On flow structure, heat transfer and pressure drop in varying aspect ratio two-pass rectangular channel with ribs at 45°

被引:0
作者
Waseem Siddique
Igor V. Shevchuk
Lamyaa El-Gabry
Narmin B. Hushmandi
Torsten H. Fransson
机构
[1] Royal Institute of Technology (KTH),Department of Energy Technology
[2] Pakistan Institute of Engineering and Applied Sciences (PIEAS),Department of Nuclear Engineering
[3] MBtech Group GmbH & Co. KGaA,Department of Mechanical Engineering
[4] American University in Cairo (AUC),undefined
来源
Heat and Mass Transfer | 2013年 / 49卷
关键词
Heat Transfer; Nusselt Number; Secondary Flow; Average Nusselt Number; Wall Distance;
D O I
暂无
中图分类号
学科分类号
摘要
To increase the thermal efficiency of gas turbines, inlet temperature of gas is increased. This results in the requirement of cooling of gas turbine blades and vanes. Internal cooling of gas turbine blades and vanes is one of several options. Two-pass channels are provided with ribs to enhance heat transfer at the expense of an increased pressure drop. The space in the blade is limited and requires channels with small aspect ratios. Numerical simulations have been performed to investigate heat transfer, flow field and pressure loss in a two-pass channel equipped with 45° ribs with aspect ratio (Win/H) equal to 1:3 in the inlet pass and 1:1 in the outlet pass with both connected together with a 180° bend. The results are compared with a higher aspect ratio channel (Win/H = 1:2, inlet pass). In the ribbed channel, a decrease in pressure drop was observed with a decrease in the aspect ratio of the channel. The smaller aspect ratio channel not only allows using more cooling channels in the blade, but also results in more heat transfer enhancement. The divider-to-tip wall distance (Wel) has influence on the pressure drop, as well as on the heat transfer enhancement at the bend and outlet pass. Heat transfer decreases with decrease in aspect ratio of the inlet pass of the two-pass channel. With increase in divider-to-tip wall distance, heat transfer tries to attain a constant value.
引用
收藏
页码:679 / 694
页数:15
相关论文
共 101 条
[1]  
Acharya S(1997)Developing and periodically developed flow, temperature and heat transfer in a ribbed duct Int J Heat Mass Transf 40 461-479
[2]  
Myrum T(2000)Detailed mass transfer distribution in a ribbed coolant passage with a 180° bend Int J Heat Mass Transf 43 1479-1492
[3]  
Qiu X(2003)Flow and heat transfer in straight cooling passages with inclined ribs on opposite walls: an experimental and computational study Exp Thermal Fluid Sci 27 283-294
[4]  
Sinha S(1978)An investigation of heat transfer and friction for rib-roughened surfaces Int J Heat Mass Transf 21 1143-1156
[5]  
Chen Y(1984)Heat transfer and friction in channels with two opposite rib-roughened walls ASME J Heat Transf 106 774-781
[6]  
Nikitopoulos DE(1988)Heat transfer and friction characteristics in rectangular channels with rib turbulators ASME J Heat Transf 110 321-328
[7]  
Hibbs R(1997)An experimental investigation of the rib surface-averaged heat transfer coefficient in a rib-roughened square passage ASME J Turbomach 119 381-389
[8]  
Acharya S(1991)Heat transfer performance comparison of five different rectangular channels with parallel angled ribs Int J Heat Mass Transf 35 2891-2903
[9]  
Myrum T(2001)Experimental study of developing turbulent flow and heat transfer in ribbed convergent/divergent square duct Int J Heat Fluid Flow 22 603-613
[10]  
Iacovides H(2003)Heat transfer and friction behaviors in rectangular channels with varying number of ribbed walls Int J Heat Mass Transf 46 481-495