首页> 外文期刊>International Journal of Heat and Mass Transfer >Experimental study and numerical analysis of heat transfer enhancement and turbulent flow over shallowly dimpled channel surfaces
【24h】

Experimental study and numerical analysis of heat transfer enhancement and turbulent flow over shallowly dimpled channel surfaces

机译:浅凹陷通道表面传热增强和湍流的实验研究与数值分析

获取原文
获取原文并翻译 | 示例
           

摘要

Experiments and numerical simulations have been done to investigate the heat transfer, pressure loss and turbulent flow characteristics over the surfaces with arrays of shallow dimples of different dimple depths within channels. Three different dimple depth to diameter ratios of 0.067, 0.1 and 0.2 are investigated with the Reynolds number (Re) ranging from 10,000 to 60,000. Heat transfer measurements were done by using the transient liquid crystal thermography technique to obtain the local heat transfer enhancement characteristics. Additional steady-state experiments were also done to obtain the overall heat transfer enhancement and the pressure loss of the turbulent flow over the dimpled surfaces. The experimental results indicated that the dimple depth has appreciable effects on heat transfer enhancement and pressure loss. The Reynolds number also shows appreciable effects on the local heat transfer enhancement distribution on the surface with shallower dimples. The overall heat transfer enhancement of all the dimpled surfaces approximately keep constant with the Reynolds numbers. The experiments still indicate that the shallow dimples with the depth to diameter ratio of 0.067 obtained almost constant overall heat transfer enhancement up to 1.4 with negligible pressure loss penalty, which indicates a high and constant Reynolds analogy factor of about 1.33 over the studied Reynolds number range. However, as the dimple depth ratio increases from 0.067 to 0.2, the pressure loss increases rapidly and surpasses the heat transfer enhancement, which leads to lower Reynolds analogy factor than 1.0. Furthermore, the numerical simulations show detailed turbulent flow characteristics over the dimpled surfaces. Different from the dimples with relatively deep depth ratios of 0.1 and 0.2, the shallower dimples with the depth ratio of 0.067 generate an obvious low-speed swirling horseshoe vortex zone near the upstream rim in the dimples at the relatively high Reynolds number of 50,500. The horseshoe vortex shed from span-wise edges of the shallow dimples produces lower but more uniform turbulent mixing intensity in the near-wall region, which is responsible for the higher thermal performance.
机译:已经完成了实验和数值模拟,以研究具有在通道内不同凹坑深度的浅凹坑阵列的热传递,压力损失和湍流特性。使用10,000至60,000的Reynolds数(RE)研究了0.067,0.1和0.2的三种不同的浊度比率为0.067,0.1和0.2。通过使用瞬态液晶热成像技术完成传热测量以获得局部传热增强特性。还进行了额外的稳态实验以获得整体传热增强和浊度表面上的湍流的压力损失。实验结果表明,凹坑深度对传热增强和压力损失具有明显的影响。雷诺数还对较浅的凹坑的局部传热增强分布显示了明显的影响。所有凹陷表面的整体传热增强大致与雷诺数保持恒定。该实验仍然表明,具有0.067的深度为0.067的浅凹坑,几乎恒定的总热传递增强,高达1.4,压力损失罚款可忽略不计,这表明在研究的雷诺数范围内大约1.33的高且常数的雷诺比数。 。然而,随着凹坑深度比从0.067增加到0.2,压力损失迅速增加并超越热传递增强,这导致雷诺比比较为1.0。此外,数值模拟显示凹陷表面上的详细湍流特性。与具有0.1和0.2相对深度的凹坑不同的凹坑,深度比为0.067的较浅凹槽在凹槽中的上游边缘处产生明显的低速旋转马蹄形涡旋区域,在凹坑中的相对高的雷诺数为50,500。从浅凹坑的跨度边缘的马蹄形涡流产生近壁区域的较低但更均匀的湍流混合强度,这负责较高的热性能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号