首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical study on laminar convection heat transfer in a rectangular channel with longitudinal vortex generator. Part A: Verification of field synergy principle
【24h】

Numerical study on laminar convection heat transfer in a rectangular channel with longitudinal vortex generator. Part A: Verification of field synergy principle

机译:纵向涡流发生器在矩形通道内层流对流换热的数值研究。 A部分:场协同原理的验证

获取原文
获取原文并翻译 | 示例
       

摘要

This study presents numerical computation results on laminar convection heat transfer in a rectangular channel with a pair of rectangular winglets longitudinal vortex generator punched out from the lower wall of the channel. The effect of the punched holes and the thickness of the rectangular winglet pair to the fluid flow and heat transfer are numerically studied. It is found that the case with punched holes has more heat transfer enhancement in the region near to the vortex generator and lower average flow frictional coefficient compared with the case without punched holes. The thickness of rectangular winglet can cause less heat transfer enhancement in the region near to the vortex generator and almost has no significant effect on the total pressure drop of the channel. The effects of Reynolds number (from 800 to 3000), the attack angle of vortex generator (15°, 30°, 45°, 60° and 90°) were examined. The numerical results were analyzed from the viewpoint of field synergy principle. It was found that the essence of heat transfer enhancement by longitudinal vortex can be explained very well by the field synergy principle, i.e., when the second flow generated by vortex generators results in the reduction of the intersection angle between the velocity and fluid temperature gradient, the heat transfer in the present channels will be enhanced. Longitudinal vortices (LVs) improve the synergy between velocity and temperature field not only in the region near LVG but also in the large downstream region of longitudinal vortex generator. So LVs enable to enhance the global heat transfer of channel. Transverse vortices (TVs) only improve the synergy in the region near VG. So TVs can only enhance the local heat transfer of channel.
机译:这项研究给出了在矩形通道中层流对流传热的数值计算结果,其中一对矩形小翼纵向涡流发生器从通道的下壁冲出。数值研究了冲孔和矩形小翼对的厚度对流体流动和传热的影响。已经发现,与没有穿孔的情况相比,带有穿孔的情况在靠近涡流发生器的区域中具有更多的传热增强并且具有更低的平均流动摩擦系数。矩形小翼的厚度可以在靠近涡流发生器的区域中引起较少的热传递增强,并且几乎不对通道的总压降产生显着影响。研究了雷诺数(从800到3000),涡流发生器的迎角(15°,30°,45°,60°和90°)的影响。从场协同原理的角度分析了数值结果。已经发现,利用场协同原理可以很好地解释纵向涡流增强传热的本质,即当涡流发生器产生的第二流导致速度与流体温度梯度之间的相交角减小时,现有通道中的热传递将得到增强。纵向涡流(LVs)不仅改善了LVG附近的区域,而且还改善了纵向涡旋发生器下游较大区域的速度和温度场之间的协同作用。因此,低压使增强通道的整体传热成为可能。横向涡流(TV)仅能改善VG附近区域的协同作用。因此,电视只能增强频道的局部传热。

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