Effects of Reynolds number on the performance of a high pressure-ratio turbocharger compressor

被引:0
作者
XinQian Zheng
Yun Lin
BinLin Gan
WeiLin Zhuge
YangJun Zhang
机构
[1] Tsinghua University,State Key Laboratory of Automotive Safety and Energy
[2] Beijing Power Machinery Research Institute,undefined
来源
Science China Technological Sciences | 2013年 / 56卷
关键词
Reynolds number; high pressure-ratio; turbocharger; centrifugal compressor; internal combustion engine;
D O I
暂无
中图分类号
学科分类号
摘要
The effects of Reynolds number on the performance of a high pressure-ratio turbocharger compressor were investigated by both experiments and numerical simulation. The experimental results show that the pressure ratio and the efficiency of the compressor respectively decrease by 7.9% and 6.9% when Reynolds number drops from 9.86×105 to 2.96×105. The numerical simulation predicts a similar trend as the experimental results although it underestimates the deterioration of the performance under low Reynolds number conditions. According to simulation results, the boundary layer thickness increases at the inducer, which decreases the throat area and leads to smaller choke mass flow rate. The increments of the boundary thickness are relatively small at the rear part of the impeller. The boundary layer separation flow is severe. The interaction between boundary layer separation flows and leakage flows causes the high loss region at the rear part of the impeller passage under low Reynolds number condition.
引用
收藏
页码:1361 / 1369
页数:8
相关论文
共 34 条
[1]  
Wiesner F J(1979)A new appraisal of Reynolds number effects on centrifugal compressor performance J Eng Power 101 384-392
[2]  
Casey M V(1985)The effects of Reynolds number on the efficiency of centrifugal compressor stages J Eng Gas Turbines Power 107 541-548
[3]  
Schreiber H A(2002)Effects of Reynolds number and free-stream turbulence on boundary layer transition in a compressor cascade J Turbomach 124 1-9
[4]  
Steinert W(2002)Measurements in a turbine cascade flow under ultra low Reynolds number conditions J Turbomach 124 100-106
[5]  
Kusters B(2006)Effects of Reynolds number and freestream turbulence on turbine tip clearance flow J Turbomach 128 166-177
[6]  
Treuren K W(2011)Predicting separation and transitional flow in turbine blades at low Reynolds numbers—Part I: Development of prediction methodology J Turbomach 133 031011-1-031011-10
[7]  
Simon T(2011)Predicting separation and transitional flow in turbine blades at low Reynolds numbers—Part II: the application to a highly separated turbine blade cascade geometry J Turbomach 133 031012-1-031012-7
[8]  
Koller M(2008)Effects of the low Reynolds number on the loss characteristics in an axial compressor Proc IMechE Part A: J Power Eng 222 209-218
[9]  
Matsunuma T(2004)Advanced high turning compressor airfoils for low Reynolds number conditions, Part II: experimental and numerical analysis J Turbomach 126 482-492
[10]  
Sanders D D(2002)Turbine separation control using pulsed vortex generator jets J Turbomach 122 198-206