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Xiang Qiujie, Chen Weisheng, Li Yaojun, Liu Zhuqing. Insight into pressure drop and viscous losses in tip-leakage flow between a hydrofoil and stationary endwall. Chinese Journal of Theoretical and Applied Mechanics, 2023, 55(10): 2297-2308. DOI: 10.6052/0459-1879-23-046
Citation: Xiang Qiujie, Chen Weisheng, Li Yaojun, Liu Zhuqing. Insight into pressure drop and viscous losses in tip-leakage flow between a hydrofoil and stationary endwall. Chinese Journal of Theoretical and Applied Mechanics, 2023, 55(10): 2297-2308. DOI: 10.6052/0459-1879-23-046

INSIGHT INTO PRESSURE DROP AND VISCOUS LOSSES IN TIP-LEAKAGE FLOW BETWEEN A HYDROFOIL AND STATIONARY ENDWALL

  • Received Date: February 14, 2023
  • Accepted Date: September 04, 2023
  • Available Online: September 05, 2023
  • Viscous losses and local pressure drop due to tip-clearance flow are the primary factors for efficiency decline and tip-clearance cavitation in axial-flow hydraulic machinery. In this paper, the tip-clearance flow between a NACA0009 hydrofoil and a stationary endwall is investigated using very large eddy simulation, with the aim of exploring the viscous loss properties and the underlying mechanism of pressure drop in the tip-gap region. A quantitative model for the evaluation of viscous losses has been proposed based on the analysis of mean-flow kinetic energy conversion and transport, and the viscous losses and pressure drop associated with the tip-clearance flow are extensively discussed. Gross features of the tip separation vortex (TSV), tip-leakage vortex (TLV), and induced vortex (IV) have been revealed by investigating the mean-flow fields. The production of turbulent kinetic energy (TKE) is found to be the dominant contributor to pressure drop in the TSV, while pressure drop in the TLV is mainly affected by TKE production as well as the convection and transport of mean-flow kinetic energy. In the tip-clearance region, the dissipation of TKE is the main contributor to the viscous losses, accounting for 91.2% of the total losses. The flow structures in the tip gap region have different influences on TKE production. It shows that the shear flow close to the suction surface of the hydrofoil mainly generates the TKE component ¯uu, while the tip-clearance vortices mainly generate the components ¯vv and ¯ww. The analysis of the mechanism of TKE production indicates that the TKE production term component Pvw is the dominant contributor to TKE production in both TLV and TSV, suggesting that reducing the spanwise derivative of the pitchwise velocity ˉv/ˉvzz in the TSV and TLV is a potential way to reduce TKE production, and then alleviate the viscous losses associated with turbulent dissipation in the tip-clearance region. The findings provide a reference for tip-clearance flow control.
  • [1]
    You D, Wang M, Moin P, et al. Vortex dynamics and low-pressure fluctuations in the tip-clearance flow. Journal of Fluids Engineering, 2007, 129(8): 1002-1014
    [2]
    Hewkin-Smith M, Pullan G, Grimshaw SD, et al. The role of tip leakage flow in spike-type rotating stall inception. Journal of Turbomachinery, 2019, 141(6): 061010 doi: 10.1115/1.4042250
    [3]
    陈为升, 黎耀军, 刘竹青等. 基于超大涡模拟的翼端间隙流湍流特性与损失机理分析. 农业机械学报, 2022, 53(8): 144-153 (Chen Weisheng, Li Yaojun, Liu Zhuqing, et al. Very large eddy simulation analysis of turbulent flow characteristic and mechanisms for turbulent loss in hydrofoil tip clearance flows. Transactions of the Chinese Society for Agricultural Machinery, 2022, 53(8): 144-153 (in Chinese)

    Chen Weishewng, Li Yaojun, Liu Zhuqing, et al. Very large eddy simulation analysis of turbulent flow characteristic and mechanisms for turbulent loss in hydrofoil tip clearance flows. Transactions of the Chinese Society for Agricultural Machinery, 2022, 53(8): 144-153(in Chinese)
    [4]
    Lakshminarayana B. Fluid Dynamics and Heat Transfer of Turbomachinery. New Jersey: John Wiley & Sons, 1995
    [5]
    Pandya A, Lakshminarayana B. Investigation of the tip clearance flow inside and at the exit of a compressor rotor passage—Part II: turbulence properties. Journal of Engineering for Gas Turbines and Power, 1983, 105(1): 13-17
    [6]
    You D, Wang M, Moin P, et al. Large-eddy simulation analysis of mechanisms for viscous losses in a turbomachinery tip-clearance flow. Journal of Fluid Mechanics, 2007, 586: 177-204 doi: 10.1017/S0022112007006842
    [7]
    You D, Wang M, Moin P, et al. Effects of tip-gap size on the tip-leakage flow in a turbomachinery cascade. Physics of Fluids, 2006, 18(10): 105102 doi: 10.1063/1.2354544
    [8]
    Kock F, Herwig H. Local entropy production in turbulent shear flows: A high-Reynolds number model with wall functions. International Journal of Heat and Mass Transfer, 2004, 47(10-11): 2205-2215 doi: 10.1016/j.ijheatmasstransfer.2003.11.025
    [9]
    Haghighi MHS, Mirghavami SM, Ghorani MM, et al. A numerical study on the performance of a superhydrophobic coated very low head (VLH) axial hydraulic turbine using entropy generation method. Renewable Energy, 2020, 147: 409-422 doi: 10.1016/j.renene.2019.09.003
    [10]
    Ghorani MM, Haghighi MHS, Maleki A, et al. A numerical study on mechanisms of energy dissipation in a pump as turbine (PAT) using entropy generation theory. Renewable Energy, 2020, 162: 1036-1053 doi: 10.1016/j.renene.2020.08.102
    [11]
    Chen W, Li Y, Liu Z, et al. Understanding of energy conversion and losses in a centrifugal pump impeller. Energy, 2023, 263: 125787 doi: 10.1016/j.energy.2022.125787
    [12]
    Maclsaac GD, Sjolander SA, Praisner TJ. Measurements of Losses and Reynolds stresses in the secondary flow downstream of a low-speed linear turbine cascade. Journal of Turbomachinery, 2012, 134(6): 061015 doi: 10.1115/1.4003839
    [13]
    Luo X, Ji B, Tsujimoto Y. A review of cavitation in hydraulic machinery. Journal of Hydrodynamics, 2016, 28(3): 335-358 doi: 10.1016/S1001-6058(16)60638-8
    [14]
    Guo Q, Zhou L, Wang Z. Numerical evaluation of the clearance geometries effect on the flow field and performance of a hydrofoil. Renewable Energy, 2016, 99: 390-397 doi: 10.1016/j.renene.2016.06.064
    [15]
    张兆顺, 崔桂香, 许春晓等. 湍流理论与模拟, 第2版. 北京: 清华大学出版社, 2017

    Zhang Zhaoshun, Cui Guixiang, Xu Chunxiao, et al. Theory and Modeling of Turbulence, Second Edition. Beijing: Tsinghua University Press, 2017 (in Chinese)
    [16]
    Storer JA, Cumpsty NA. An approximate analysis and prediction method for tip clearance loss in axial compressors. Journal of Turbomachinery, 1994, 116(4): 648-656
    [17]
    Dreyer M. Mind the Gap: Tip Leakage Vortex Dynamics and Cavitation in Axial Turbines. Lausanne: Swiss Federal Institute of Technology in Lausanne (EPFL), 2015
    [18]
    Speziale CG. Turbulence modeling for time-dependent RANS and VLES: A review. AIAA Journal, 1998, 36(2): 173-184 doi: 10.2514/2.7499
    [19]
    Hsieh KJ, Lien FS, Yee E. Towards a unified turbulence simulation approach for wall-bounded flows. Flow, Turbulence and Tombustion, 2010, 84: 193-218 doi: 10.1007/s10494-009-9220-4
    [20]
    Labois M, Lakehal D. Very-large eddy simulation (V-LES) of the flow across a tube bundle. Nuclear Engineering and Design, 2011, 241(6): 2075-2085 doi: 10.1016/j.nucengdes.2011.02.009
    [21]
    Han X, Krajnović S. Very-large-eddy simulation based on k-ω model. AIAA Journal, 2015, 53(4): 1103-1108 doi: 10.2514/1.J053341
    [22]
    Kelly R, Hickman AR, Shi K, et al. Very large eddy simulation of a transonic axial compressor stage//52nd AIAA/SAE/ASEE Joint Propulsion Conference, 2016: 4745
    [23]
    Xia ZY, Han X S, Mao JK. Assessment and validation of very-large-eddy simulation turbulence modeling for strongly swirling turbulent flow. AIAA Journal, 2020, 58(1): 148-163 doi: 10.2514/1.J058302
    [24]
    郝会云, 刘韵晴, 魏海鹏等. 基于涡量矩理论的绕振荡水翼涡动力学分析. 力学学报, 2022, 54(5): 1199-1208 (Hao Huiyun, Liu Yunqing, Wei Haipeng, et al. Vortex dynamics of a pitching hydrofoil based on the vorticity moment theory. Chinese Journal of Theoretical and Applied Mechanics, 2022, 54(5): 1199-1208 (in Chinese) doi: 10.6052/0459-1879-21-543

    Hao Huiyun, Liu Yunqing, Wei Haipeng, et al. Vortex dynamics of a pitching hydrofoil based on the vorticity moment theory. Chinese Journal of Theoretical and Applied Mechanics, 2022, 54(5): 1199-1208 (in Chinese) doi: 10.6052/0459-1879-21-543
    [25]
    杜一鸣, 高正红, 舒博文等. k-ω SST 湍流模式三维激波分离流动修正. 力学学报, 2022, 54(6): 1485-1501 (Du Yiming, Gao Zhenghong, Shu Bowen, et al. Three-dimensional shock separated flow corrections of k-ω SST model. Chinese Journal of Theoretical and Applied Mechanics, 2022, 54(6): 1485-1501 (in Chinese) doi: 10.6052/0459-1879-22-065

    Du Yiming, Gao Zhenghong, Shu Bowen, et al. Three-dimensional shock separated flow corrections of k-ω SST model. Chinese Journal of Theoretical and Applied Mechanics, 2022, 54(6): 1485-1501 (in Chinese) doi: 10.6052/0459-1879-22-065
    [26]
    Ye W, Geng C, Luo X. Unstable flow characteristics in vaneless region with emphasis on the rotor-stator interaction for a pump turbine at pump mode using large runner blade lean. Renewable Energy, 2022, 185: 1343-1361 doi: 10.1016/j.renene.2021.12.129
    [27]
    Menter FR. Two-equation eddy-viscosity transport turbulence model for engineering applications. AIAA Journal, 1994, 32(8): 1598-1605.
    [28]
    Han XS, Krajnovi´c S. An efficient very large eddy simulation model for simulation of turbulent flow. International Journal for Numerical Methods in Fluids, 2013, 71(11): 1341-1360 doi: 10.1002/fld.3714
    [29]
    Davidson L. Large eddy simulations: how to evaluate resolution. International Journal of Heat and Fluid Flow, 2009, 30(5): 1016-1025 doi: 10.1016/j.ijheatfluidflow.2009.06.006
    [30]
    Ishida Y, Okaze T, Mochida A. Influence of urban configuration on the structure of kinetic energy transport and the energy dissipation rate. Journal of Wind Engineering and Industrial Aerodynamics, 2018, 183: 198-213 doi: 10.1016/j.jweia.2018.10.016
    [31]
    Pope SB. Ten questions concerning the large-eddy simulation of turbulent flows. New Journal of Physics, 2004, 6(1): 35
    [32]
    Li Y, Chen H, Tan D, et al. On the effects of tip clearance and operating condition on the flow structures within an axial turbomachine rotor passage. Journal of Turbomachinery, 2019, 141(11): 111002 doi: 10.1115/1.4044496
    [33]
    Zhang D, Shi W, Van Esch BPMB, et al. Numerical and experimental investigation of tip leakage vortex trajectory and dynamics in an axial flow pump. Computers & Fluids, 2015, 112: 61-71
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