Numerical study of conjugate heat transfer of steam and air in high aspect ratio rectangular ribbed cooling channel

被引:1
作者
Tieyu Gao
Jiangnan Zhu
Changwei Liu
Jiamin Xu
机构
[1] Xi’an Jiaotong University,Institute of Turbomachinery, School of Energy & Power Engineering
来源
Journal of Mechanical Science and Technology | 2016年 / 30卷
关键词
Conjugate heat transfer; Gas turbine; Internal cooling; Secondary flow vortex core;
D O I
暂无
中图分类号
学科分类号
摘要
The relationship between flow field and heat transfer in an air/steam cooled ribbed channel was numerically investigated and compared. The width to height ratio was 4 and the rib height to hydraulic diameter was 0.078. The conjugate heat transfer method was adopted and a uniform heat source was located in the solid domain to simulate the actual heating method in the experiment. The GGI method was used to deal with the solid-fluid interface. The fluid field structure was shown by vortex core technology. We found that the wall heat flux distribution is similar with that of the Nusselt number, which is periodic. The temperature difference of a certain position on the inner and outer wall was less than 2 K. The Nusselt number reached its peak value at No.15-18 part and then decreased. The large width to height ratio led to strong interaction between the main flow fluid and the fluid in near wall region. As a result, an extra main flow secondary flow and two separation vortexes could be observed. These three additional vortexes were all in main flow region. The two separation vortexes approached to each other in flow direction and mixed into one vortex at low Reynolds number. When Reynolds number is larger than 30000, the two vortexes remain independent. The relative distance between them reaches the minimum value and the Nusselt number reaches the peak value at the same time. In addition, the flow field structure is mainly determined by Reynolds number and the fluid type cannot obviously influence the secondary flow distribution. The generation and separation of secondary flow as well as the mixing of secondary flows can enhance the local heat transfer strength.
引用
收藏
页码:1431 / 1442
页数:11
相关论文
共 87 条
  • [1] Han J. C.(1985)Heat transfer enhancement in channels with turbulence promoters ASME J. Engng. Gas Turbines Pwr. 107 628-635
  • [2] Park J. S.(1988)Developing heat transfer in rectangular channels with rib turbulators Int. J. Heat Mass Tran. 31 183-195
  • [3] Lei C. K.(1992)Heat transfer performance comparisons of five different rectangular channels with parallel angled ribs Int. J. Heat Mass Tran. 35 2891-2903
  • [4] Han J. C.(1992)Influence of surface heat flux ratio on heat transfer augmentation in square channels with parallel, crossed, and V-shaped angled ribs J. Turbomach. 114 872-880
  • [5] Park J. S.(1998)Effect of rib profiles on turbulent channel flow heat transfer J. Therm Heat Tran. 12 116-118
  • [6] Park J. S.(2001)Flow and heat transfer in a rotating square channel with 45 deg angled ribs by Reynolds stress turbulence model J. Turbomach. 123 124-132
  • [7] Han J. C.(1998)The effect of periodic ribs on the local aerodynamic and heat transfer performance of a straight cooling channel J. Turbomach. 120 368-375
  • [8] Huang Y.(2003)Effects of rib height on heat transfer performance inside a high aspect ratio channel with inclined ribs J. Enhanced Heat Trans. 10 431-443
  • [9] Ou S.(2012)Forced convective heat transfer over ribs at various separation Int. J. Heat Mass Tran. 55 5111-5119
  • [10] Han J. C.(2007)Analysis of turbulent flow in channels roughened by two-dimensional ribs and three-dimensional blocks, Part II: Heat Transfer Int. J. Heat Fluid Flow 28 1112-1124