形稳定射流撞击相比,对于脉冲人字形射流撞击,喷嘴到表面距离对对流传热的影响变得不那么明显。人字形射流冲击下的滞止Nusselt数比人字形稳定射流冲击下的滞止Nusselt数要少。但是,在H / d = 8时,脉冲V形射流比稳定射流更有效。这项研究证实,在较大的喷嘴到表面距离下,脉冲人字形射流产生的方位平均Nusselt数比壁面射流区域中的稳定人字形射流要高。与稳定的V形射流冲击相比,脉冲V形射流冲击的停滞Nusselt值最大降低了21.0%(f = 20 Hz,H / d = 4和Re = 2000)。而且,与平坦表面相比,在凹形表面上的脉冲人字形射流撞击传热效果较差。与平坦表面相比,半圆柱凹面上的停滞努塞尔数最大减少约37.7%(f7%= 20 Hz,H / d = 8和Re = 5000)。

著录项

  • 来源
    《Journal of Heat Transfer》 |2019年第3期|032201.1-032201.15|共15页
  • 作者单位

    College of Energy and Power Engineering,Nanjing University ofAeronautics and Astronautics;

    Jiangsu Province Key Laboratory ofAerospace Power System,Nanjing University ofAeronautics and Astronautics|Collaborative Innovation Center ofAdvanced Aero-Engine;

    College of Energy and Power Engineering,Nanjing University ofAeronautics and Astronautics;

    College of Energy and Power Engineering,Nanjing University ofAeronautics and Astronautics;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Heat transfer; Nozzles; Reynolds number; Convection; Jets;

    机译:传热喷嘴雷诺数对流射流;
  • 入库时间 2022-08-18 04:07:02

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